1 // This file is Copyright its original authors, visible in version control
4 // This file is licensed under the Apache License, Version 2.0 <LICENSE-APACHE
5 // or http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
6 // <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your option.
7 // You may not use this file except in accordance with one or both of these
10 //! The top-level channel management and payment tracking stuff lives here.
12 //! The [`ChannelManager`] is the main chunk of logic implementing the lightning protocol and is
13 //! responsible for tracking which channels are open, HTLCs are in flight and reestablishing those
14 //! upon reconnect to the relevant peer(s).
16 //! It does not manage routing logic (see [`Router`] for that) nor does it manage constructing
17 //! on-chain transactions (it only monitors the chain to watch for any force-closes that might
18 //! imply it needs to fail HTLCs/payments/channels it manages).
20 use bitcoin::blockdata::block::Header;
21 use bitcoin::blockdata::transaction::Transaction;
22 use bitcoin::blockdata::constants::ChainHash;
23 use bitcoin::key::constants::SECRET_KEY_SIZE;
24 use bitcoin::network::constants::Network;
26 use bitcoin::hashes::Hash;
27 use bitcoin::hashes::sha256::Hash as Sha256;
28 use bitcoin::hash_types::{BlockHash, Txid};
30 use bitcoin::secp256k1::{SecretKey,PublicKey};
31 use bitcoin::secp256k1::Secp256k1;
32 use bitcoin::{secp256k1, Sequence};
34 use crate::blinded_path::{BlindedPath, NodeIdLookUp};
35 use crate::blinded_path::payment::{Bolt12OfferContext, Bolt12RefundContext, PaymentConstraints, PaymentContext, ReceiveTlvs};
37 use crate::chain::{Confirm, ChannelMonitorUpdateStatus, Watch, BestBlock};
38 use crate::chain::chaininterface::{BroadcasterInterface, ConfirmationTarget, FeeEstimator, LowerBoundedFeeEstimator};
39 use crate::chain::channelmonitor::{ChannelMonitor, ChannelMonitorUpdate, WithChannelMonitor, ChannelMonitorUpdateStep, HTLC_FAIL_BACK_BUFFER, CLTV_CLAIM_BUFFER, LATENCY_GRACE_PERIOD_BLOCKS, ANTI_REORG_DELAY, MonitorEvent, CLOSED_CHANNEL_UPDATE_ID};
40 use crate::chain::transaction::{OutPoint, TransactionData};
42 use crate::events::{Event, EventHandler, EventsProvider, MessageSendEvent, MessageSendEventsProvider, ClosureReason, HTLCDestination, PaymentFailureReason};
43 // Since this struct is returned in `list_channels` methods, expose it here in case users want to
44 // construct one themselves.
45 use crate::ln::{inbound_payment, ChannelId, PaymentHash, PaymentPreimage, PaymentSecret};
46 use crate::ln::channel::{self, Channel, ChannelPhase, ChannelContext, ChannelError, ChannelUpdateStatus, ShutdownResult, UnfundedChannelContext, UpdateFulfillCommitFetch, OutboundV1Channel, InboundV1Channel, WithChannelContext};
47 pub use crate::ln::channel::{InboundHTLCDetails, InboundHTLCStateDetails, OutboundHTLCDetails, OutboundHTLCStateDetails};
48 use crate::ln::features::{Bolt12InvoiceFeatures, ChannelFeatures, ChannelTypeFeatures, InitFeatures, NodeFeatures};
49 #[cfg(any(feature = "_test_utils", test))]
50 use crate::ln::features::Bolt11InvoiceFeatures;
51 use crate::routing::router::{BlindedTail, InFlightHtlcs, Path, Payee, PaymentParameters, Route, RouteParameters, Router};
52 use crate::ln::onion_payment::{check_incoming_htlc_cltv, create_recv_pending_htlc_info, create_fwd_pending_htlc_info, decode_incoming_update_add_htlc_onion, InboundHTLCErr, NextPacketDetails};
54 use crate::ln::onion_utils;
55 use crate::ln::onion_utils::{HTLCFailReason, INVALID_ONION_BLINDING};
56 use crate::ln::msgs::{ChannelMessageHandler, DecodeError, LightningError};
58 use crate::ln::outbound_payment;
59 use crate::ln::outbound_payment::{Bolt12PaymentError, OutboundPayments, PaymentAttempts, PendingOutboundPayment, SendAlongPathArgs, StaleExpiration};
60 use crate::ln::wire::Encode;
61 use crate::offers::invoice::{BlindedPayInfo, Bolt12Invoice, DEFAULT_RELATIVE_EXPIRY, DerivedSigningPubkey, ExplicitSigningPubkey, InvoiceBuilder, UnsignedBolt12Invoice};
62 use crate::offers::invoice_error::InvoiceError;
63 use crate::offers::invoice_request::{DerivedPayerId, InvoiceRequestBuilder};
64 use crate::offers::offer::{Offer, OfferBuilder};
65 use crate::offers::parse::Bolt12SemanticError;
66 use crate::offers::refund::{Refund, RefundBuilder};
67 use crate::onion_message::messenger::{Destination, MessageRouter, PendingOnionMessage, new_pending_onion_message};
68 use crate::onion_message::offers::{OffersMessage, OffersMessageHandler};
69 use crate::sign::{EntropySource, NodeSigner, Recipient, SignerProvider};
70 use crate::sign::ecdsa::WriteableEcdsaChannelSigner;
71 use crate::util::config::{UserConfig, ChannelConfig, ChannelConfigUpdate};
72 use crate::util::wakers::{Future, Notifier};
73 use crate::util::scid_utils::fake_scid;
74 use crate::util::string::UntrustedString;
75 use crate::util::ser::{BigSize, FixedLengthReader, Readable, ReadableArgs, MaybeReadable, Writeable, Writer, VecWriter};
76 use crate::util::logger::{Level, Logger, WithContext};
77 use crate::util::errors::APIError;
78 #[cfg(not(c_bindings))]
80 crate::offers::offer::DerivedMetadata,
81 crate::routing::router::DefaultRouter,
82 crate::routing::gossip::NetworkGraph,
83 crate::routing::scoring::{ProbabilisticScorer, ProbabilisticScoringFeeParameters},
84 crate::sign::KeysManager,
88 crate::offers::offer::OfferWithDerivedMetadataBuilder,
89 crate::offers::refund::RefundMaybeWithDerivedMetadataBuilder,
92 use alloc::collections::{btree_map, BTreeMap};
95 use crate::prelude::*;
97 use core::cell::RefCell;
99 use crate::sync::{Arc, Mutex, RwLock, RwLockReadGuard, FairRwLock, LockTestExt, LockHeldState};
100 use core::sync::atomic::{AtomicUsize, AtomicBool, Ordering};
101 use core::time::Duration;
102 use core::ops::Deref;
104 // Re-export this for use in the public API.
105 pub use crate::ln::outbound_payment::{PaymentSendFailure, ProbeSendFailure, Retry, RetryableSendFailure, RecipientOnionFields};
106 use crate::ln::script::ShutdownScript;
108 // We hold various information about HTLC relay in the HTLC objects in Channel itself:
110 // Upon receipt of an HTLC from a peer, we'll give it a PendingHTLCStatus indicating if it should
111 // forward the HTLC with information it will give back to us when it does so, or if it should Fail
112 // the HTLC with the relevant message for the Channel to handle giving to the remote peer.
114 // Once said HTLC is committed in the Channel, if the PendingHTLCStatus indicated Forward, the
115 // Channel will return the PendingHTLCInfo back to us, and we will create an HTLCForwardInfo
116 // with it to track where it came from (in case of onwards-forward error), waiting a random delay
117 // before we forward it.
119 // We will then use HTLCForwardInfo's PendingHTLCInfo to construct an outbound HTLC, with a
120 // relevant HTLCSource::PreviousHopData filled in to indicate where it came from (which we can use
121 // to either fail-backwards or fulfill the HTLC backwards along the relevant path).
122 // Alternatively, we can fill an outbound HTLC with a HTLCSource::OutboundRoute indicating this is
123 // our payment, which we can use to decode errors or inform the user that the payment was sent.
125 /// Information about where a received HTLC('s onion) has indicated the HTLC should go.
126 #[derive(Clone)] // See Channel::revoke_and_ack for why, tl;dr: Rust bug
127 #[cfg_attr(test, derive(Debug, PartialEq))]
128 pub enum PendingHTLCRouting {
129 /// An HTLC which should be forwarded on to another node.
131 /// The onion which should be included in the forwarded HTLC, telling the next hop what to
132 /// do with the HTLC.
133 onion_packet: msgs::OnionPacket,
134 /// The short channel ID of the channel which we were instructed to forward this HTLC to.
136 /// This could be a real on-chain SCID, an SCID alias, or some other SCID which has meaning
137 /// to the receiving node, such as one returned from
138 /// [`ChannelManager::get_intercept_scid`] or [`ChannelManager::get_phantom_scid`].
139 short_channel_id: u64, // This should be NonZero<u64> eventually when we bump MSRV
140 /// Set if this HTLC is being forwarded within a blinded path.
141 blinded: Option<BlindedForward>,
143 /// The onion indicates that this is a payment for an invoice (supposedly) generated by us.
145 /// Note that at this point, we have not checked that the invoice being paid was actually
146 /// generated by us, but rather it's claiming to pay an invoice of ours.
148 /// Information about the amount the sender intended to pay and (potential) proof that this
149 /// is a payment for an invoice we generated. This proof of payment is is also used for
150 /// linking MPP parts of a larger payment.
151 payment_data: msgs::FinalOnionHopData,
152 /// Additional data which we (allegedly) instructed the sender to include in the onion.
154 /// For HTLCs received by LDK, this will ultimately be exposed in
155 /// [`Event::PaymentClaimable::onion_fields`] as
156 /// [`RecipientOnionFields::payment_metadata`].
157 payment_metadata: Option<Vec<u8>>,
158 /// The context of the payment included by the recipient in a blinded path, or `None` if a
159 /// blinded path was not used.
161 /// Used in part to determine the [`events::PaymentPurpose`].
162 payment_context: Option<PaymentContext>,
163 /// CLTV expiry of the received HTLC.
165 /// Used to track when we should expire pending HTLCs that go unclaimed.
166 incoming_cltv_expiry: u32,
167 /// If the onion had forwarding instructions to one of our phantom node SCIDs, this will
168 /// provide the onion shared secret used to decrypt the next level of forwarding
170 phantom_shared_secret: Option<[u8; 32]>,
171 /// Custom TLVs which were set by the sender.
173 /// For HTLCs received by LDK, this will ultimately be exposed in
174 /// [`Event::PaymentClaimable::onion_fields`] as
175 /// [`RecipientOnionFields::custom_tlvs`].
176 custom_tlvs: Vec<(u64, Vec<u8>)>,
177 /// Set if this HTLC is the final hop in a multi-hop blinded path.
178 requires_blinded_error: bool,
180 /// The onion indicates that this is for payment to us but which contains the preimage for
181 /// claiming included, and is unrelated to any invoice we'd previously generated (aka a
182 /// "keysend" or "spontaneous" payment).
184 /// Information about the amount the sender intended to pay and possibly a token to
185 /// associate MPP parts of a larger payment.
187 /// This will only be filled in if receiving MPP keysend payments is enabled, and it being
188 /// present will cause deserialization to fail on versions of LDK prior to 0.0.116.
189 payment_data: Option<msgs::FinalOnionHopData>,
190 /// Preimage for this onion payment. This preimage is provided by the sender and will be
191 /// used to settle the spontaneous payment.
192 payment_preimage: PaymentPreimage,
193 /// Additional data which we (allegedly) instructed the sender to include in the onion.
195 /// For HTLCs received by LDK, this will ultimately bubble back up as
196 /// [`RecipientOnionFields::payment_metadata`].
197 payment_metadata: Option<Vec<u8>>,
198 /// CLTV expiry of the received HTLC.
200 /// Used to track when we should expire pending HTLCs that go unclaimed.
201 incoming_cltv_expiry: u32,
202 /// Custom TLVs which were set by the sender.
204 /// For HTLCs received by LDK, these will ultimately bubble back up as
205 /// [`RecipientOnionFields::custom_tlvs`].
206 custom_tlvs: Vec<(u64, Vec<u8>)>,
207 /// Set if this HTLC is the final hop in a multi-hop blinded path.
208 requires_blinded_error: bool,
212 /// Information used to forward or fail this HTLC that is being forwarded within a blinded path.
213 #[derive(Clone, Copy, Debug, Hash, PartialEq, Eq)]
214 pub struct BlindedForward {
215 /// The `blinding_point` that was set in the inbound [`msgs::UpdateAddHTLC`], or in the inbound
216 /// onion payload if we're the introduction node. Useful for calculating the next hop's
217 /// [`msgs::UpdateAddHTLC::blinding_point`].
218 pub inbound_blinding_point: PublicKey,
219 /// If needed, this determines how this HTLC should be failed backwards, based on whether we are
220 /// the introduction node.
221 pub failure: BlindedFailure,
224 impl PendingHTLCRouting {
225 // Used to override the onion failure code and data if the HTLC is blinded.
226 fn blinded_failure(&self) -> Option<BlindedFailure> {
228 Self::Forward { blinded: Some(BlindedForward { failure, .. }), .. } => Some(*failure),
229 Self::Receive { requires_blinded_error: true, .. } => Some(BlindedFailure::FromBlindedNode),
230 Self::ReceiveKeysend { requires_blinded_error: true, .. } => Some(BlindedFailure::FromBlindedNode),
236 /// Information about an incoming HTLC, including the [`PendingHTLCRouting`] describing where it
238 #[derive(Clone)] // See Channel::revoke_and_ack for why, tl;dr: Rust bug
239 #[cfg_attr(test, derive(Debug, PartialEq))]
240 pub struct PendingHTLCInfo {
241 /// Further routing details based on whether the HTLC is being forwarded or received.
242 pub routing: PendingHTLCRouting,
243 /// The onion shared secret we build with the sender used to decrypt the onion.
245 /// This is later used to encrypt failure packets in the event that the HTLC is failed.
246 pub incoming_shared_secret: [u8; 32],
247 /// Hash of the payment preimage, to lock the payment until the receiver releases the preimage.
248 pub payment_hash: PaymentHash,
249 /// Amount received in the incoming HTLC.
251 /// This field was added in LDK 0.0.113 and will be `None` for objects written by prior
253 pub incoming_amt_msat: Option<u64>,
254 /// The amount the sender indicated should be forwarded on to the next hop or amount the sender
255 /// intended for us to receive for received payments.
257 /// If the received amount is less than this for received payments, an intermediary hop has
258 /// attempted to steal some of our funds and we should fail the HTLC (the sender should retry
259 /// it along another path).
261 /// Because nodes can take less than their required fees, and because senders may wish to
262 /// improve their own privacy, this amount may be less than [`Self::incoming_amt_msat`] for
263 /// received payments. In such cases, recipients must handle this HTLC as if it had received
264 /// [`Self::outgoing_amt_msat`].
265 pub outgoing_amt_msat: u64,
266 /// The CLTV the sender has indicated we should set on the forwarded HTLC (or has indicated
267 /// should have been set on the received HTLC for received payments).
268 pub outgoing_cltv_value: u32,
269 /// The fee taken for this HTLC in addition to the standard protocol HTLC fees.
271 /// If this is a payment for forwarding, this is the fee we are taking before forwarding the
274 /// If this is a received payment, this is the fee that our counterparty took.
276 /// This is used to allow LSPs to take fees as a part of payments, without the sender having to
278 pub skimmed_fee_msat: Option<u64>,
281 #[derive(Clone)] // See Channel::revoke_and_ack for why, tl;dr: Rust bug
282 pub(super) enum HTLCFailureMsg {
283 Relay(msgs::UpdateFailHTLC),
284 Malformed(msgs::UpdateFailMalformedHTLC),
287 /// Stores whether we can't forward an HTLC or relevant forwarding info
288 #[derive(Clone)] // See Channel::revoke_and_ack for why, tl;dr: Rust bug
289 pub(super) enum PendingHTLCStatus {
290 Forward(PendingHTLCInfo),
291 Fail(HTLCFailureMsg),
294 #[cfg_attr(test, derive(Clone, Debug, PartialEq))]
295 pub(super) struct PendingAddHTLCInfo {
296 pub(super) forward_info: PendingHTLCInfo,
298 // These fields are produced in `forward_htlcs()` and consumed in
299 // `process_pending_htlc_forwards()` for constructing the
300 // `HTLCSource::PreviousHopData` for failed and forwarded
303 // Note that this may be an outbound SCID alias for the associated channel.
304 prev_short_channel_id: u64,
306 prev_channel_id: ChannelId,
307 prev_funding_outpoint: OutPoint,
308 prev_user_channel_id: u128,
311 #[cfg_attr(test, derive(Clone, Debug, PartialEq))]
312 pub(super) enum HTLCForwardInfo {
313 AddHTLC(PendingAddHTLCInfo),
316 err_packet: msgs::OnionErrorPacket,
321 sha256_of_onion: [u8; 32],
325 /// Whether this blinded HTLC is being failed backwards by the introduction node or a blinded node,
326 /// which determines the failure message that should be used.
327 #[derive(Clone, Copy, Debug, Hash, PartialEq, Eq)]
328 pub enum BlindedFailure {
329 /// This HTLC is being failed backwards by the introduction node, and thus should be failed with
330 /// [`msgs::UpdateFailHTLC`] and error code `0x8000|0x4000|24`.
331 FromIntroductionNode,
332 /// This HTLC is being failed backwards by a blinded node within the path, and thus should be
333 /// failed with [`msgs::UpdateFailMalformedHTLC`] and error code `0x8000|0x4000|24`.
337 /// Tracks the inbound corresponding to an outbound HTLC
338 #[derive(Clone, Debug, Hash, PartialEq, Eq)]
339 pub(crate) struct HTLCPreviousHopData {
340 // Note that this may be an outbound SCID alias for the associated channel.
341 short_channel_id: u64,
342 user_channel_id: Option<u128>,
344 incoming_packet_shared_secret: [u8; 32],
345 phantom_shared_secret: Option<[u8; 32]>,
346 blinded_failure: Option<BlindedFailure>,
347 channel_id: ChannelId,
349 // This field is consumed by `claim_funds_from_hop()` when updating a force-closed backwards
350 // channel with a preimage provided by the forward channel.
355 /// Indicates this incoming onion payload is for the purpose of paying an invoice.
357 /// This is only here for backwards-compatibility in serialization, in the future it can be
358 /// removed, breaking clients running 0.0.106 and earlier.
359 _legacy_hop_data: Option<msgs::FinalOnionHopData>,
361 /// Contains the payer-provided preimage.
362 Spontaneous(PaymentPreimage),
365 /// HTLCs that are to us and can be failed/claimed by the user
366 struct ClaimableHTLC {
367 prev_hop: HTLCPreviousHopData,
369 /// The amount (in msats) of this MPP part
371 /// The amount (in msats) that the sender intended to be sent in this MPP
372 /// part (used for validating total MPP amount)
373 sender_intended_value: u64,
374 onion_payload: OnionPayload,
376 /// The total value received for a payment (sum of all MPP parts if the payment is a MPP).
377 /// Gets set to the amount reported when pushing [`Event::PaymentClaimable`].
378 total_value_received: Option<u64>,
379 /// The sender intended sum total of all MPP parts specified in the onion
381 /// The extra fee our counterparty skimmed off the top of this HTLC.
382 counterparty_skimmed_fee_msat: Option<u64>,
385 impl From<&ClaimableHTLC> for events::ClaimedHTLC {
386 fn from(val: &ClaimableHTLC) -> Self {
387 events::ClaimedHTLC {
388 channel_id: val.prev_hop.channel_id,
389 user_channel_id: val.prev_hop.user_channel_id.unwrap_or(0),
390 cltv_expiry: val.cltv_expiry,
391 value_msat: val.value,
392 counterparty_skimmed_fee_msat: val.counterparty_skimmed_fee_msat.unwrap_or(0),
397 /// A user-provided identifier in [`ChannelManager::send_payment`] used to uniquely identify
398 /// a payment and ensure idempotency in LDK.
400 /// This is not exported to bindings users as we just use [u8; 32] directly
401 #[derive(Hash, Copy, Clone, PartialEq, Eq, Debug)]
402 pub struct PaymentId(pub [u8; Self::LENGTH]);
405 /// Number of bytes in the id.
406 pub const LENGTH: usize = 32;
409 impl Writeable for PaymentId {
410 fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
415 impl Readable for PaymentId {
416 fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
417 let buf: [u8; 32] = Readable::read(r)?;
422 impl core::fmt::Display for PaymentId {
423 fn fmt(&self, f: &mut core::fmt::Formatter) -> core::fmt::Result {
424 crate::util::logger::DebugBytes(&self.0).fmt(f)
428 /// An identifier used to uniquely identify an intercepted HTLC to LDK.
430 /// This is not exported to bindings users as we just use [u8; 32] directly
431 #[derive(Hash, Copy, Clone, PartialEq, Eq, Debug)]
432 pub struct InterceptId(pub [u8; 32]);
434 impl Writeable for InterceptId {
435 fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
440 impl Readable for InterceptId {
441 fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
442 let buf: [u8; 32] = Readable::read(r)?;
447 #[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
448 /// Uniquely describes an HTLC by its source. Just the guaranteed-unique subset of [`HTLCSource`].
449 pub(crate) enum SentHTLCId {
450 PreviousHopData { short_channel_id: u64, htlc_id: u64 },
451 OutboundRoute { session_priv: [u8; SECRET_KEY_SIZE] },
454 pub(crate) fn from_source(source: &HTLCSource) -> Self {
456 HTLCSource::PreviousHopData(hop_data) => Self::PreviousHopData {
457 short_channel_id: hop_data.short_channel_id,
458 htlc_id: hop_data.htlc_id,
460 HTLCSource::OutboundRoute { session_priv, .. } =>
461 Self::OutboundRoute { session_priv: session_priv.secret_bytes() },
465 impl_writeable_tlv_based_enum!(SentHTLCId,
466 (0, PreviousHopData) => {
467 (0, short_channel_id, required),
468 (2, htlc_id, required),
470 (2, OutboundRoute) => {
471 (0, session_priv, required),
476 /// Tracks the inbound corresponding to an outbound HTLC
477 #[allow(clippy::derive_hash_xor_eq)] // Our Hash is faithful to the data, we just don't have SecretKey::hash
478 #[derive(Clone, Debug, PartialEq, Eq)]
479 pub(crate) enum HTLCSource {
480 PreviousHopData(HTLCPreviousHopData),
483 session_priv: SecretKey,
484 /// Technically we can recalculate this from the route, but we cache it here to avoid
485 /// doing a double-pass on route when we get a failure back
486 first_hop_htlc_msat: u64,
487 payment_id: PaymentId,
490 #[allow(clippy::derive_hash_xor_eq)] // Our Hash is faithful to the data, we just don't have SecretKey::hash
491 impl core::hash::Hash for HTLCSource {
492 fn hash<H: core::hash::Hasher>(&self, hasher: &mut H) {
494 HTLCSource::PreviousHopData(prev_hop_data) => {
496 prev_hop_data.hash(hasher);
498 HTLCSource::OutboundRoute { path, session_priv, payment_id, first_hop_htlc_msat } => {
501 session_priv[..].hash(hasher);
502 payment_id.hash(hasher);
503 first_hop_htlc_msat.hash(hasher);
509 #[cfg(all(feature = "_test_vectors", not(feature = "grind_signatures")))]
511 pub fn dummy() -> Self {
512 HTLCSource::OutboundRoute {
513 path: Path { hops: Vec::new(), blinded_tail: None },
514 session_priv: SecretKey::from_slice(&[1; 32]).unwrap(),
515 first_hop_htlc_msat: 0,
516 payment_id: PaymentId([2; 32]),
520 #[cfg(debug_assertions)]
521 /// Checks whether this HTLCSource could possibly match the given HTLC output in a commitment
522 /// transaction. Useful to ensure different datastructures match up.
523 pub(crate) fn possibly_matches_output(&self, htlc: &super::chan_utils::HTLCOutputInCommitment) -> bool {
524 if let HTLCSource::OutboundRoute { first_hop_htlc_msat, .. } = self {
525 *first_hop_htlc_msat == htlc.amount_msat
527 // There's nothing we can check for forwarded HTLCs
533 /// This enum is used to specify which error data to send to peers when failing back an HTLC
534 /// using [`ChannelManager::fail_htlc_backwards_with_reason`].
536 /// For more info on failure codes, see <https://github.com/lightning/bolts/blob/master/04-onion-routing.md#failure-messages>.
537 #[derive(Clone, Copy)]
538 pub enum FailureCode {
539 /// We had a temporary error processing the payment. Useful if no other error codes fit
540 /// and you want to indicate that the payer may want to retry.
541 TemporaryNodeFailure,
542 /// We have a required feature which was not in this onion. For example, you may require
543 /// some additional metadata that was not provided with this payment.
544 RequiredNodeFeatureMissing,
545 /// You may wish to use this when a `payment_preimage` is unknown, or the CLTV expiry of
546 /// the HTLC is too close to the current block height for safe handling.
547 /// Using this failure code in [`ChannelManager::fail_htlc_backwards_with_reason`] is
548 /// equivalent to calling [`ChannelManager::fail_htlc_backwards`].
549 IncorrectOrUnknownPaymentDetails,
550 /// We failed to process the payload after the onion was decrypted. You may wish to
551 /// use this when receiving custom HTLC TLVs with even type numbers that you don't recognize.
553 /// If available, the tuple data may include the type number and byte offset in the
554 /// decrypted byte stream where the failure occurred.
555 InvalidOnionPayload(Option<(u64, u16)>),
558 impl Into<u16> for FailureCode {
559 fn into(self) -> u16 {
561 FailureCode::TemporaryNodeFailure => 0x2000 | 2,
562 FailureCode::RequiredNodeFeatureMissing => 0x4000 | 0x2000 | 3,
563 FailureCode::IncorrectOrUnknownPaymentDetails => 0x4000 | 15,
564 FailureCode::InvalidOnionPayload(_) => 0x4000 | 22,
569 /// Error type returned across the peer_state mutex boundary. When an Err is generated for a
570 /// Channel, we generally end up with a ChannelError::Close for which we have to close the channel
571 /// immediately (ie with no further calls on it made). Thus, this step happens inside a
572 /// peer_state lock. We then return the set of things that need to be done outside the lock in
573 /// this struct and call handle_error!() on it.
575 struct MsgHandleErrInternal {
576 err: msgs::LightningError,
577 closes_channel: bool,
578 shutdown_finish: Option<(ShutdownResult, Option<msgs::ChannelUpdate>)>,
580 impl MsgHandleErrInternal {
582 fn send_err_msg_no_close(err: String, channel_id: ChannelId) -> Self {
584 err: LightningError {
586 action: msgs::ErrorAction::SendErrorMessage {
587 msg: msgs::ErrorMessage {
593 closes_channel: false,
594 shutdown_finish: None,
598 fn from_no_close(err: msgs::LightningError) -> Self {
599 Self { err, closes_channel: false, shutdown_finish: None }
602 fn from_finish_shutdown(err: String, channel_id: ChannelId, shutdown_res: ShutdownResult, channel_update: Option<msgs::ChannelUpdate>) -> Self {
603 let err_msg = msgs::ErrorMessage { channel_id, data: err.clone() };
604 let action = if shutdown_res.monitor_update.is_some() {
605 // We have a closing `ChannelMonitorUpdate`, which means the channel was funded and we
606 // should disconnect our peer such that we force them to broadcast their latest
607 // commitment upon reconnecting.
608 msgs::ErrorAction::DisconnectPeer { msg: Some(err_msg) }
610 msgs::ErrorAction::SendErrorMessage { msg: err_msg }
613 err: LightningError { err, action },
614 closes_channel: true,
615 shutdown_finish: Some((shutdown_res, channel_update)),
619 fn from_chan_no_close(err: ChannelError, channel_id: ChannelId) -> Self {
622 ChannelError::Warn(msg) => LightningError {
624 action: msgs::ErrorAction::SendWarningMessage {
625 msg: msgs::WarningMessage {
629 log_level: Level::Warn,
632 ChannelError::Ignore(msg) => LightningError {
634 action: msgs::ErrorAction::IgnoreError,
636 ChannelError::Close(msg) => LightningError {
638 action: msgs::ErrorAction::SendErrorMessage {
639 msg: msgs::ErrorMessage {
646 closes_channel: false,
647 shutdown_finish: None,
651 fn closes_channel(&self) -> bool {
656 /// We hold back HTLCs we intend to relay for a random interval greater than this (see
657 /// Event::PendingHTLCsForwardable for the API guidelines indicating how long should be waited).
658 /// This provides some limited amount of privacy. Ideally this would range from somewhere like one
659 /// second to 30 seconds, but people expect lightning to be, you know, kinda fast, sadly.
660 pub(super) const MIN_HTLC_RELAY_HOLDING_CELL_MILLIS: u64 = 100;
662 /// For events which result in both a RevokeAndACK and a CommitmentUpdate, by default they should
663 /// be sent in the order they appear in the return value, however sometimes the order needs to be
664 /// variable at runtime (eg Channel::channel_reestablish needs to re-send messages in the order
665 /// they were originally sent). In those cases, this enum is also returned.
666 #[derive(Clone, PartialEq)]
667 pub(super) enum RAACommitmentOrder {
668 /// Send the CommitmentUpdate messages first
670 /// Send the RevokeAndACK message first
674 /// Information about a payment which is currently being claimed.
675 struct ClaimingPayment {
677 payment_purpose: events::PaymentPurpose,
678 receiver_node_id: PublicKey,
679 htlcs: Vec<events::ClaimedHTLC>,
680 sender_intended_value: Option<u64>,
682 impl_writeable_tlv_based!(ClaimingPayment, {
683 (0, amount_msat, required),
684 (2, payment_purpose, required),
685 (4, receiver_node_id, required),
686 (5, htlcs, optional_vec),
687 (7, sender_intended_value, option),
690 struct ClaimablePayment {
691 purpose: events::PaymentPurpose,
692 onion_fields: Option<RecipientOnionFields>,
693 htlcs: Vec<ClaimableHTLC>,
696 /// Information about claimable or being-claimed payments
697 struct ClaimablePayments {
698 /// Map from payment hash to the payment data and any HTLCs which are to us and can be
699 /// failed/claimed by the user.
701 /// Note that, no consistency guarantees are made about the channels given here actually
702 /// existing anymore by the time you go to read them!
704 /// When adding to the map, [`Self::pending_claiming_payments`] must also be checked to ensure
705 /// we don't get a duplicate payment.
706 claimable_payments: HashMap<PaymentHash, ClaimablePayment>,
708 /// Map from payment hash to the payment data for HTLCs which we have begun claiming, but which
709 /// are waiting on a [`ChannelMonitorUpdate`] to complete in order to be surfaced to the user
710 /// as an [`events::Event::PaymentClaimed`].
711 pending_claiming_payments: HashMap<PaymentHash, ClaimingPayment>,
714 /// Events which we process internally but cannot be processed immediately at the generation site
715 /// usually because we're running pre-full-init. They are handled immediately once we detect we are
716 /// running normally, and specifically must be processed before any other non-background
717 /// [`ChannelMonitorUpdate`]s are applied.
719 enum BackgroundEvent {
720 /// Handle a ChannelMonitorUpdate which closes the channel or for an already-closed channel.
721 /// This is only separated from [`Self::MonitorUpdateRegeneratedOnStartup`] as the
722 /// maybe-non-closing variant needs a public key to handle channel resumption, whereas if the
723 /// channel has been force-closed we do not need the counterparty node_id.
725 /// Note that any such events are lost on shutdown, so in general they must be updates which
726 /// are regenerated on startup.
727 ClosedMonitorUpdateRegeneratedOnStartup((OutPoint, ChannelId, ChannelMonitorUpdate)),
728 /// Handle a ChannelMonitorUpdate which may or may not close the channel and may unblock the
729 /// channel to continue normal operation.
731 /// In general this should be used rather than
732 /// [`Self::ClosedMonitorUpdateRegeneratedOnStartup`], however in cases where the
733 /// `counterparty_node_id` is not available as the channel has closed from a [`ChannelMonitor`]
734 /// error the other variant is acceptable.
736 /// Note that any such events are lost on shutdown, so in general they must be updates which
737 /// are regenerated on startup.
738 MonitorUpdateRegeneratedOnStartup {
739 counterparty_node_id: PublicKey,
740 funding_txo: OutPoint,
741 channel_id: ChannelId,
742 update: ChannelMonitorUpdate
744 /// Some [`ChannelMonitorUpdate`] (s) completed before we were serialized but we still have
745 /// them marked pending, thus we need to run any [`MonitorUpdateCompletionAction`] (s) pending
747 MonitorUpdatesComplete {
748 counterparty_node_id: PublicKey,
749 channel_id: ChannelId,
754 pub(crate) enum MonitorUpdateCompletionAction {
755 /// Indicates that a payment ultimately destined for us was claimed and we should emit an
756 /// [`events::Event::PaymentClaimed`] to the user if we haven't yet generated such an event for
757 /// this payment. Note that this is only best-effort. On restart it's possible such a duplicate
758 /// event can be generated.
759 PaymentClaimed { payment_hash: PaymentHash },
760 /// Indicates an [`events::Event`] should be surfaced to the user and possibly resume the
761 /// operation of another channel.
763 /// This is usually generated when we've forwarded an HTLC and want to block the outbound edge
764 /// from completing a monitor update which removes the payment preimage until the inbound edge
765 /// completes a monitor update containing the payment preimage. In that case, after the inbound
766 /// edge completes, we will surface an [`Event::PaymentForwarded`] as well as unblock the
768 EmitEventAndFreeOtherChannel {
769 event: events::Event,
770 downstream_counterparty_and_funding_outpoint: Option<(PublicKey, OutPoint, ChannelId, RAAMonitorUpdateBlockingAction)>,
772 /// Indicates we should immediately resume the operation of another channel, unless there is
773 /// some other reason why the channel is blocked. In practice this simply means immediately
774 /// removing the [`RAAMonitorUpdateBlockingAction`] provided from the blocking set.
776 /// This is usually generated when we've forwarded an HTLC and want to block the outbound edge
777 /// from completing a monitor update which removes the payment preimage until the inbound edge
778 /// completes a monitor update containing the payment preimage. However, we use this variant
779 /// instead of [`Self::EmitEventAndFreeOtherChannel`] when we discover that the claim was in
780 /// fact duplicative and we simply want to resume the outbound edge channel immediately.
782 /// This variant should thus never be written to disk, as it is processed inline rather than
783 /// stored for later processing.
784 FreeOtherChannelImmediately {
785 downstream_counterparty_node_id: PublicKey,
786 downstream_funding_outpoint: OutPoint,
787 blocking_action: RAAMonitorUpdateBlockingAction,
788 downstream_channel_id: ChannelId,
792 impl_writeable_tlv_based_enum_upgradable!(MonitorUpdateCompletionAction,
793 (0, PaymentClaimed) => { (0, payment_hash, required) },
794 // Note that FreeOtherChannelImmediately should never be written - we were supposed to free
795 // *immediately*. However, for simplicity we implement read/write here.
796 (1, FreeOtherChannelImmediately) => {
797 (0, downstream_counterparty_node_id, required),
798 (2, downstream_funding_outpoint, required),
799 (4, blocking_action, required),
800 // Note that by the time we get past the required read above, downstream_funding_outpoint will be
801 // filled in, so we can safely unwrap it here.
802 (5, downstream_channel_id, (default_value, ChannelId::v1_from_funding_outpoint(downstream_funding_outpoint.0.unwrap()))),
804 (2, EmitEventAndFreeOtherChannel) => {
805 (0, event, upgradable_required),
806 // LDK prior to 0.0.116 did not have this field as the monitor update application order was
807 // required by clients. If we downgrade to something prior to 0.0.116 this may result in
808 // monitor updates which aren't properly blocked or resumed, however that's fine - we don't
809 // support async monitor updates even in LDK 0.0.116 and once we do we'll require no
810 // downgrades to prior versions.
811 (1, downstream_counterparty_and_funding_outpoint, option),
815 #[derive(Clone, Debug, PartialEq, Eq)]
816 pub(crate) enum EventCompletionAction {
817 ReleaseRAAChannelMonitorUpdate {
818 counterparty_node_id: PublicKey,
819 channel_funding_outpoint: OutPoint,
820 channel_id: ChannelId,
823 impl_writeable_tlv_based_enum!(EventCompletionAction,
824 (0, ReleaseRAAChannelMonitorUpdate) => {
825 (0, channel_funding_outpoint, required),
826 (2, counterparty_node_id, required),
827 // Note that by the time we get past the required read above, channel_funding_outpoint will be
828 // filled in, so we can safely unwrap it here.
829 (3, channel_id, (default_value, ChannelId::v1_from_funding_outpoint(channel_funding_outpoint.0.unwrap()))),
833 #[derive(Clone, PartialEq, Eq, Debug)]
834 /// If something is blocked on the completion of an RAA-generated [`ChannelMonitorUpdate`] we track
835 /// the blocked action here. See enum variants for more info.
836 pub(crate) enum RAAMonitorUpdateBlockingAction {
837 /// A forwarded payment was claimed. We block the downstream channel completing its monitor
838 /// update which removes the HTLC preimage until the upstream channel has gotten the preimage
840 ForwardedPaymentInboundClaim {
841 /// The upstream channel ID (i.e. the inbound edge).
842 channel_id: ChannelId,
843 /// The HTLC ID on the inbound edge.
848 impl RAAMonitorUpdateBlockingAction {
849 fn from_prev_hop_data(prev_hop: &HTLCPreviousHopData) -> Self {
850 Self::ForwardedPaymentInboundClaim {
851 channel_id: prev_hop.channel_id,
852 htlc_id: prev_hop.htlc_id,
857 impl_writeable_tlv_based_enum!(RAAMonitorUpdateBlockingAction,
858 (0, ForwardedPaymentInboundClaim) => { (0, channel_id, required), (2, htlc_id, required) }
862 /// State we hold per-peer.
863 pub(super) struct PeerState<SP: Deref> where SP::Target: SignerProvider {
864 /// `channel_id` -> `ChannelPhase`
866 /// Holds all channels within corresponding `ChannelPhase`s where the peer is the counterparty.
867 pub(super) channel_by_id: HashMap<ChannelId, ChannelPhase<SP>>,
868 /// `temporary_channel_id` -> `InboundChannelRequest`.
870 /// When manual channel acceptance is enabled, this holds all unaccepted inbound channels where
871 /// the peer is the counterparty. If the channel is accepted, then the entry in this table is
872 /// removed, and an InboundV1Channel is created and placed in the `inbound_v1_channel_by_id` table. If
873 /// the channel is rejected, then the entry is simply removed.
874 pub(super) inbound_channel_request_by_id: HashMap<ChannelId, InboundChannelRequest>,
875 /// The latest `InitFeatures` we heard from the peer.
876 latest_features: InitFeatures,
877 /// Messages to send to the peer - pushed to in the same lock that they are generated in (except
878 /// for broadcast messages, where ordering isn't as strict).
879 pub(super) pending_msg_events: Vec<MessageSendEvent>,
880 /// Map from Channel IDs to pending [`ChannelMonitorUpdate`]s which have been passed to the
881 /// user but which have not yet completed.
883 /// Note that the channel may no longer exist. For example if the channel was closed but we
884 /// later needed to claim an HTLC which is pending on-chain, we may generate a monitor update
885 /// for a missing channel.
886 in_flight_monitor_updates: BTreeMap<OutPoint, Vec<ChannelMonitorUpdate>>,
887 /// Map from a specific channel to some action(s) that should be taken when all pending
888 /// [`ChannelMonitorUpdate`]s for the channel complete updating.
890 /// Note that because we generally only have one entry here a HashMap is pretty overkill. A
891 /// BTreeMap currently stores more than ten elements per leaf node, so even up to a few
892 /// channels with a peer this will just be one allocation and will amount to a linear list of
893 /// channels to walk, avoiding the whole hashing rigmarole.
895 /// Note that the channel may no longer exist. For example, if a channel was closed but we
896 /// later needed to claim an HTLC which is pending on-chain, we may generate a monitor update
897 /// for a missing channel. While a malicious peer could construct a second channel with the
898 /// same `temporary_channel_id` (or final `channel_id` in the case of 0conf channels or prior
899 /// to funding appearing on-chain), the downstream `ChannelMonitor` set is required to ensure
900 /// duplicates do not occur, so such channels should fail without a monitor update completing.
901 monitor_update_blocked_actions: BTreeMap<ChannelId, Vec<MonitorUpdateCompletionAction>>,
902 /// If another channel's [`ChannelMonitorUpdate`] needs to complete before a channel we have
903 /// with this peer can complete an RAA [`ChannelMonitorUpdate`] (e.g. because the RAA update
904 /// will remove a preimage that needs to be durably in an upstream channel first), we put an
905 /// entry here to note that the channel with the key's ID is blocked on a set of actions.
906 actions_blocking_raa_monitor_updates: BTreeMap<ChannelId, Vec<RAAMonitorUpdateBlockingAction>>,
907 /// The peer is currently connected (i.e. we've seen a
908 /// [`ChannelMessageHandler::peer_connected`] and no corresponding
909 /// [`ChannelMessageHandler::peer_disconnected`].
910 pub is_connected: bool,
913 impl <SP: Deref> PeerState<SP> where SP::Target: SignerProvider {
914 /// Indicates that a peer meets the criteria where we're ok to remove it from our storage.
915 /// If true is passed for `require_disconnected`, the function will return false if we haven't
916 /// disconnected from the node already, ie. `PeerState::is_connected` is set to `true`.
917 fn ok_to_remove(&self, require_disconnected: bool) -> bool {
918 if require_disconnected && self.is_connected {
921 !self.channel_by_id.iter().any(|(_, phase)|
923 ChannelPhase::Funded(_) | ChannelPhase::UnfundedOutboundV1(_) => true,
924 ChannelPhase::UnfundedInboundV1(_) => false,
925 #[cfg(any(dual_funding, splicing))]
926 ChannelPhase::UnfundedOutboundV2(_) => true,
927 #[cfg(any(dual_funding, splicing))]
928 ChannelPhase::UnfundedInboundV2(_) => false,
931 && self.monitor_update_blocked_actions.is_empty()
932 && self.in_flight_monitor_updates.is_empty()
935 // Returns a count of all channels we have with this peer, including unfunded channels.
936 fn total_channel_count(&self) -> usize {
937 self.channel_by_id.len() + self.inbound_channel_request_by_id.len()
940 // Returns a bool indicating if the given `channel_id` matches a channel we have with this peer.
941 fn has_channel(&self, channel_id: &ChannelId) -> bool {
942 self.channel_by_id.contains_key(channel_id) ||
943 self.inbound_channel_request_by_id.contains_key(channel_id)
947 /// A not-yet-accepted inbound (from counterparty) channel. Once
948 /// accepted, the parameters will be used to construct a channel.
949 pub(super) struct InboundChannelRequest {
950 /// The original OpenChannel message.
951 pub open_channel_msg: msgs::OpenChannel,
952 /// The number of ticks remaining before the request expires.
953 pub ticks_remaining: i32,
956 /// The number of ticks that may elapse while we're waiting for an unaccepted inbound channel to be
957 /// accepted. An unaccepted channel that exceeds this limit will be abandoned.
958 const UNACCEPTED_INBOUND_CHANNEL_AGE_LIMIT_TICKS: i32 = 2;
960 /// Stores a PaymentSecret and any other data we may need to validate an inbound payment is
961 /// actually ours and not some duplicate HTLC sent to us by a node along the route.
963 /// For users who don't want to bother doing their own payment preimage storage, we also store that
966 /// Note that this struct will be removed entirely soon, in favor of storing no inbound payment data
967 /// and instead encoding it in the payment secret.
968 struct PendingInboundPayment {
969 /// The payment secret that the sender must use for us to accept this payment
970 payment_secret: PaymentSecret,
971 /// Time at which this HTLC expires - blocks with a header time above this value will result in
972 /// this payment being removed.
974 /// Arbitrary identifier the user specifies (or not)
975 user_payment_id: u64,
976 // Other required attributes of the payment, optionally enforced:
977 payment_preimage: Option<PaymentPreimage>,
978 min_value_msat: Option<u64>,
981 /// [`SimpleArcChannelManager`] is useful when you need a [`ChannelManager`] with a static lifetime, e.g.
982 /// when you're using `lightning-net-tokio` (since `tokio::spawn` requires parameters with static
983 /// lifetimes). Other times you can afford a reference, which is more efficient, in which case
984 /// [`SimpleRefChannelManager`] is the more appropriate type. Defining these type aliases prevents
985 /// issues such as overly long function definitions. Note that the `ChannelManager` can take any type
986 /// that implements [`NodeSigner`], [`EntropySource`], and [`SignerProvider`] for its keys manager,
987 /// or, respectively, [`Router`] for its router, but this type alias chooses the concrete types
988 /// of [`KeysManager`] and [`DefaultRouter`].
990 /// This is not exported to bindings users as type aliases aren't supported in most languages.
991 #[cfg(not(c_bindings))]
992 pub type SimpleArcChannelManager<M, T, F, L> = ChannelManager<
1000 Arc<NetworkGraph<Arc<L>>>,
1003 Arc<RwLock<ProbabilisticScorer<Arc<NetworkGraph<Arc<L>>>, Arc<L>>>>,
1004 ProbabilisticScoringFeeParameters,
1005 ProbabilisticScorer<Arc<NetworkGraph<Arc<L>>>, Arc<L>>,
1010 /// [`SimpleRefChannelManager`] is a type alias for a ChannelManager reference, and is the reference
1011 /// counterpart to the [`SimpleArcChannelManager`] type alias. Use this type by default when you don't
1012 /// need a ChannelManager with a static lifetime. You'll need a static lifetime in cases such as
1013 /// usage of lightning-net-tokio (since `tokio::spawn` requires parameters with static lifetimes).
1014 /// But if this is not necessary, using a reference is more efficient. Defining these type aliases
1015 /// issues such as overly long function definitions. Note that the ChannelManager can take any type
1016 /// that implements [`NodeSigner`], [`EntropySource`], and [`SignerProvider`] for its keys manager,
1017 /// or, respectively, [`Router`] for its router, but this type alias chooses the concrete types
1018 /// of [`KeysManager`] and [`DefaultRouter`].
1020 /// This is not exported to bindings users as type aliases aren't supported in most languages.
1021 #[cfg(not(c_bindings))]
1022 pub type SimpleRefChannelManager<'a, 'b, 'c, 'd, 'e, 'f, 'g, 'h, M, T, F, L> =
1031 &'f NetworkGraph<&'g L>,
1034 &'h RwLock<ProbabilisticScorer<&'f NetworkGraph<&'g L>, &'g L>>,
1035 ProbabilisticScoringFeeParameters,
1036 ProbabilisticScorer<&'f NetworkGraph<&'g L>, &'g L>
1041 /// A trivial trait which describes any [`ChannelManager`].
1043 /// This is not exported to bindings users as general cover traits aren't useful in other
1045 pub trait AChannelManager {
1046 /// A type implementing [`chain::Watch`].
1047 type Watch: chain::Watch<Self::Signer> + ?Sized;
1048 /// A type that may be dereferenced to [`Self::Watch`].
1049 type M: Deref<Target = Self::Watch>;
1050 /// A type implementing [`BroadcasterInterface`].
1051 type Broadcaster: BroadcasterInterface + ?Sized;
1052 /// A type that may be dereferenced to [`Self::Broadcaster`].
1053 type T: Deref<Target = Self::Broadcaster>;
1054 /// A type implementing [`EntropySource`].
1055 type EntropySource: EntropySource + ?Sized;
1056 /// A type that may be dereferenced to [`Self::EntropySource`].
1057 type ES: Deref<Target = Self::EntropySource>;
1058 /// A type implementing [`NodeSigner`].
1059 type NodeSigner: NodeSigner + ?Sized;
1060 /// A type that may be dereferenced to [`Self::NodeSigner`].
1061 type NS: Deref<Target = Self::NodeSigner>;
1062 /// A type implementing [`WriteableEcdsaChannelSigner`].
1063 type Signer: WriteableEcdsaChannelSigner + Sized;
1064 /// A type implementing [`SignerProvider`] for [`Self::Signer`].
1065 type SignerProvider: SignerProvider<EcdsaSigner= Self::Signer> + ?Sized;
1066 /// A type that may be dereferenced to [`Self::SignerProvider`].
1067 type SP: Deref<Target = Self::SignerProvider>;
1068 /// A type implementing [`FeeEstimator`].
1069 type FeeEstimator: FeeEstimator + ?Sized;
1070 /// A type that may be dereferenced to [`Self::FeeEstimator`].
1071 type F: Deref<Target = Self::FeeEstimator>;
1072 /// A type implementing [`Router`].
1073 type Router: Router + ?Sized;
1074 /// A type that may be dereferenced to [`Self::Router`].
1075 type R: Deref<Target = Self::Router>;
1076 /// A type implementing [`Logger`].
1077 type Logger: Logger + ?Sized;
1078 /// A type that may be dereferenced to [`Self::Logger`].
1079 type L: Deref<Target = Self::Logger>;
1080 /// Returns a reference to the actual [`ChannelManager`] object.
1081 fn get_cm(&self) -> &ChannelManager<Self::M, Self::T, Self::ES, Self::NS, Self::SP, Self::F, Self::R, Self::L>;
1084 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref> AChannelManager
1085 for ChannelManager<M, T, ES, NS, SP, F, R, L>
1087 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
1088 T::Target: BroadcasterInterface,
1089 ES::Target: EntropySource,
1090 NS::Target: NodeSigner,
1091 SP::Target: SignerProvider,
1092 F::Target: FeeEstimator,
1096 type Watch = M::Target;
1098 type Broadcaster = T::Target;
1100 type EntropySource = ES::Target;
1102 type NodeSigner = NS::Target;
1104 type Signer = <SP::Target as SignerProvider>::EcdsaSigner;
1105 type SignerProvider = SP::Target;
1107 type FeeEstimator = F::Target;
1109 type Router = R::Target;
1111 type Logger = L::Target;
1113 fn get_cm(&self) -> &ChannelManager<M, T, ES, NS, SP, F, R, L> { self }
1116 /// A lightning node's channel state machine and payment management logic, which facilitates
1117 /// sending, forwarding, and receiving payments through lightning channels.
1119 /// [`ChannelManager`] is parameterized by a number of components to achieve this.
1120 /// - [`chain::Watch`] (typically [`ChainMonitor`]) for on-chain monitoring and enforcement of each
1122 /// - [`BroadcasterInterface`] for broadcasting transactions related to opening, funding, and
1123 /// closing channels
1124 /// - [`EntropySource`] for providing random data needed for cryptographic operations
1125 /// - [`NodeSigner`] for cryptographic operations scoped to the node
1126 /// - [`SignerProvider`] for providing signers whose operations are scoped to individual channels
1127 /// - [`FeeEstimator`] to determine transaction fee rates needed to have a transaction mined in a
1129 /// - [`Router`] for finding payment paths when initiating and retrying payments
1130 /// - [`Logger`] for logging operational information of varying degrees
1132 /// Additionally, it implements the following traits:
1133 /// - [`ChannelMessageHandler`] to handle off-chain channel activity from peers
1134 /// - [`MessageSendEventsProvider`] to similarly send such messages to peers
1135 /// - [`OffersMessageHandler`] for BOLT 12 message handling and sending
1136 /// - [`EventsProvider`] to generate user-actionable [`Event`]s
1137 /// - [`chain::Listen`] and [`chain::Confirm`] for notification of on-chain activity
1139 /// Thus, [`ChannelManager`] is typically used to parameterize a [`MessageHandler`] and an
1140 /// [`OnionMessenger`]. The latter is required to support BOLT 12 functionality.
1142 /// # `ChannelManager` vs `ChannelMonitor`
1144 /// It's important to distinguish between the *off-chain* management and *on-chain* enforcement of
1145 /// lightning channels. [`ChannelManager`] exchanges messages with peers to manage the off-chain
1146 /// state of each channel. During this process, it generates a [`ChannelMonitor`] for each channel
1147 /// and a [`ChannelMonitorUpdate`] for each relevant change, notifying its parameterized
1148 /// [`chain::Watch`] of them.
1150 /// An implementation of [`chain::Watch`], such as [`ChainMonitor`], is responsible for aggregating
1151 /// these [`ChannelMonitor`]s and applying any [`ChannelMonitorUpdate`]s to them. It then monitors
1152 /// for any pertinent on-chain activity, enforcing claims as needed.
1154 /// This division of off-chain management and on-chain enforcement allows for interesting node
1155 /// setups. For instance, on-chain enforcement could be moved to a separate host or have added
1156 /// redundancy, possibly as a watchtower. See [`chain::Watch`] for the relevant interface.
1158 /// # Initialization
1160 /// Use [`ChannelManager::new`] with the most recent [`BlockHash`] when creating a fresh instance.
1161 /// Otherwise, if restarting, construct [`ChannelManagerReadArgs`] with the necessary parameters and
1162 /// references to any deserialized [`ChannelMonitor`]s that were previously persisted. Use this to
1163 /// deserialize the [`ChannelManager`] and feed it any new chain data since it was last online, as
1164 /// detailed in the [`ChannelManagerReadArgs`] documentation.
1167 /// use bitcoin::BlockHash;
1168 /// use bitcoin::network::constants::Network;
1169 /// use lightning::chain::BestBlock;
1170 /// # use lightning::chain::channelmonitor::ChannelMonitor;
1171 /// use lightning::ln::channelmanager::{ChainParameters, ChannelManager, ChannelManagerReadArgs};
1172 /// # use lightning::routing::gossip::NetworkGraph;
1173 /// use lightning::util::config::UserConfig;
1174 /// use lightning::util::ser::ReadableArgs;
1176 /// # fn read_channel_monitors() -> Vec<ChannelMonitor<lightning::sign::InMemorySigner>> { vec![] }
1179 /// # L: lightning::util::logger::Logger,
1180 /// # ES: lightning::sign::EntropySource,
1181 /// # S: for <'b> lightning::routing::scoring::LockableScore<'b, ScoreLookUp = SL>,
1182 /// # SL: lightning::routing::scoring::ScoreLookUp<ScoreParams = SP>,
1184 /// # R: lightning::io::Read,
1186 /// # fee_estimator: &dyn lightning::chain::chaininterface::FeeEstimator,
1187 /// # chain_monitor: &dyn lightning::chain::Watch<lightning::sign::InMemorySigner>,
1188 /// # tx_broadcaster: &dyn lightning::chain::chaininterface::BroadcasterInterface,
1189 /// # router: &lightning::routing::router::DefaultRouter<&NetworkGraph<&'a L>, &'a L, &ES, &S, SP, SL>,
1191 /// # entropy_source: &ES,
1192 /// # node_signer: &dyn lightning::sign::NodeSigner,
1193 /// # signer_provider: &lightning::sign::DynSignerProvider,
1194 /// # best_block: lightning::chain::BestBlock,
1195 /// # current_timestamp: u32,
1196 /// # mut reader: R,
1197 /// # ) -> Result<(), lightning::ln::msgs::DecodeError> {
1198 /// // Fresh start with no channels
1199 /// let params = ChainParameters {
1200 /// network: Network::Bitcoin,
1203 /// let default_config = UserConfig::default();
1204 /// let channel_manager = ChannelManager::new(
1205 /// fee_estimator, chain_monitor, tx_broadcaster, router, logger, entropy_source, node_signer,
1206 /// signer_provider, default_config, params, current_timestamp
1209 /// // Restart from deserialized data
1210 /// let mut channel_monitors = read_channel_monitors();
1211 /// let args = ChannelManagerReadArgs::new(
1212 /// entropy_source, node_signer, signer_provider, fee_estimator, chain_monitor, tx_broadcaster,
1213 /// router, logger, default_config, channel_monitors.iter_mut().collect()
1215 /// let (block_hash, channel_manager) =
1216 /// <(BlockHash, ChannelManager<_, _, _, _, _, _, _, _>)>::read(&mut reader, args)?;
1218 /// // Update the ChannelManager and ChannelMonitors with the latest chain data
1221 /// // Move the monitors to the ChannelManager's chain::Watch parameter
1222 /// for monitor in channel_monitors {
1223 /// chain_monitor.watch_channel(monitor.get_funding_txo().0, monitor);
1231 /// The following is required for [`ChannelManager`] to function properly:
1232 /// - Handle messages from peers using its [`ChannelMessageHandler`] implementation (typically
1233 /// called by [`PeerManager::read_event`] when processing network I/O)
1234 /// - Send messages to peers obtained via its [`MessageSendEventsProvider`] implementation
1235 /// (typically initiated when [`PeerManager::process_events`] is called)
1236 /// - Feed on-chain activity using either its [`chain::Listen`] or [`chain::Confirm`] implementation
1237 /// as documented by those traits
1238 /// - Perform any periodic channel and payment checks by calling [`timer_tick_occurred`] roughly
1240 /// - Persist to disk whenever [`get_and_clear_needs_persistence`] returns `true` using a
1241 /// [`Persister`] such as a [`KVStore`] implementation
1242 /// - Handle [`Event`]s obtained via its [`EventsProvider`] implementation
1244 /// The [`Future`] returned by [`get_event_or_persistence_needed_future`] is useful in determining
1245 /// when the last two requirements need to be checked.
1247 /// The [`lightning-block-sync`] and [`lightning-transaction-sync`] crates provide utilities that
1248 /// simplify feeding in on-chain activity using the [`chain::Listen`] and [`chain::Confirm`] traits,
1249 /// respectively. The remaining requirements can be met using the [`lightning-background-processor`]
1250 /// crate. For languages other than Rust, the availability of similar utilities may vary.
1254 /// [`ChannelManager`]'s primary function involves managing a channel state. Without channels,
1255 /// payments can't be sent. Use [`list_channels`] or [`list_usable_channels`] for a snapshot of the
1256 /// currently open channels.
1259 /// # use lightning::ln::channelmanager::AChannelManager;
1261 /// # fn example<T: AChannelManager>(channel_manager: T) {
1262 /// # let channel_manager = channel_manager.get_cm();
1263 /// let channels = channel_manager.list_usable_channels();
1264 /// for details in channels {
1265 /// println!("{:?}", details);
1270 /// Each channel is identified using a [`ChannelId`], which will change throughout the channel's
1271 /// life cycle. Additionally, channels are assigned a `user_channel_id`, which is given in
1272 /// [`Event`]s associated with the channel and serves as a fixed identifier but is otherwise unused
1273 /// by [`ChannelManager`].
1275 /// ## Opening Channels
1277 /// To an open a channel with a peer, call [`create_channel`]. This will initiate the process of
1278 /// opening an outbound channel, which requires self-funding when handling
1279 /// [`Event::FundingGenerationReady`].
1282 /// # use bitcoin::{ScriptBuf, Transaction};
1283 /// # use bitcoin::secp256k1::PublicKey;
1284 /// # use lightning::ln::channelmanager::AChannelManager;
1285 /// # use lightning::events::{Event, EventsProvider};
1287 /// # trait Wallet {
1288 /// # fn create_funding_transaction(
1289 /// # &self, _amount_sats: u64, _output_script: ScriptBuf
1290 /// # ) -> Transaction;
1293 /// # fn example<T: AChannelManager, W: Wallet>(channel_manager: T, wallet: W, peer_id: PublicKey) {
1294 /// # let channel_manager = channel_manager.get_cm();
1295 /// let value_sats = 1_000_000;
1296 /// let push_msats = 10_000_000;
1297 /// match channel_manager.create_channel(peer_id, value_sats, push_msats, 42, None, None) {
1298 /// Ok(channel_id) => println!("Opening channel {}", channel_id),
1299 /// Err(e) => println!("Error opening channel: {:?}", e),
1302 /// // On the event processing thread once the peer has responded
1303 /// channel_manager.process_pending_events(&|event| match event {
1304 /// Event::FundingGenerationReady {
1305 /// temporary_channel_id, counterparty_node_id, channel_value_satoshis, output_script,
1306 /// user_channel_id, ..
1308 /// assert_eq!(user_channel_id, 42);
1309 /// let funding_transaction = wallet.create_funding_transaction(
1310 /// channel_value_satoshis, output_script
1312 /// match channel_manager.funding_transaction_generated(
1313 /// &temporary_channel_id, &counterparty_node_id, funding_transaction
1315 /// Ok(()) => println!("Funding channel {}", temporary_channel_id),
1316 /// Err(e) => println!("Error funding channel {}: {:?}", temporary_channel_id, e),
1319 /// Event::ChannelPending { channel_id, user_channel_id, former_temporary_channel_id, .. } => {
1320 /// assert_eq!(user_channel_id, 42);
1322 /// "Channel {} now {} pending (funding transaction has been broadcasted)", channel_id,
1323 /// former_temporary_channel_id.unwrap()
1326 /// Event::ChannelReady { channel_id, user_channel_id, .. } => {
1327 /// assert_eq!(user_channel_id, 42);
1328 /// println!("Channel {} ready", channel_id);
1336 /// ## Accepting Channels
1338 /// Inbound channels are initiated by peers and are automatically accepted unless [`ChannelManager`]
1339 /// has [`UserConfig::manually_accept_inbound_channels`] set. In that case, the channel may be
1340 /// either accepted or rejected when handling [`Event::OpenChannelRequest`].
1343 /// # use bitcoin::secp256k1::PublicKey;
1344 /// # use lightning::ln::channelmanager::AChannelManager;
1345 /// # use lightning::events::{Event, EventsProvider};
1347 /// # fn is_trusted(counterparty_node_id: PublicKey) -> bool {
1349 /// # unimplemented!()
1352 /// # fn example<T: AChannelManager>(channel_manager: T) {
1353 /// # let channel_manager = channel_manager.get_cm();
1354 /// channel_manager.process_pending_events(&|event| match event {
1355 /// Event::OpenChannelRequest { temporary_channel_id, counterparty_node_id, .. } => {
1356 /// if !is_trusted(counterparty_node_id) {
1357 /// match channel_manager.force_close_without_broadcasting_txn(
1358 /// &temporary_channel_id, &counterparty_node_id
1360 /// Ok(()) => println!("Rejecting channel {}", temporary_channel_id),
1361 /// Err(e) => println!("Error rejecting channel {}: {:?}", temporary_channel_id, e),
1366 /// let user_channel_id = 43;
1367 /// match channel_manager.accept_inbound_channel(
1368 /// &temporary_channel_id, &counterparty_node_id, user_channel_id
1370 /// Ok(()) => println!("Accepting channel {}", temporary_channel_id),
1371 /// Err(e) => println!("Error accepting channel {}: {:?}", temporary_channel_id, e),
1380 /// ## Closing Channels
1382 /// There are two ways to close a channel: either cooperatively using [`close_channel`] or
1383 /// unilaterally using [`force_close_broadcasting_latest_txn`]. The former is ideal as it makes for
1384 /// lower fees and immediate access to funds. However, the latter may be necessary if the
1385 /// counterparty isn't behaving properly or has gone offline. [`Event::ChannelClosed`] is generated
1386 /// once the channel has been closed successfully.
1389 /// # use bitcoin::secp256k1::PublicKey;
1390 /// # use lightning::ln::ChannelId;
1391 /// # use lightning::ln::channelmanager::AChannelManager;
1392 /// # use lightning::events::{Event, EventsProvider};
1394 /// # fn example<T: AChannelManager>(
1395 /// # channel_manager: T, channel_id: ChannelId, counterparty_node_id: PublicKey
1397 /// # let channel_manager = channel_manager.get_cm();
1398 /// match channel_manager.close_channel(&channel_id, &counterparty_node_id) {
1399 /// Ok(()) => println!("Closing channel {}", channel_id),
1400 /// Err(e) => println!("Error closing channel {}: {:?}", channel_id, e),
1403 /// // On the event processing thread
1404 /// channel_manager.process_pending_events(&|event| match event {
1405 /// Event::ChannelClosed { channel_id, user_channel_id, .. } => {
1406 /// assert_eq!(user_channel_id, 42);
1407 /// println!("Channel {} closed", channel_id);
1417 /// [`ChannelManager`] is responsible for sending, forwarding, and receiving payments through its
1418 /// channels. A payment is typically initiated from a [BOLT 11] invoice or a [BOLT 12] offer, though
1419 /// spontaneous (i.e., keysend) payments are also possible. Incoming payments don't require
1420 /// maintaining any additional state as [`ChannelManager`] can reconstruct the [`PaymentPreimage`]
1421 /// from the [`PaymentSecret`]. Sending payments, however, require tracking in order to retry failed
1424 /// After a payment is initiated, it will appear in [`list_recent_payments`] until a short time
1425 /// after either an [`Event::PaymentSent`] or [`Event::PaymentFailed`] is handled. Failed HTLCs
1426 /// for a payment will be retried according to the payment's [`Retry`] strategy or until
1427 /// [`abandon_payment`] is called.
1429 /// ## BOLT 11 Invoices
1431 /// The [`lightning-invoice`] crate is useful for creating BOLT 11 invoices. Specifically, use the
1432 /// functions in its `utils` module for constructing invoices that are compatible with
1433 /// [`ChannelManager`]. These functions serve as a convenience for building invoices with the
1434 /// [`PaymentHash`] and [`PaymentSecret`] returned from [`create_inbound_payment`]. To provide your
1435 /// own [`PaymentHash`], use [`create_inbound_payment_for_hash`] or the corresponding functions in
1436 /// the [`lightning-invoice`] `utils` module.
1438 /// [`ChannelManager`] generates an [`Event::PaymentClaimable`] once the full payment has been
1439 /// received. Call [`claim_funds`] to release the [`PaymentPreimage`], which in turn will result in
1440 /// an [`Event::PaymentClaimed`].
1443 /// # use lightning::events::{Event, EventsProvider, PaymentPurpose};
1444 /// # use lightning::ln::channelmanager::AChannelManager;
1446 /// # fn example<T: AChannelManager>(channel_manager: T) {
1447 /// # let channel_manager = channel_manager.get_cm();
1448 /// // Or use utils::create_invoice_from_channelmanager
1449 /// let known_payment_hash = match channel_manager.create_inbound_payment(
1450 /// Some(10_000_000), 3600, None
1452 /// Ok((payment_hash, _payment_secret)) => {
1453 /// println!("Creating inbound payment {}", payment_hash);
1456 /// Err(()) => panic!("Error creating inbound payment"),
1459 /// // On the event processing thread
1460 /// channel_manager.process_pending_events(&|event| match event {
1461 /// Event::PaymentClaimable { payment_hash, purpose, .. } => match purpose {
1462 /// PaymentPurpose::Bolt11InvoicePayment { payment_preimage: Some(payment_preimage), .. } => {
1463 /// assert_eq!(payment_hash, known_payment_hash);
1464 /// println!("Claiming payment {}", payment_hash);
1465 /// channel_manager.claim_funds(payment_preimage);
1467 /// PaymentPurpose::Bolt11InvoicePayment { payment_preimage: None, .. } => {
1468 /// println!("Unknown payment hash: {}", payment_hash);
1470 /// PaymentPurpose::SpontaneousPayment(payment_preimage) => {
1471 /// assert_ne!(payment_hash, known_payment_hash);
1472 /// println!("Claiming spontaneous payment {}", payment_hash);
1473 /// channel_manager.claim_funds(payment_preimage);
1478 /// Event::PaymentClaimed { payment_hash, amount_msat, .. } => {
1479 /// assert_eq!(payment_hash, known_payment_hash);
1480 /// println!("Claimed {} msats", amount_msat);
1488 /// For paying an invoice, [`lightning-invoice`] provides a `payment` module with convenience
1489 /// functions for use with [`send_payment`].
1492 /// # use lightning::events::{Event, EventsProvider};
1493 /// # use lightning::ln::PaymentHash;
1494 /// # use lightning::ln::channelmanager::{AChannelManager, PaymentId, RecentPaymentDetails, RecipientOnionFields, Retry};
1495 /// # use lightning::routing::router::RouteParameters;
1497 /// # fn example<T: AChannelManager>(
1498 /// # channel_manager: T, payment_hash: PaymentHash, recipient_onion: RecipientOnionFields,
1499 /// # route_params: RouteParameters, retry: Retry
1501 /// # let channel_manager = channel_manager.get_cm();
1502 /// // let (payment_hash, recipient_onion, route_params) =
1503 /// // payment::payment_parameters_from_invoice(&invoice);
1504 /// let payment_id = PaymentId([42; 32]);
1505 /// match channel_manager.send_payment(
1506 /// payment_hash, recipient_onion, payment_id, route_params, retry
1508 /// Ok(()) => println!("Sending payment with hash {}", payment_hash),
1509 /// Err(e) => println!("Failed sending payment with hash {}: {:?}", payment_hash, e),
1512 /// let expected_payment_id = payment_id;
1513 /// let expected_payment_hash = payment_hash;
1515 /// channel_manager.list_recent_payments().iter().find(|details| matches!(
1517 /// RecentPaymentDetails::Pending {
1518 /// payment_id: expected_payment_id,
1519 /// payment_hash: expected_payment_hash,
1525 /// // On the event processing thread
1526 /// channel_manager.process_pending_events(&|event| match event {
1527 /// Event::PaymentSent { payment_hash, .. } => println!("Paid {}", payment_hash),
1528 /// Event::PaymentFailed { payment_hash, .. } => println!("Failed paying {}", payment_hash),
1535 /// ## BOLT 12 Offers
1537 /// The [`offers`] module is useful for creating BOLT 12 offers. An [`Offer`] is a precursor to a
1538 /// [`Bolt12Invoice`], which must first be requested by the payer. The interchange of these messages
1539 /// as defined in the specification is handled by [`ChannelManager`] and its implementation of
1540 /// [`OffersMessageHandler`]. However, this only works with an [`Offer`] created using a builder
1541 /// returned by [`create_offer_builder`]. With this approach, BOLT 12 offers and invoices are
1542 /// stateless just as BOLT 11 invoices are.
1545 /// # use lightning::events::{Event, EventsProvider, PaymentPurpose};
1546 /// # use lightning::ln::channelmanager::AChannelManager;
1547 /// # use lightning::offers::parse::Bolt12SemanticError;
1549 /// # fn example<T: AChannelManager>(channel_manager: T) -> Result<(), Bolt12SemanticError> {
1550 /// # let channel_manager = channel_manager.get_cm();
1551 /// let offer = channel_manager
1552 /// .create_offer_builder("coffee".to_string())?
1554 /// # // Needed for compiling for c_bindings
1555 /// # let builder: lightning::offers::offer::OfferBuilder<_, _> = offer.into();
1556 /// # let offer = builder
1557 /// .amount_msats(10_000_000)
1559 /// let bech32_offer = offer.to_string();
1561 /// // On the event processing thread
1562 /// channel_manager.process_pending_events(&|event| match event {
1563 /// Event::PaymentClaimable { payment_hash, purpose, .. } => match purpose {
1564 /// PaymentPurpose::Bolt12OfferPayment { payment_preimage: Some(payment_preimage), .. } => {
1565 /// println!("Claiming payment {}", payment_hash);
1566 /// channel_manager.claim_funds(payment_preimage);
1568 /// PaymentPurpose::Bolt12OfferPayment { payment_preimage: None, .. } => {
1569 /// println!("Unknown payment hash: {}", payment_hash);
1574 /// Event::PaymentClaimed { payment_hash, amount_msat, .. } => {
1575 /// println!("Claimed {} msats", amount_msat);
1584 /// Use [`pay_for_offer`] to initiated payment, which sends an [`InvoiceRequest`] for an [`Offer`]
1585 /// and pays the [`Bolt12Invoice`] response. In addition to success and failure events,
1586 /// [`ChannelManager`] may also generate an [`Event::InvoiceRequestFailed`].
1589 /// # use lightning::events::{Event, EventsProvider};
1590 /// # use lightning::ln::channelmanager::{AChannelManager, PaymentId, RecentPaymentDetails, Retry};
1591 /// # use lightning::offers::offer::Offer;
1593 /// # fn example<T: AChannelManager>(
1594 /// # channel_manager: T, offer: &Offer, quantity: Option<u64>, amount_msats: Option<u64>,
1595 /// # payer_note: Option<String>, retry: Retry, max_total_routing_fee_msat: Option<u64>
1597 /// # let channel_manager = channel_manager.get_cm();
1598 /// let payment_id = PaymentId([42; 32]);
1599 /// match channel_manager.pay_for_offer(
1600 /// offer, quantity, amount_msats, payer_note, payment_id, retry, max_total_routing_fee_msat
1602 /// Ok(()) => println!("Requesting invoice for offer"),
1603 /// Err(e) => println!("Unable to request invoice for offer: {:?}", e),
1606 /// // First the payment will be waiting on an invoice
1607 /// let expected_payment_id = payment_id;
1609 /// channel_manager.list_recent_payments().iter().find(|details| matches!(
1611 /// RecentPaymentDetails::AwaitingInvoice { payment_id: expected_payment_id }
1615 /// // Once the invoice is received, a payment will be sent
1617 /// channel_manager.list_recent_payments().iter().find(|details| matches!(
1619 /// RecentPaymentDetails::Pending { payment_id: expected_payment_id, .. }
1623 /// // On the event processing thread
1624 /// channel_manager.process_pending_events(&|event| match event {
1625 /// Event::PaymentSent { payment_id: Some(payment_id), .. } => println!("Paid {}", payment_id),
1626 /// Event::PaymentFailed { payment_id, .. } => println!("Failed paying {}", payment_id),
1627 /// Event::InvoiceRequestFailed { payment_id, .. } => println!("Failed paying {}", payment_id),
1634 /// ## BOLT 12 Refunds
1636 /// A [`Refund`] is a request for an invoice to be paid. Like *paying* for an [`Offer`], *creating*
1637 /// a [`Refund`] involves maintaining state since it represents a future outbound payment.
1638 /// Therefore, use [`create_refund_builder`] when creating one, otherwise [`ChannelManager`] will
1639 /// refuse to pay any corresponding [`Bolt12Invoice`] that it receives.
1642 /// # use core::time::Duration;
1643 /// # use lightning::events::{Event, EventsProvider};
1644 /// # use lightning::ln::channelmanager::{AChannelManager, PaymentId, RecentPaymentDetails, Retry};
1645 /// # use lightning::offers::parse::Bolt12SemanticError;
1647 /// # fn example<T: AChannelManager>(
1648 /// # channel_manager: T, amount_msats: u64, absolute_expiry: Duration, retry: Retry,
1649 /// # max_total_routing_fee_msat: Option<u64>
1650 /// # ) -> Result<(), Bolt12SemanticError> {
1651 /// # let channel_manager = channel_manager.get_cm();
1652 /// let payment_id = PaymentId([42; 32]);
1653 /// let refund = channel_manager
1654 /// .create_refund_builder(
1655 /// "coffee".to_string(), amount_msats, absolute_expiry, payment_id, retry,
1656 /// max_total_routing_fee_msat
1659 /// # // Needed for compiling for c_bindings
1660 /// # let builder: lightning::offers::refund::RefundBuilder<_> = refund.into();
1661 /// # let refund = builder
1662 /// .payer_note("refund for order 1234".to_string())
1664 /// let bech32_refund = refund.to_string();
1666 /// // First the payment will be waiting on an invoice
1667 /// let expected_payment_id = payment_id;
1669 /// channel_manager.list_recent_payments().iter().find(|details| matches!(
1671 /// RecentPaymentDetails::AwaitingInvoice { payment_id: expected_payment_id }
1675 /// // Once the invoice is received, a payment will be sent
1677 /// channel_manager.list_recent_payments().iter().find(|details| matches!(
1679 /// RecentPaymentDetails::Pending { payment_id: expected_payment_id, .. }
1683 /// // On the event processing thread
1684 /// channel_manager.process_pending_events(&|event| match event {
1685 /// Event::PaymentSent { payment_id: Some(payment_id), .. } => println!("Paid {}", payment_id),
1686 /// Event::PaymentFailed { payment_id, .. } => println!("Failed paying {}", payment_id),
1694 /// Use [`request_refund_payment`] to send a [`Bolt12Invoice`] for receiving the refund. Similar to
1695 /// *creating* an [`Offer`], this is stateless as it represents an inbound payment.
1698 /// # use lightning::events::{Event, EventsProvider, PaymentPurpose};
1699 /// # use lightning::ln::channelmanager::AChannelManager;
1700 /// # use lightning::offers::refund::Refund;
1702 /// # fn example<T: AChannelManager>(channel_manager: T, refund: &Refund) {
1703 /// # let channel_manager = channel_manager.get_cm();
1704 /// let known_payment_hash = match channel_manager.request_refund_payment(refund) {
1705 /// Ok(invoice) => {
1706 /// let payment_hash = invoice.payment_hash();
1707 /// println!("Requesting refund payment {}", payment_hash);
1710 /// Err(e) => panic!("Unable to request payment for refund: {:?}", e),
1713 /// // On the event processing thread
1714 /// channel_manager.process_pending_events(&|event| match event {
1715 /// Event::PaymentClaimable { payment_hash, purpose, .. } => match purpose {
1716 /// PaymentPurpose::Bolt12RefundPayment { payment_preimage: Some(payment_preimage), .. } => {
1717 /// assert_eq!(payment_hash, known_payment_hash);
1718 /// println!("Claiming payment {}", payment_hash);
1719 /// channel_manager.claim_funds(payment_preimage);
1721 /// PaymentPurpose::Bolt12RefundPayment { payment_preimage: None, .. } => {
1722 /// println!("Unknown payment hash: {}", payment_hash);
1727 /// Event::PaymentClaimed { payment_hash, amount_msat, .. } => {
1728 /// assert_eq!(payment_hash, known_payment_hash);
1729 /// println!("Claimed {} msats", amount_msat);
1739 /// Implements [`Writeable`] to write out all channel state to disk. Implies [`peer_disconnected`] for
1740 /// all peers during write/read (though does not modify this instance, only the instance being
1741 /// serialized). This will result in any channels which have not yet exchanged [`funding_created`] (i.e.,
1742 /// called [`funding_transaction_generated`] for outbound channels) being closed.
1744 /// Note that you can be a bit lazier about writing out `ChannelManager` than you can be with
1745 /// [`ChannelMonitor`]. With [`ChannelMonitor`] you MUST durably write each
1746 /// [`ChannelMonitorUpdate`] before returning from
1747 /// [`chain::Watch::watch_channel`]/[`update_channel`] or before completing async writes. With
1748 /// `ChannelManager`s, writing updates happens out-of-band (and will prevent any other
1749 /// `ChannelManager` operations from occurring during the serialization process). If the
1750 /// deserialized version is out-of-date compared to the [`ChannelMonitor`] passed by reference to
1751 /// [`read`], those channels will be force-closed based on the `ChannelMonitor` state and no funds
1752 /// will be lost (modulo on-chain transaction fees).
1754 /// Note that the deserializer is only implemented for `(`[`BlockHash`]`, `[`ChannelManager`]`)`, which
1755 /// tells you the last block hash which was connected. You should get the best block tip before using the manager.
1756 /// See [`chain::Listen`] and [`chain::Confirm`] for more details.
1758 /// # `ChannelUpdate` Messages
1760 /// Note that `ChannelManager` is responsible for tracking liveness of its channels and generating
1761 /// [`ChannelUpdate`] messages informing peers that the channel is temporarily disabled. To avoid
1762 /// spam due to quick disconnection/reconnection, updates are not sent until the channel has been
1763 /// offline for a full minute. In order to track this, you must call
1764 /// [`timer_tick_occurred`] roughly once per minute, though it doesn't have to be perfect.
1766 /// # DoS Mitigation
1768 /// To avoid trivial DoS issues, `ChannelManager` limits the number of inbound connections and
1769 /// inbound channels without confirmed funding transactions. This may result in nodes which we do
1770 /// not have a channel with being unable to connect to us or open new channels with us if we have
1771 /// many peers with unfunded channels.
1773 /// Because it is an indication of trust, inbound channels which we've accepted as 0conf are
1774 /// exempted from the count of unfunded channels. Similarly, outbound channels and connections are
1775 /// never limited. Please ensure you limit the count of such channels yourself.
1779 /// Rather than using a plain `ChannelManager`, it is preferable to use either a [`SimpleArcChannelManager`]
1780 /// a [`SimpleRefChannelManager`], for conciseness. See their documentation for more details, but
1781 /// essentially you should default to using a [`SimpleRefChannelManager`], and use a
1782 /// [`SimpleArcChannelManager`] when you require a `ChannelManager` with a static lifetime, such as when
1783 /// you're using lightning-net-tokio.
1785 /// [`ChainMonitor`]: crate::chain::chainmonitor::ChainMonitor
1786 /// [`MessageHandler`]: crate::ln::peer_handler::MessageHandler
1787 /// [`OnionMessenger`]: crate::onion_message::messenger::OnionMessenger
1788 /// [`PeerManager::read_event`]: crate::ln::peer_handler::PeerManager::read_event
1789 /// [`PeerManager::process_events`]: crate::ln::peer_handler::PeerManager::process_events
1790 /// [`timer_tick_occurred`]: Self::timer_tick_occurred
1791 /// [`get_and_clear_needs_persistence`]: Self::get_and_clear_needs_persistence
1792 /// [`Persister`]: crate::util::persist::Persister
1793 /// [`KVStore`]: crate::util::persist::KVStore
1794 /// [`get_event_or_persistence_needed_future`]: Self::get_event_or_persistence_needed_future
1795 /// [`lightning-block-sync`]: https://docs.rs/lightning_block_sync/latest/lightning_block_sync
1796 /// [`lightning-transaction-sync`]: https://docs.rs/lightning_transaction_sync/latest/lightning_transaction_sync
1797 /// [`lightning-background-processor`]: https://docs.rs/lightning_background_processor/lightning_background_processor
1798 /// [`list_channels`]: Self::list_channels
1799 /// [`list_usable_channels`]: Self::list_usable_channels
1800 /// [`create_channel`]: Self::create_channel
1801 /// [`close_channel`]: Self::force_close_broadcasting_latest_txn
1802 /// [`force_close_broadcasting_latest_txn`]: Self::force_close_broadcasting_latest_txn
1803 /// [BOLT 11]: https://github.com/lightning/bolts/blob/master/11-payment-encoding.md
1804 /// [BOLT 12]: https://github.com/rustyrussell/lightning-rfc/blob/guilt/offers/12-offer-encoding.md
1805 /// [`list_recent_payments`]: Self::list_recent_payments
1806 /// [`abandon_payment`]: Self::abandon_payment
1807 /// [`lightning-invoice`]: https://docs.rs/lightning_invoice/latest/lightning_invoice
1808 /// [`create_inbound_payment`]: Self::create_inbound_payment
1809 /// [`create_inbound_payment_for_hash`]: Self::create_inbound_payment_for_hash
1810 /// [`claim_funds`]: Self::claim_funds
1811 /// [`send_payment`]: Self::send_payment
1812 /// [`offers`]: crate::offers
1813 /// [`create_offer_builder`]: Self::create_offer_builder
1814 /// [`pay_for_offer`]: Self::pay_for_offer
1815 /// [`InvoiceRequest`]: crate::offers::invoice_request::InvoiceRequest
1816 /// [`create_refund_builder`]: Self::create_refund_builder
1817 /// [`request_refund_payment`]: Self::request_refund_payment
1818 /// [`peer_disconnected`]: msgs::ChannelMessageHandler::peer_disconnected
1819 /// [`funding_created`]: msgs::FundingCreated
1820 /// [`funding_transaction_generated`]: Self::funding_transaction_generated
1821 /// [`BlockHash`]: bitcoin::hash_types::BlockHash
1822 /// [`update_channel`]: chain::Watch::update_channel
1823 /// [`ChannelUpdate`]: msgs::ChannelUpdate
1824 /// [`read`]: ReadableArgs::read
1827 // The tree structure below illustrates the lock order requirements for the different locks of the
1828 // `ChannelManager`. Locks can be held at the same time if they are on the same branch in the tree,
1829 // and should then be taken in the order of the lowest to the highest level in the tree.
1830 // Note that locks on different branches shall not be taken at the same time, as doing so will
1831 // create a new lock order for those specific locks in the order they were taken.
1835 // `pending_offers_messages`
1837 // `total_consistency_lock`
1839 // |__`forward_htlcs`
1841 // | |__`pending_intercepted_htlcs`
1843 // |__`decode_update_add_htlcs`
1845 // |__`per_peer_state`
1847 // |__`pending_inbound_payments`
1849 // |__`claimable_payments`
1851 // |__`pending_outbound_payments` // This field's struct contains a map of pending outbounds
1855 // |__`outpoint_to_peer`
1857 // |__`short_to_chan_info`
1859 // |__`outbound_scid_aliases`
1863 // |__`pending_events`
1865 // |__`pending_background_events`
1867 pub struct ChannelManager<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref>
1869 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
1870 T::Target: BroadcasterInterface,
1871 ES::Target: EntropySource,
1872 NS::Target: NodeSigner,
1873 SP::Target: SignerProvider,
1874 F::Target: FeeEstimator,
1878 default_configuration: UserConfig,
1879 chain_hash: ChainHash,
1880 fee_estimator: LowerBoundedFeeEstimator<F>,
1886 /// See `ChannelManager` struct-level documentation for lock order requirements.
1888 pub(super) best_block: RwLock<BestBlock>,
1890 best_block: RwLock<BestBlock>,
1891 secp_ctx: Secp256k1<secp256k1::All>,
1893 /// Storage for PaymentSecrets and any requirements on future inbound payments before we will
1894 /// expose them to users via a PaymentClaimable event. HTLCs which do not meet the requirements
1895 /// here are failed when we process them as pending-forwardable-HTLCs, and entries are removed
1896 /// after we generate a PaymentClaimable upon receipt of all MPP parts or when they time out.
1898 /// See `ChannelManager` struct-level documentation for lock order requirements.
1899 pending_inbound_payments: Mutex<HashMap<PaymentHash, PendingInboundPayment>>,
1901 /// The session_priv bytes and retry metadata of outbound payments which are pending resolution.
1902 /// The authoritative state of these HTLCs resides either within Channels or ChannelMonitors
1903 /// (if the channel has been force-closed), however we track them here to prevent duplicative
1904 /// PaymentSent/PaymentPathFailed events. Specifically, in the case of a duplicative
1905 /// update_fulfill_htlc message after a reconnect, we may "claim" a payment twice.
1906 /// Additionally, because ChannelMonitors are often not re-serialized after connecting block(s)
1907 /// which may generate a claim event, we may receive similar duplicate claim/fail MonitorEvents
1908 /// after reloading from disk while replaying blocks against ChannelMonitors.
1910 /// See `PendingOutboundPayment` documentation for more info.
1912 /// See `ChannelManager` struct-level documentation for lock order requirements.
1913 pending_outbound_payments: OutboundPayments,
1915 /// SCID/SCID Alias -> forward infos. Key of 0 means payments received.
1917 /// Note that because we may have an SCID Alias as the key we can have two entries per channel,
1918 /// though in practice we probably won't be receiving HTLCs for a channel both via the alias
1919 /// and via the classic SCID.
1921 /// Note that no consistency guarantees are made about the existence of a channel with the
1922 /// `short_channel_id` here, nor the `short_channel_id` in the `PendingHTLCInfo`!
1924 /// See `ChannelManager` struct-level documentation for lock order requirements.
1926 pub(super) forward_htlcs: Mutex<HashMap<u64, Vec<HTLCForwardInfo>>>,
1928 forward_htlcs: Mutex<HashMap<u64, Vec<HTLCForwardInfo>>>,
1929 /// Storage for HTLCs that have been intercepted and bubbled up to the user. We hold them here
1930 /// until the user tells us what we should do with them.
1932 /// See `ChannelManager` struct-level documentation for lock order requirements.
1933 pending_intercepted_htlcs: Mutex<HashMap<InterceptId, PendingAddHTLCInfo>>,
1935 /// SCID/SCID Alias -> pending `update_add_htlc`s to decode.
1937 /// Note that because we may have an SCID Alias as the key we can have two entries per channel,
1938 /// though in practice we probably won't be receiving HTLCs for a channel both via the alias
1939 /// and via the classic SCID.
1941 /// Note that no consistency guarantees are made about the existence of a channel with the
1942 /// `short_channel_id` here, nor the `channel_id` in `UpdateAddHTLC`!
1944 /// See `ChannelManager` struct-level documentation for lock order requirements.
1945 decode_update_add_htlcs: Mutex<HashMap<u64, Vec<msgs::UpdateAddHTLC>>>,
1947 /// The sets of payments which are claimable or currently being claimed. See
1948 /// [`ClaimablePayments`]' individual field docs for more info.
1950 /// See `ChannelManager` struct-level documentation for lock order requirements.
1951 claimable_payments: Mutex<ClaimablePayments>,
1953 /// The set of outbound SCID aliases across all our channels, including unconfirmed channels
1954 /// and some closed channels which reached a usable state prior to being closed. This is used
1955 /// only to avoid duplicates, and is not persisted explicitly to disk, but rebuilt from the
1956 /// active channel list on load.
1958 /// See `ChannelManager` struct-level documentation for lock order requirements.
1959 outbound_scid_aliases: Mutex<HashSet<u64>>,
1961 /// Channel funding outpoint -> `counterparty_node_id`.
1963 /// Note that this map should only be used for `MonitorEvent` handling, to be able to access
1964 /// the corresponding channel for the event, as we only have access to the `channel_id` during
1965 /// the handling of the events.
1967 /// Note that no consistency guarantees are made about the existence of a peer with the
1968 /// `counterparty_node_id` in our other maps.
1971 /// The `counterparty_node_id` isn't passed with `MonitorEvent`s currently. To pass it, we need
1972 /// to make `counterparty_node_id`'s a required field in `ChannelMonitor`s, which unfortunately
1973 /// would break backwards compatability.
1974 /// We should add `counterparty_node_id`s to `MonitorEvent`s, and eventually rely on it in the
1975 /// future. That would make this map redundant, as only the `ChannelManager::per_peer_state` is
1976 /// required to access the channel with the `counterparty_node_id`.
1978 /// See `ChannelManager` struct-level documentation for lock order requirements.
1980 outpoint_to_peer: Mutex<HashMap<OutPoint, PublicKey>>,
1982 pub(crate) outpoint_to_peer: Mutex<HashMap<OutPoint, PublicKey>>,
1984 /// SCIDs (and outbound SCID aliases) -> `counterparty_node_id`s and `channel_id`s.
1986 /// Outbound SCID aliases are added here once the channel is available for normal use, with
1987 /// SCIDs being added once the funding transaction is confirmed at the channel's required
1988 /// confirmation depth.
1990 /// Note that while this holds `counterparty_node_id`s and `channel_id`s, no consistency
1991 /// guarantees are made about the existence of a peer with the `counterparty_node_id` nor a
1992 /// channel with the `channel_id` in our other maps.
1994 /// See `ChannelManager` struct-level documentation for lock order requirements.
1996 pub(super) short_to_chan_info: FairRwLock<HashMap<u64, (PublicKey, ChannelId)>>,
1998 short_to_chan_info: FairRwLock<HashMap<u64, (PublicKey, ChannelId)>>,
2000 our_network_pubkey: PublicKey,
2002 inbound_payment_key: inbound_payment::ExpandedKey,
2004 /// LDK puts the [fake scids] that it generates into namespaces, to identify the type of an
2005 /// incoming payment. To make it harder for a third-party to identify the type of a payment,
2006 /// we encrypt the namespace identifier using these bytes.
2008 /// [fake scids]: crate::util::scid_utils::fake_scid
2009 fake_scid_rand_bytes: [u8; 32],
2011 /// When we send payment probes, we generate the [`PaymentHash`] based on this cookie secret
2012 /// and a random [`PaymentId`]. This allows us to discern probes from real payments, without
2013 /// keeping additional state.
2014 probing_cookie_secret: [u8; 32],
2016 /// The highest block timestamp we've seen, which is usually a good guess at the current time.
2017 /// Assuming most miners are generating blocks with reasonable timestamps, this shouldn't be
2018 /// very far in the past, and can only ever be up to two hours in the future.
2019 highest_seen_timestamp: AtomicUsize,
2021 /// The bulk of our storage. Currently the `per_peer_state` stores our channels on a per-peer
2022 /// basis, as well as the peer's latest features.
2024 /// If we are connected to a peer we always at least have an entry here, even if no channels
2025 /// are currently open with that peer.
2027 /// Because adding or removing an entry is rare, we usually take an outer read lock and then
2028 /// operate on the inner value freely. This opens up for parallel per-peer operation for
2031 /// Note that the same thread must never acquire two inner `PeerState` locks at the same time.
2033 /// See `ChannelManager` struct-level documentation for lock order requirements.
2034 #[cfg(not(any(test, feature = "_test_utils")))]
2035 per_peer_state: FairRwLock<HashMap<PublicKey, Mutex<PeerState<SP>>>>,
2036 #[cfg(any(test, feature = "_test_utils"))]
2037 pub(super) per_peer_state: FairRwLock<HashMap<PublicKey, Mutex<PeerState<SP>>>>,
2039 /// The set of events which we need to give to the user to handle. In some cases an event may
2040 /// require some further action after the user handles it (currently only blocking a monitor
2041 /// update from being handed to the user to ensure the included changes to the channel state
2042 /// are handled by the user before they're persisted durably to disk). In that case, the second
2043 /// element in the tuple is set to `Some` with further details of the action.
2045 /// Note that events MUST NOT be removed from pending_events after deserialization, as they
2046 /// could be in the middle of being processed without the direct mutex held.
2048 /// See `ChannelManager` struct-level documentation for lock order requirements.
2049 #[cfg(not(any(test, feature = "_test_utils")))]
2050 pending_events: Mutex<VecDeque<(events::Event, Option<EventCompletionAction>)>>,
2051 #[cfg(any(test, feature = "_test_utils"))]
2052 pub(crate) pending_events: Mutex<VecDeque<(events::Event, Option<EventCompletionAction>)>>,
2054 /// A simple atomic flag to ensure only one task at a time can be processing events asynchronously.
2055 pending_events_processor: AtomicBool,
2057 /// If we are running during init (either directly during the deserialization method or in
2058 /// block connection methods which run after deserialization but before normal operation) we
2059 /// cannot provide the user with [`ChannelMonitorUpdate`]s through the normal update flow -
2060 /// prior to normal operation the user may not have loaded the [`ChannelMonitor`]s into their
2061 /// [`ChainMonitor`] and thus attempting to update it will fail or panic.
2063 /// Thus, we place them here to be handled as soon as possible once we are running normally.
2065 /// See `ChannelManager` struct-level documentation for lock order requirements.
2067 /// [`ChainMonitor`]: crate::chain::chainmonitor::ChainMonitor
2068 pending_background_events: Mutex<Vec<BackgroundEvent>>,
2069 /// Used when we have to take a BIG lock to make sure everything is self-consistent.
2070 /// Essentially just when we're serializing ourselves out.
2071 /// Taken first everywhere where we are making changes before any other locks.
2072 /// When acquiring this lock in read mode, rather than acquiring it directly, call
2073 /// `PersistenceNotifierGuard::notify_on_drop(..)` and pass the lock to it, to ensure the
2074 /// Notifier the lock contains sends out a notification when the lock is released.
2075 total_consistency_lock: RwLock<()>,
2076 /// Tracks the progress of channels going through batch funding by whether funding_signed was
2077 /// received and the monitor has been persisted.
2079 /// This information does not need to be persisted as funding nodes can forget
2080 /// unfunded channels upon disconnection.
2081 funding_batch_states: Mutex<BTreeMap<Txid, Vec<(ChannelId, PublicKey, bool)>>>,
2083 background_events_processed_since_startup: AtomicBool,
2085 event_persist_notifier: Notifier,
2086 needs_persist_flag: AtomicBool,
2088 pending_offers_messages: Mutex<Vec<PendingOnionMessage<OffersMessage>>>,
2090 /// Tracks the message events that are to be broadcasted when we are connected to some peer.
2091 pending_broadcast_messages: Mutex<Vec<MessageSendEvent>>,
2095 signer_provider: SP,
2100 /// Chain-related parameters used to construct a new `ChannelManager`.
2102 /// Typically, the block-specific parameters are derived from the best block hash for the network,
2103 /// as a newly constructed `ChannelManager` will not have created any channels yet. These parameters
2104 /// are not needed when deserializing a previously constructed `ChannelManager`.
2105 #[derive(Clone, Copy, PartialEq)]
2106 pub struct ChainParameters {
2107 /// The network for determining the `chain_hash` in Lightning messages.
2108 pub network: Network,
2110 /// The hash and height of the latest block successfully connected.
2112 /// Used to track on-chain channel funding outputs and send payments with reliable timelocks.
2113 pub best_block: BestBlock,
2116 #[derive(Copy, Clone, PartialEq)]
2120 SkipPersistHandleEvents,
2121 SkipPersistNoEvents,
2124 /// Whenever we release the `ChannelManager`'s `total_consistency_lock`, from read mode, it is
2125 /// desirable to notify any listeners on `await_persistable_update_timeout`/
2126 /// `await_persistable_update` when new updates are available for persistence. Therefore, this
2127 /// struct is responsible for locking the total consistency lock and, upon going out of scope,
2128 /// sending the aforementioned notification (since the lock being released indicates that the
2129 /// updates are ready for persistence).
2131 /// We allow callers to either always notify by constructing with `notify_on_drop` or choose to
2132 /// notify or not based on whether relevant changes have been made, providing a closure to
2133 /// `optionally_notify` which returns a `NotifyOption`.
2134 struct PersistenceNotifierGuard<'a, F: FnMut() -> NotifyOption> {
2135 event_persist_notifier: &'a Notifier,
2136 needs_persist_flag: &'a AtomicBool,
2138 // We hold onto this result so the lock doesn't get released immediately.
2139 _read_guard: RwLockReadGuard<'a, ()>,
2142 impl<'a> PersistenceNotifierGuard<'a, fn() -> NotifyOption> { // We don't care what the concrete F is here, it's unused
2143 /// Notifies any waiters and indicates that we need to persist, in addition to possibly having
2144 /// events to handle.
2146 /// This must always be called if the changes included a `ChannelMonitorUpdate`, as well as in
2147 /// other cases where losing the changes on restart may result in a force-close or otherwise
2149 fn notify_on_drop<C: AChannelManager>(cm: &'a C) -> PersistenceNotifierGuard<'a, impl FnMut() -> NotifyOption> {
2150 Self::optionally_notify(cm, || -> NotifyOption { NotifyOption::DoPersist })
2153 fn optionally_notify<F: FnMut() -> NotifyOption, C: AChannelManager>(cm: &'a C, mut persist_check: F)
2154 -> PersistenceNotifierGuard<'a, impl FnMut() -> NotifyOption> {
2155 let read_guard = cm.get_cm().total_consistency_lock.read().unwrap();
2156 let force_notify = cm.get_cm().process_background_events();
2158 PersistenceNotifierGuard {
2159 event_persist_notifier: &cm.get_cm().event_persist_notifier,
2160 needs_persist_flag: &cm.get_cm().needs_persist_flag,
2161 should_persist: move || {
2162 // Pick the "most" action between `persist_check` and the background events
2163 // processing and return that.
2164 let notify = persist_check();
2165 match (notify, force_notify) {
2166 (NotifyOption::DoPersist, _) => NotifyOption::DoPersist,
2167 (_, NotifyOption::DoPersist) => NotifyOption::DoPersist,
2168 (NotifyOption::SkipPersistHandleEvents, _) => NotifyOption::SkipPersistHandleEvents,
2169 (_, NotifyOption::SkipPersistHandleEvents) => NotifyOption::SkipPersistHandleEvents,
2170 _ => NotifyOption::SkipPersistNoEvents,
2173 _read_guard: read_guard,
2177 /// Note that if any [`ChannelMonitorUpdate`]s are possibly generated,
2178 /// [`ChannelManager::process_background_events`] MUST be called first (or
2179 /// [`Self::optionally_notify`] used).
2180 fn optionally_notify_skipping_background_events<F: Fn() -> NotifyOption, C: AChannelManager>
2181 (cm: &'a C, persist_check: F) -> PersistenceNotifierGuard<'a, F> {
2182 let read_guard = cm.get_cm().total_consistency_lock.read().unwrap();
2184 PersistenceNotifierGuard {
2185 event_persist_notifier: &cm.get_cm().event_persist_notifier,
2186 needs_persist_flag: &cm.get_cm().needs_persist_flag,
2187 should_persist: persist_check,
2188 _read_guard: read_guard,
2193 impl<'a, F: FnMut() -> NotifyOption> Drop for PersistenceNotifierGuard<'a, F> {
2194 fn drop(&mut self) {
2195 match (self.should_persist)() {
2196 NotifyOption::DoPersist => {
2197 self.needs_persist_flag.store(true, Ordering::Release);
2198 self.event_persist_notifier.notify()
2200 NotifyOption::SkipPersistHandleEvents =>
2201 self.event_persist_notifier.notify(),
2202 NotifyOption::SkipPersistNoEvents => {},
2207 /// The amount of time in blocks we require our counterparty wait to claim their money (ie time
2208 /// between when we, or our watchtower, must check for them having broadcast a theft transaction).
2210 /// This can be increased (but not decreased) through [`ChannelHandshakeConfig::our_to_self_delay`]
2212 /// [`ChannelHandshakeConfig::our_to_self_delay`]: crate::util::config::ChannelHandshakeConfig::our_to_self_delay
2213 pub const BREAKDOWN_TIMEOUT: u16 = 6 * 24;
2214 /// The amount of time in blocks we're willing to wait to claim money back to us. This matches
2215 /// the maximum required amount in lnd as of March 2021.
2216 pub(crate) const MAX_LOCAL_BREAKDOWN_TIMEOUT: u16 = 2 * 6 * 24 * 7;
2218 /// The minimum number of blocks between an inbound HTLC's CLTV and the corresponding outbound
2219 /// HTLC's CLTV. The current default represents roughly seven hours of blocks at six blocks/hour.
2221 /// This can be increased (but not decreased) through [`ChannelConfig::cltv_expiry_delta`]
2223 /// [`ChannelConfig::cltv_expiry_delta`]: crate::util::config::ChannelConfig::cltv_expiry_delta
2224 // This should always be a few blocks greater than channelmonitor::CLTV_CLAIM_BUFFER,
2225 // i.e. the node we forwarded the payment on to should always have enough room to reliably time out
2226 // the HTLC via a full update_fail_htlc/commitment_signed dance before we hit the
2227 // CLTV_CLAIM_BUFFER point (we static assert that it's at least 3 blocks more).
2228 pub const MIN_CLTV_EXPIRY_DELTA: u16 = 6*7;
2229 // This should be long enough to allow a payment path drawn across multiple routing hops with substantial
2230 // `cltv_expiry_delta`. Indeed, the length of those values is the reaction delay offered to a routing node
2231 // in case of HTLC on-chain settlement. While appearing less competitive, a node operator could decide to
2232 // scale them up to suit its security policy. At the network-level, we shouldn't constrain them too much,
2233 // while avoiding to introduce a DoS vector. Further, a low CTLV_FAR_FAR_AWAY could be a source of
2234 // routing failure for any HTLC sender picking up an LDK node among the first hops.
2235 pub(super) const CLTV_FAR_FAR_AWAY: u32 = 14 * 24 * 6;
2237 /// Minimum CLTV difference between the current block height and received inbound payments.
2238 /// Invoices generated for payment to us must set their `min_final_cltv_expiry_delta` field to at least
2240 // Note that we fail if exactly HTLC_FAIL_BACK_BUFFER + 1 was used, so we need to add one for
2241 // any payments to succeed. Further, we don't want payments to fail if a block was found while
2242 // a payment was being routed, so we add an extra block to be safe.
2243 pub const MIN_FINAL_CLTV_EXPIRY_DELTA: u16 = HTLC_FAIL_BACK_BUFFER as u16 + 3;
2245 // Check that our CLTV_EXPIRY is at least CLTV_CLAIM_BUFFER + ANTI_REORG_DELAY + LATENCY_GRACE_PERIOD_BLOCKS,
2246 // ie that if the next-hop peer fails the HTLC within
2247 // LATENCY_GRACE_PERIOD_BLOCKS then we'll still have CLTV_CLAIM_BUFFER left to timeout it onchain,
2248 // then waiting ANTI_REORG_DELAY to be reorg-safe on the outbound HLTC and
2249 // failing the corresponding htlc backward, and us now seeing the last block of ANTI_REORG_DELAY before
2250 // LATENCY_GRACE_PERIOD_BLOCKS.
2252 const CHECK_CLTV_EXPIRY_SANITY: u32 = MIN_CLTV_EXPIRY_DELTA as u32 - LATENCY_GRACE_PERIOD_BLOCKS - CLTV_CLAIM_BUFFER - ANTI_REORG_DELAY - LATENCY_GRACE_PERIOD_BLOCKS;
2254 // Check for ability of an attacker to make us fail on-chain by delaying an HTLC claim. See
2255 // ChannelMonitor::should_broadcast_holder_commitment_txn for a description of why this is needed.
2257 const CHECK_CLTV_EXPIRY_SANITY_2: u32 = MIN_CLTV_EXPIRY_DELTA as u32 - LATENCY_GRACE_PERIOD_BLOCKS - 2*CLTV_CLAIM_BUFFER;
2259 /// The number of ticks of [`ChannelManager::timer_tick_occurred`] until expiry of incomplete MPPs
2260 pub(crate) const MPP_TIMEOUT_TICKS: u8 = 3;
2262 /// The number of ticks of [`ChannelManager::timer_tick_occurred`] where a peer is disconnected
2263 /// until we mark the channel disabled and gossip the update.
2264 pub(crate) const DISABLE_GOSSIP_TICKS: u8 = 10;
2266 /// The number of ticks of [`ChannelManager::timer_tick_occurred`] where a peer is connected until
2267 /// we mark the channel enabled and gossip the update.
2268 pub(crate) const ENABLE_GOSSIP_TICKS: u8 = 5;
2270 /// The maximum number of unfunded channels we can have per-peer before we start rejecting new
2271 /// (inbound) ones. The number of peers with unfunded channels is limited separately in
2272 /// [`MAX_UNFUNDED_CHANNEL_PEERS`].
2273 const MAX_UNFUNDED_CHANS_PER_PEER: usize = 4;
2275 /// The maximum number of peers from which we will allow pending unfunded channels. Once we reach
2276 /// this many peers we reject new (inbound) channels from peers with which we don't have a channel.
2277 const MAX_UNFUNDED_CHANNEL_PEERS: usize = 50;
2279 /// The maximum number of peers which we do not have a (funded) channel with. Once we reach this
2280 /// many peers we reject new (inbound) connections.
2281 const MAX_NO_CHANNEL_PEERS: usize = 250;
2283 /// Information needed for constructing an invoice route hint for this channel.
2284 #[derive(Clone, Debug, PartialEq)]
2285 pub struct CounterpartyForwardingInfo {
2286 /// Base routing fee in millisatoshis.
2287 pub fee_base_msat: u32,
2288 /// Amount in millionths of a satoshi the channel will charge per transferred satoshi.
2289 pub fee_proportional_millionths: u32,
2290 /// The minimum difference in cltv_expiry between an ingoing HTLC and its outgoing counterpart,
2291 /// such that the outgoing HTLC is forwardable to this counterparty. See `msgs::ChannelUpdate`'s
2292 /// `cltv_expiry_delta` for more details.
2293 pub cltv_expiry_delta: u16,
2296 /// Channel parameters which apply to our counterparty. These are split out from [`ChannelDetails`]
2297 /// to better separate parameters.
2298 #[derive(Clone, Debug, PartialEq)]
2299 pub struct ChannelCounterparty {
2300 /// The node_id of our counterparty
2301 pub node_id: PublicKey,
2302 /// The Features the channel counterparty provided upon last connection.
2303 /// Useful for routing as it is the most up-to-date copy of the counterparty's features and
2304 /// many routing-relevant features are present in the init context.
2305 pub features: InitFeatures,
2306 /// The value, in satoshis, that must always be held in the channel for our counterparty. This
2307 /// value ensures that if our counterparty broadcasts a revoked state, we can punish them by
2308 /// claiming at least this value on chain.
2310 /// This value is not included in [`inbound_capacity_msat`] as it can never be spent.
2312 /// [`inbound_capacity_msat`]: ChannelDetails::inbound_capacity_msat
2313 pub unspendable_punishment_reserve: u64,
2314 /// Information on the fees and requirements that the counterparty requires when forwarding
2315 /// payments to us through this channel.
2316 pub forwarding_info: Option<CounterpartyForwardingInfo>,
2317 /// The smallest value HTLC (in msat) the remote peer will accept, for this channel. This field
2318 /// is only `None` before we have received either the `OpenChannel` or `AcceptChannel` message
2319 /// from the remote peer, or for `ChannelCounterparty` objects serialized prior to LDK 0.0.107.
2320 pub outbound_htlc_minimum_msat: Option<u64>,
2321 /// The largest value HTLC (in msat) the remote peer currently will accept, for this channel.
2322 pub outbound_htlc_maximum_msat: Option<u64>,
2325 /// Details of a channel, as returned by [`ChannelManager::list_channels`] and [`ChannelManager::list_usable_channels`]
2326 #[derive(Clone, Debug, PartialEq)]
2327 pub struct ChannelDetails {
2328 /// The channel's ID (prior to funding transaction generation, this is a random 32 bytes,
2329 /// thereafter this is the txid of the funding transaction xor the funding transaction output).
2330 /// Note that this means this value is *not* persistent - it can change once during the
2331 /// lifetime of the channel.
2332 pub channel_id: ChannelId,
2333 /// Parameters which apply to our counterparty. See individual fields for more information.
2334 pub counterparty: ChannelCounterparty,
2335 /// The Channel's funding transaction output, if we've negotiated the funding transaction with
2336 /// our counterparty already.
2337 pub funding_txo: Option<OutPoint>,
2338 /// The features which this channel operates with. See individual features for more info.
2340 /// `None` until negotiation completes and the channel type is finalized.
2341 pub channel_type: Option<ChannelTypeFeatures>,
2342 /// The position of the funding transaction in the chain. None if the funding transaction has
2343 /// not yet been confirmed and the channel fully opened.
2345 /// Note that if [`inbound_scid_alias`] is set, it must be used for invoices and inbound
2346 /// payments instead of this. See [`get_inbound_payment_scid`].
2348 /// For channels with [`confirmations_required`] set to `Some(0)`, [`outbound_scid_alias`] may
2349 /// be used in place of this in outbound routes. See [`get_outbound_payment_scid`].
2351 /// [`inbound_scid_alias`]: Self::inbound_scid_alias
2352 /// [`outbound_scid_alias`]: Self::outbound_scid_alias
2353 /// [`get_inbound_payment_scid`]: Self::get_inbound_payment_scid
2354 /// [`get_outbound_payment_scid`]: Self::get_outbound_payment_scid
2355 /// [`confirmations_required`]: Self::confirmations_required
2356 pub short_channel_id: Option<u64>,
2357 /// An optional [`short_channel_id`] alias for this channel, randomly generated by us and
2358 /// usable in place of [`short_channel_id`] to reference the channel in outbound routes when
2359 /// the channel has not yet been confirmed (as long as [`confirmations_required`] is
2362 /// This will be `None` as long as the channel is not available for routing outbound payments.
2364 /// [`short_channel_id`]: Self::short_channel_id
2365 /// [`confirmations_required`]: Self::confirmations_required
2366 pub outbound_scid_alias: Option<u64>,
2367 /// An optional [`short_channel_id`] alias for this channel, randomly generated by our
2368 /// counterparty and usable in place of [`short_channel_id`] in invoice route hints. Our
2369 /// counterparty will recognize the alias provided here in place of the [`short_channel_id`]
2370 /// when they see a payment to be routed to us.
2372 /// Our counterparty may choose to rotate this value at any time, though will always recognize
2373 /// previous values for inbound payment forwarding.
2375 /// [`short_channel_id`]: Self::short_channel_id
2376 pub inbound_scid_alias: Option<u64>,
2377 /// The value, in satoshis, of this channel as appears in the funding output
2378 pub channel_value_satoshis: u64,
2379 /// The value, in satoshis, that must always be held in the channel for us. This value ensures
2380 /// that if we broadcast a revoked state, our counterparty can punish us by claiming at least
2381 /// this value on chain.
2383 /// This value is not included in [`outbound_capacity_msat`] as it can never be spent.
2385 /// This value will be `None` for outbound channels until the counterparty accepts the channel.
2387 /// [`outbound_capacity_msat`]: ChannelDetails::outbound_capacity_msat
2388 pub unspendable_punishment_reserve: Option<u64>,
2389 /// The `user_channel_id` value passed in to [`ChannelManager::create_channel`] for outbound
2390 /// channels, or to [`ChannelManager::accept_inbound_channel`] for inbound channels if
2391 /// [`UserConfig::manually_accept_inbound_channels`] config flag is set to true. Otherwise
2392 /// `user_channel_id` will be randomized for an inbound channel. This may be zero for objects
2393 /// serialized with LDK versions prior to 0.0.113.
2395 /// [`ChannelManager::create_channel`]: crate::ln::channelmanager::ChannelManager::create_channel
2396 /// [`ChannelManager::accept_inbound_channel`]: crate::ln::channelmanager::ChannelManager::accept_inbound_channel
2397 /// [`UserConfig::manually_accept_inbound_channels`]: crate::util::config::UserConfig::manually_accept_inbound_channels
2398 pub user_channel_id: u128,
2399 /// The currently negotiated fee rate denominated in satoshi per 1000 weight units,
2400 /// which is applied to commitment and HTLC transactions.
2402 /// This value will be `None` for objects serialized with LDK versions prior to 0.0.115.
2403 pub feerate_sat_per_1000_weight: Option<u32>,
2404 /// Our total balance. This is the amount we would get if we close the channel.
2405 /// This value is not exact. Due to various in-flight changes and feerate changes, exactly this
2406 /// amount is not likely to be recoverable on close.
2408 /// This does not include any pending HTLCs which are not yet fully resolved (and, thus, whose
2409 /// balance is not available for inclusion in new outbound HTLCs). This further does not include
2410 /// any pending outgoing HTLCs which are awaiting some other resolution to be sent.
2411 /// This does not consider any on-chain fees.
2413 /// See also [`ChannelDetails::outbound_capacity_msat`]
2414 pub balance_msat: u64,
2415 /// The available outbound capacity for sending HTLCs to the remote peer. This does not include
2416 /// any pending HTLCs which are not yet fully resolved (and, thus, whose balance is not
2417 /// available for inclusion in new outbound HTLCs). This further does not include any pending
2418 /// outgoing HTLCs which are awaiting some other resolution to be sent.
2420 /// See also [`ChannelDetails::balance_msat`]
2422 /// This value is not exact. Due to various in-flight changes, feerate changes, and our
2423 /// conflict-avoidance policy, exactly this amount is not likely to be spendable. However, we
2424 /// should be able to spend nearly this amount.
2425 pub outbound_capacity_msat: u64,
2426 /// The available outbound capacity for sending a single HTLC to the remote peer. This is
2427 /// similar to [`ChannelDetails::outbound_capacity_msat`] but it may be further restricted by
2428 /// the current state and per-HTLC limit(s). This is intended for use when routing, allowing us
2429 /// to use a limit as close as possible to the HTLC limit we can currently send.
2431 /// See also [`ChannelDetails::next_outbound_htlc_minimum_msat`],
2432 /// [`ChannelDetails::balance_msat`], and [`ChannelDetails::outbound_capacity_msat`].
2433 pub next_outbound_htlc_limit_msat: u64,
2434 /// The minimum value for sending a single HTLC to the remote peer. This is the equivalent of
2435 /// [`ChannelDetails::next_outbound_htlc_limit_msat`] but represents a lower-bound, rather than
2436 /// an upper-bound. This is intended for use when routing, allowing us to ensure we pick a
2437 /// route which is valid.
2438 pub next_outbound_htlc_minimum_msat: u64,
2439 /// The available inbound capacity for the remote peer to send HTLCs to us. This does not
2440 /// include any pending HTLCs which are not yet fully resolved (and, thus, whose balance is not
2441 /// available for inclusion in new inbound HTLCs).
2442 /// Note that there are some corner cases not fully handled here, so the actual available
2443 /// inbound capacity may be slightly higher than this.
2445 /// This value is not exact. Due to various in-flight changes, feerate changes, and our
2446 /// counterparty's conflict-avoidance policy, exactly this amount is not likely to be spendable.
2447 /// However, our counterparty should be able to spend nearly this amount.
2448 pub inbound_capacity_msat: u64,
2449 /// The number of required confirmations on the funding transaction before the funding will be
2450 /// considered "locked". This number is selected by the channel fundee (i.e. us if
2451 /// [`is_outbound`] is *not* set), and can be selected for inbound channels with
2452 /// [`ChannelHandshakeConfig::minimum_depth`] or limited for outbound channels with
2453 /// [`ChannelHandshakeLimits::max_minimum_depth`].
2455 /// This value will be `None` for outbound channels until the counterparty accepts the channel.
2457 /// [`is_outbound`]: ChannelDetails::is_outbound
2458 /// [`ChannelHandshakeConfig::minimum_depth`]: crate::util::config::ChannelHandshakeConfig::minimum_depth
2459 /// [`ChannelHandshakeLimits::max_minimum_depth`]: crate::util::config::ChannelHandshakeLimits::max_minimum_depth
2460 pub confirmations_required: Option<u32>,
2461 /// The current number of confirmations on the funding transaction.
2463 /// This value will be `None` for objects serialized with LDK versions prior to 0.0.113.
2464 pub confirmations: Option<u32>,
2465 /// The number of blocks (after our commitment transaction confirms) that we will need to wait
2466 /// until we can claim our funds after we force-close the channel. During this time our
2467 /// counterparty is allowed to punish us if we broadcasted a stale state. If our counterparty
2468 /// force-closes the channel and broadcasts a commitment transaction we do not have to wait any
2469 /// time to claim our non-HTLC-encumbered funds.
2471 /// This value will be `None` for outbound channels until the counterparty accepts the channel.
2472 pub force_close_spend_delay: Option<u16>,
2473 /// True if the channel was initiated (and thus funded) by us.
2474 pub is_outbound: bool,
2475 /// True if the channel is confirmed, channel_ready messages have been exchanged, and the
2476 /// channel is not currently being shut down. `channel_ready` message exchange implies the
2477 /// required confirmation count has been reached (and we were connected to the peer at some
2478 /// point after the funding transaction received enough confirmations). The required
2479 /// confirmation count is provided in [`confirmations_required`].
2481 /// [`confirmations_required`]: ChannelDetails::confirmations_required
2482 pub is_channel_ready: bool,
2483 /// The stage of the channel's shutdown.
2484 /// `None` for `ChannelDetails` serialized on LDK versions prior to 0.0.116.
2485 pub channel_shutdown_state: Option<ChannelShutdownState>,
2486 /// True if the channel is (a) confirmed and channel_ready messages have been exchanged, (b)
2487 /// the peer is connected, and (c) the channel is not currently negotiating a shutdown.
2489 /// This is a strict superset of `is_channel_ready`.
2490 pub is_usable: bool,
2491 /// True if this channel is (or will be) publicly-announced.
2492 pub is_public: bool,
2493 /// The smallest value HTLC (in msat) we will accept, for this channel. This field
2494 /// is only `None` for `ChannelDetails` objects serialized prior to LDK 0.0.107
2495 pub inbound_htlc_minimum_msat: Option<u64>,
2496 /// The largest value HTLC (in msat) we currently will accept, for this channel.
2497 pub inbound_htlc_maximum_msat: Option<u64>,
2498 /// Set of configurable parameters that affect channel operation.
2500 /// This field is only `None` for `ChannelDetails` objects serialized prior to LDK 0.0.109.
2501 pub config: Option<ChannelConfig>,
2502 /// Pending inbound HTLCs.
2504 /// This field is empty for objects serialized with LDK versions prior to 0.0.122.
2505 pub pending_inbound_htlcs: Vec<InboundHTLCDetails>,
2506 /// Pending outbound HTLCs.
2508 /// This field is empty for objects serialized with LDK versions prior to 0.0.122.
2509 pub pending_outbound_htlcs: Vec<OutboundHTLCDetails>,
2512 impl ChannelDetails {
2513 /// Gets the current SCID which should be used to identify this channel for inbound payments.
2514 /// This should be used for providing invoice hints or in any other context where our
2515 /// counterparty will forward a payment to us.
2517 /// This is either the [`ChannelDetails::inbound_scid_alias`], if set, or the
2518 /// [`ChannelDetails::short_channel_id`]. See those for more information.
2519 pub fn get_inbound_payment_scid(&self) -> Option<u64> {
2520 self.inbound_scid_alias.or(self.short_channel_id)
2523 /// Gets the current SCID which should be used to identify this channel for outbound payments.
2524 /// This should be used in [`Route`]s to describe the first hop or in other contexts where
2525 /// we're sending or forwarding a payment outbound over this channel.
2527 /// This is either the [`ChannelDetails::short_channel_id`], if set, or the
2528 /// [`ChannelDetails::outbound_scid_alias`]. See those for more information.
2529 pub fn get_outbound_payment_scid(&self) -> Option<u64> {
2530 self.short_channel_id.or(self.outbound_scid_alias)
2533 fn from_channel_context<SP: Deref, F: Deref>(
2534 context: &ChannelContext<SP>, best_block_height: u32, latest_features: InitFeatures,
2535 fee_estimator: &LowerBoundedFeeEstimator<F>
2538 SP::Target: SignerProvider,
2539 F::Target: FeeEstimator
2541 let balance = context.get_available_balances(fee_estimator);
2542 let (to_remote_reserve_satoshis, to_self_reserve_satoshis) =
2543 context.get_holder_counterparty_selected_channel_reserve_satoshis();
2545 channel_id: context.channel_id(),
2546 counterparty: ChannelCounterparty {
2547 node_id: context.get_counterparty_node_id(),
2548 features: latest_features,
2549 unspendable_punishment_reserve: to_remote_reserve_satoshis,
2550 forwarding_info: context.counterparty_forwarding_info(),
2551 // Ensures that we have actually received the `htlc_minimum_msat` value
2552 // from the counterparty through the `OpenChannel` or `AcceptChannel`
2553 // message (as they are always the first message from the counterparty).
2554 // Else `Channel::get_counterparty_htlc_minimum_msat` could return the
2555 // default `0` value set by `Channel::new_outbound`.
2556 outbound_htlc_minimum_msat: if context.have_received_message() {
2557 Some(context.get_counterparty_htlc_minimum_msat()) } else { None },
2558 outbound_htlc_maximum_msat: context.get_counterparty_htlc_maximum_msat(),
2560 funding_txo: context.get_funding_txo(),
2561 // Note that accept_channel (or open_channel) is always the first message, so
2562 // `have_received_message` indicates that type negotiation has completed.
2563 channel_type: if context.have_received_message() { Some(context.get_channel_type().clone()) } else { None },
2564 short_channel_id: context.get_short_channel_id(),
2565 outbound_scid_alias: if context.is_usable() { Some(context.outbound_scid_alias()) } else { None },
2566 inbound_scid_alias: context.latest_inbound_scid_alias(),
2567 channel_value_satoshis: context.get_value_satoshis(),
2568 feerate_sat_per_1000_weight: Some(context.get_feerate_sat_per_1000_weight()),
2569 unspendable_punishment_reserve: to_self_reserve_satoshis,
2570 balance_msat: balance.balance_msat,
2571 inbound_capacity_msat: balance.inbound_capacity_msat,
2572 outbound_capacity_msat: balance.outbound_capacity_msat,
2573 next_outbound_htlc_limit_msat: balance.next_outbound_htlc_limit_msat,
2574 next_outbound_htlc_minimum_msat: balance.next_outbound_htlc_minimum_msat,
2575 user_channel_id: context.get_user_id(),
2576 confirmations_required: context.minimum_depth(),
2577 confirmations: Some(context.get_funding_tx_confirmations(best_block_height)),
2578 force_close_spend_delay: context.get_counterparty_selected_contest_delay(),
2579 is_outbound: context.is_outbound(),
2580 is_channel_ready: context.is_usable(),
2581 is_usable: context.is_live(),
2582 is_public: context.should_announce(),
2583 inbound_htlc_minimum_msat: Some(context.get_holder_htlc_minimum_msat()),
2584 inbound_htlc_maximum_msat: context.get_holder_htlc_maximum_msat(),
2585 config: Some(context.config()),
2586 channel_shutdown_state: Some(context.shutdown_state()),
2587 pending_inbound_htlcs: context.get_pending_inbound_htlc_details(),
2588 pending_outbound_htlcs: context.get_pending_outbound_htlc_details(),
2593 #[derive(Clone, Copy, Debug, PartialEq, Eq)]
2594 /// Further information on the details of the channel shutdown.
2595 /// Upon channels being forced closed (i.e. commitment transaction confirmation detected
2596 /// by `ChainMonitor`), ChannelShutdownState will be set to `ShutdownComplete` or
2597 /// the channel will be removed shortly.
2598 /// Also note, that in normal operation, peers could disconnect at any of these states
2599 /// and require peer re-connection before making progress onto other states
2600 pub enum ChannelShutdownState {
2601 /// Channel has not sent or received a shutdown message.
2603 /// Local node has sent a shutdown message for this channel.
2605 /// Shutdown message exchanges have concluded and the channels are in the midst of
2606 /// resolving all existing open HTLCs before closing can continue.
2608 /// All HTLCs have been resolved, nodes are currently negotiating channel close onchain fee rates.
2609 NegotiatingClosingFee,
2610 /// We've successfully negotiated a closing_signed dance. At this point `ChannelManager` is about
2611 /// to drop the channel.
2615 /// Used by [`ChannelManager::list_recent_payments`] to express the status of recent payments.
2616 /// These include payments that have yet to find a successful path, or have unresolved HTLCs.
2617 #[derive(Debug, PartialEq)]
2618 pub enum RecentPaymentDetails {
2619 /// When an invoice was requested and thus a payment has not yet been sent.
2621 /// A user-provided identifier in [`ChannelManager::send_payment`] used to uniquely identify
2622 /// a payment and ensure idempotency in LDK.
2623 payment_id: PaymentId,
2625 /// When a payment is still being sent and awaiting successful delivery.
2627 /// A user-provided identifier in [`ChannelManager::send_payment`] used to uniquely identify
2628 /// a payment and ensure idempotency in LDK.
2629 payment_id: PaymentId,
2630 /// Hash of the payment that is currently being sent but has yet to be fulfilled or
2632 payment_hash: PaymentHash,
2633 /// Total amount (in msat, excluding fees) across all paths for this payment,
2634 /// not just the amount currently inflight.
2637 /// When a pending payment is fulfilled, we continue tracking it until all pending HTLCs have
2638 /// been resolved. Upon receiving [`Event::PaymentSent`], we delay for a few minutes before the
2639 /// payment is removed from tracking.
2641 /// A user-provided identifier in [`ChannelManager::send_payment`] used to uniquely identify
2642 /// a payment and ensure idempotency in LDK.
2643 payment_id: PaymentId,
2644 /// Hash of the payment that was claimed. `None` for serializations of [`ChannelManager`]
2645 /// made before LDK version 0.0.104.
2646 payment_hash: Option<PaymentHash>,
2648 /// After a payment's retries are exhausted per the provided [`Retry`], or it is explicitly
2649 /// abandoned via [`ChannelManager::abandon_payment`], it is marked as abandoned until all
2650 /// pending HTLCs for this payment resolve and an [`Event::PaymentFailed`] is generated.
2652 /// A user-provided identifier in [`ChannelManager::send_payment`] used to uniquely identify
2653 /// a payment and ensure idempotency in LDK.
2654 payment_id: PaymentId,
2655 /// Hash of the payment that we have given up trying to send.
2656 payment_hash: PaymentHash,
2660 /// Route hints used in constructing invoices for [phantom node payents].
2662 /// [phantom node payments]: crate::sign::PhantomKeysManager
2664 pub struct PhantomRouteHints {
2665 /// The list of channels to be included in the invoice route hints.
2666 pub channels: Vec<ChannelDetails>,
2667 /// A fake scid used for representing the phantom node's fake channel in generating the invoice
2669 pub phantom_scid: u64,
2670 /// The pubkey of the real backing node that would ultimately receive the payment.
2671 pub real_node_pubkey: PublicKey,
2674 macro_rules! handle_error {
2675 ($self: ident, $internal: expr, $counterparty_node_id: expr) => { {
2676 // In testing, ensure there are no deadlocks where the lock is already held upon
2677 // entering the macro.
2678 debug_assert_ne!($self.pending_events.held_by_thread(), LockHeldState::HeldByThread);
2679 debug_assert_ne!($self.per_peer_state.held_by_thread(), LockHeldState::HeldByThread);
2683 Err(MsgHandleErrInternal { err, shutdown_finish, .. }) => {
2684 let mut msg_event = None;
2686 if let Some((shutdown_res, update_option)) = shutdown_finish {
2687 let counterparty_node_id = shutdown_res.counterparty_node_id;
2688 let channel_id = shutdown_res.channel_id;
2689 let logger = WithContext::from(
2690 &$self.logger, Some(counterparty_node_id), Some(channel_id),
2692 log_error!(logger, "Force-closing channel: {}", err.err);
2694 $self.finish_close_channel(shutdown_res);
2695 if let Some(update) = update_option {
2696 let mut pending_broadcast_messages = $self.pending_broadcast_messages.lock().unwrap();
2697 pending_broadcast_messages.push(events::MessageSendEvent::BroadcastChannelUpdate {
2702 log_error!($self.logger, "Got non-closing error: {}", err.err);
2705 if let msgs::ErrorAction::IgnoreError = err.action {
2707 msg_event = Some(events::MessageSendEvent::HandleError {
2708 node_id: $counterparty_node_id,
2709 action: err.action.clone()
2713 if let Some(msg_event) = msg_event {
2714 let per_peer_state = $self.per_peer_state.read().unwrap();
2715 if let Some(peer_state_mutex) = per_peer_state.get(&$counterparty_node_id) {
2716 let mut peer_state = peer_state_mutex.lock().unwrap();
2717 peer_state.pending_msg_events.push(msg_event);
2721 // Return error in case higher-API need one
2728 macro_rules! update_maps_on_chan_removal {
2729 ($self: expr, $channel_context: expr) => {{
2730 if let Some(outpoint) = $channel_context.get_funding_txo() {
2731 $self.outpoint_to_peer.lock().unwrap().remove(&outpoint);
2733 let mut short_to_chan_info = $self.short_to_chan_info.write().unwrap();
2734 if let Some(short_id) = $channel_context.get_short_channel_id() {
2735 short_to_chan_info.remove(&short_id);
2737 // If the channel was never confirmed on-chain prior to its closure, remove the
2738 // outbound SCID alias we used for it from the collision-prevention set. While we
2739 // generally want to avoid ever re-using an outbound SCID alias across all channels, we
2740 // also don't want a counterparty to be able to trivially cause a memory leak by simply
2741 // opening a million channels with us which are closed before we ever reach the funding
2743 let alias_removed = $self.outbound_scid_aliases.lock().unwrap().remove(&$channel_context.outbound_scid_alias());
2744 debug_assert!(alias_removed);
2746 short_to_chan_info.remove(&$channel_context.outbound_scid_alias());
2750 /// Returns (boolean indicating if we should remove the Channel object from memory, a mapped error)
2751 macro_rules! convert_chan_phase_err {
2752 ($self: ident, $err: expr, $channel: expr, $channel_id: expr, MANUAL_CHANNEL_UPDATE, $channel_update: expr) => {
2754 ChannelError::Warn(msg) => {
2755 (false, MsgHandleErrInternal::from_chan_no_close(ChannelError::Warn(msg), *$channel_id))
2757 ChannelError::Ignore(msg) => {
2758 (false, MsgHandleErrInternal::from_chan_no_close(ChannelError::Ignore(msg), *$channel_id))
2760 ChannelError::Close(msg) => {
2761 let logger = WithChannelContext::from(&$self.logger, &$channel.context);
2762 log_error!(logger, "Closing channel {} due to close-required error: {}", $channel_id, msg);
2763 update_maps_on_chan_removal!($self, $channel.context);
2764 let reason = ClosureReason::ProcessingError { err: msg.clone() };
2765 let shutdown_res = $channel.context.force_shutdown(true, reason);
2767 MsgHandleErrInternal::from_finish_shutdown(msg, *$channel_id, shutdown_res, $channel_update);
2772 ($self: ident, $err: expr, $channel: expr, $channel_id: expr, FUNDED_CHANNEL) => {
2773 convert_chan_phase_err!($self, $err, $channel, $channel_id, MANUAL_CHANNEL_UPDATE, { $self.get_channel_update_for_broadcast($channel).ok() })
2775 ($self: ident, $err: expr, $channel: expr, $channel_id: expr, UNFUNDED_CHANNEL) => {
2776 convert_chan_phase_err!($self, $err, $channel, $channel_id, MANUAL_CHANNEL_UPDATE, None)
2778 ($self: ident, $err: expr, $channel_phase: expr, $channel_id: expr) => {
2779 match $channel_phase {
2780 ChannelPhase::Funded(channel) => {
2781 convert_chan_phase_err!($self, $err, channel, $channel_id, FUNDED_CHANNEL)
2783 ChannelPhase::UnfundedOutboundV1(channel) => {
2784 convert_chan_phase_err!($self, $err, channel, $channel_id, UNFUNDED_CHANNEL)
2786 ChannelPhase::UnfundedInboundV1(channel) => {
2787 convert_chan_phase_err!($self, $err, channel, $channel_id, UNFUNDED_CHANNEL)
2789 #[cfg(any(dual_funding, splicing))]
2790 ChannelPhase::UnfundedOutboundV2(channel) => {
2791 convert_chan_phase_err!($self, $err, channel, $channel_id, UNFUNDED_CHANNEL)
2793 #[cfg(any(dual_funding, splicing))]
2794 ChannelPhase::UnfundedInboundV2(channel) => {
2795 convert_chan_phase_err!($self, $err, channel, $channel_id, UNFUNDED_CHANNEL)
2801 macro_rules! break_chan_phase_entry {
2802 ($self: ident, $res: expr, $entry: expr) => {
2806 let key = *$entry.key();
2807 let (drop, res) = convert_chan_phase_err!($self, e, $entry.get_mut(), &key);
2809 $entry.remove_entry();
2817 macro_rules! try_chan_phase_entry {
2818 ($self: ident, $res: expr, $entry: expr) => {
2822 let key = *$entry.key();
2823 let (drop, res) = convert_chan_phase_err!($self, e, $entry.get_mut(), &key);
2825 $entry.remove_entry();
2833 macro_rules! remove_channel_phase {
2834 ($self: expr, $entry: expr) => {
2836 let channel = $entry.remove_entry().1;
2837 update_maps_on_chan_removal!($self, &channel.context());
2843 macro_rules! send_channel_ready {
2844 ($self: ident, $pending_msg_events: expr, $channel: expr, $channel_ready_msg: expr) => {{
2845 $pending_msg_events.push(events::MessageSendEvent::SendChannelReady {
2846 node_id: $channel.context.get_counterparty_node_id(),
2847 msg: $channel_ready_msg,
2849 // Note that we may send a `channel_ready` multiple times for a channel if we reconnect, so
2850 // we allow collisions, but we shouldn't ever be updating the channel ID pointed to.
2851 let mut short_to_chan_info = $self.short_to_chan_info.write().unwrap();
2852 let outbound_alias_insert = short_to_chan_info.insert($channel.context.outbound_scid_alias(), ($channel.context.get_counterparty_node_id(), $channel.context.channel_id()));
2853 assert!(outbound_alias_insert.is_none() || outbound_alias_insert.unwrap() == ($channel.context.get_counterparty_node_id(), $channel.context.channel_id()),
2854 "SCIDs should never collide - ensure you weren't behind the chain tip by a full month when creating channels");
2855 if let Some(real_scid) = $channel.context.get_short_channel_id() {
2856 let scid_insert = short_to_chan_info.insert(real_scid, ($channel.context.get_counterparty_node_id(), $channel.context.channel_id()));
2857 assert!(scid_insert.is_none() || scid_insert.unwrap() == ($channel.context.get_counterparty_node_id(), $channel.context.channel_id()),
2858 "SCIDs should never collide - ensure you weren't behind the chain tip by a full month when creating channels");
2863 macro_rules! emit_channel_pending_event {
2864 ($locked_events: expr, $channel: expr) => {
2865 if $channel.context.should_emit_channel_pending_event() {
2866 $locked_events.push_back((events::Event::ChannelPending {
2867 channel_id: $channel.context.channel_id(),
2868 former_temporary_channel_id: $channel.context.temporary_channel_id(),
2869 counterparty_node_id: $channel.context.get_counterparty_node_id(),
2870 user_channel_id: $channel.context.get_user_id(),
2871 funding_txo: $channel.context.get_funding_txo().unwrap().into_bitcoin_outpoint(),
2872 channel_type: Some($channel.context.get_channel_type().clone()),
2874 $channel.context.set_channel_pending_event_emitted();
2879 macro_rules! emit_channel_ready_event {
2880 ($locked_events: expr, $channel: expr) => {
2881 if $channel.context.should_emit_channel_ready_event() {
2882 debug_assert!($channel.context.channel_pending_event_emitted());
2883 $locked_events.push_back((events::Event::ChannelReady {
2884 channel_id: $channel.context.channel_id(),
2885 user_channel_id: $channel.context.get_user_id(),
2886 counterparty_node_id: $channel.context.get_counterparty_node_id(),
2887 channel_type: $channel.context.get_channel_type().clone(),
2889 $channel.context.set_channel_ready_event_emitted();
2894 macro_rules! handle_monitor_update_completion {
2895 ($self: ident, $peer_state_lock: expr, $peer_state: expr, $per_peer_state_lock: expr, $chan: expr) => { {
2896 let logger = WithChannelContext::from(&$self.logger, &$chan.context);
2897 let mut updates = $chan.monitor_updating_restored(&&logger,
2898 &$self.node_signer, $self.chain_hash, &$self.default_configuration,
2899 $self.best_block.read().unwrap().height);
2900 let counterparty_node_id = $chan.context.get_counterparty_node_id();
2901 let channel_update = if updates.channel_ready.is_some() && $chan.context.is_usable() {
2902 // We only send a channel_update in the case where we are just now sending a
2903 // channel_ready and the channel is in a usable state. We may re-send a
2904 // channel_update later through the announcement_signatures process for public
2905 // channels, but there's no reason not to just inform our counterparty of our fees
2907 if let Ok(msg) = $self.get_channel_update_for_unicast($chan) {
2908 Some(events::MessageSendEvent::SendChannelUpdate {
2909 node_id: counterparty_node_id,
2915 let update_actions = $peer_state.monitor_update_blocked_actions
2916 .remove(&$chan.context.channel_id()).unwrap_or(Vec::new());
2918 let (htlc_forwards, decode_update_add_htlcs) = $self.handle_channel_resumption(
2919 &mut $peer_state.pending_msg_events, $chan, updates.raa,
2920 updates.commitment_update, updates.order, updates.accepted_htlcs, updates.pending_update_adds,
2921 updates.funding_broadcastable, updates.channel_ready,
2922 updates.announcement_sigs);
2923 if let Some(upd) = channel_update {
2924 $peer_state.pending_msg_events.push(upd);
2927 let channel_id = $chan.context.channel_id();
2928 let unbroadcasted_batch_funding_txid = $chan.context.unbroadcasted_batch_funding_txid();
2929 core::mem::drop($peer_state_lock);
2930 core::mem::drop($per_peer_state_lock);
2932 // If the channel belongs to a batch funding transaction, the progress of the batch
2933 // should be updated as we have received funding_signed and persisted the monitor.
2934 if let Some(txid) = unbroadcasted_batch_funding_txid {
2935 let mut funding_batch_states = $self.funding_batch_states.lock().unwrap();
2936 let mut batch_completed = false;
2937 if let Some(batch_state) = funding_batch_states.get_mut(&txid) {
2938 let channel_state = batch_state.iter_mut().find(|(chan_id, pubkey, _)| (
2939 *chan_id == channel_id &&
2940 *pubkey == counterparty_node_id
2942 if let Some(channel_state) = channel_state {
2943 channel_state.2 = true;
2945 debug_assert!(false, "Missing channel batch state for channel which completed initial monitor update");
2947 batch_completed = batch_state.iter().all(|(_, _, completed)| *completed);
2949 debug_assert!(false, "Missing batch state for channel which completed initial monitor update");
2952 // When all channels in a batched funding transaction have become ready, it is not necessary
2953 // to track the progress of the batch anymore and the state of the channels can be updated.
2954 if batch_completed {
2955 let removed_batch_state = funding_batch_states.remove(&txid).into_iter().flatten();
2956 let per_peer_state = $self.per_peer_state.read().unwrap();
2957 let mut batch_funding_tx = None;
2958 for (channel_id, counterparty_node_id, _) in removed_batch_state {
2959 if let Some(peer_state_mutex) = per_peer_state.get(&counterparty_node_id) {
2960 let mut peer_state = peer_state_mutex.lock().unwrap();
2961 if let Some(ChannelPhase::Funded(chan)) = peer_state.channel_by_id.get_mut(&channel_id) {
2962 batch_funding_tx = batch_funding_tx.or_else(|| chan.context.unbroadcasted_funding());
2963 chan.set_batch_ready();
2964 let mut pending_events = $self.pending_events.lock().unwrap();
2965 emit_channel_pending_event!(pending_events, chan);
2969 if let Some(tx) = batch_funding_tx {
2970 log_info!($self.logger, "Broadcasting batch funding transaction with txid {}", tx.txid());
2971 $self.tx_broadcaster.broadcast_transactions(&[&tx]);
2976 $self.handle_monitor_update_completion_actions(update_actions);
2978 if let Some(forwards) = htlc_forwards {
2979 $self.forward_htlcs(&mut [forwards][..]);
2981 if let Some(decode) = decode_update_add_htlcs {
2982 $self.push_decode_update_add_htlcs(decode);
2984 $self.finalize_claims(updates.finalized_claimed_htlcs);
2985 for failure in updates.failed_htlcs.drain(..) {
2986 let receiver = HTLCDestination::NextHopChannel { node_id: Some(counterparty_node_id), channel_id };
2987 $self.fail_htlc_backwards_internal(&failure.0, &failure.1, &failure.2, receiver);
2992 macro_rules! handle_new_monitor_update {
2993 ($self: ident, $update_res: expr, $chan: expr, _internal, $completed: expr) => { {
2994 debug_assert!($self.background_events_processed_since_startup.load(Ordering::Acquire));
2995 let logger = WithChannelContext::from(&$self.logger, &$chan.context);
2997 ChannelMonitorUpdateStatus::UnrecoverableError => {
2998 let err_str = "ChannelMonitor[Update] persistence failed unrecoverably. This indicates we cannot continue normal operation and must shut down.";
2999 log_error!(logger, "{}", err_str);
3000 panic!("{}", err_str);
3002 ChannelMonitorUpdateStatus::InProgress => {
3003 log_debug!(logger, "ChannelMonitor update for {} in flight, holding messages until the update completes.",
3004 &$chan.context.channel_id());
3007 ChannelMonitorUpdateStatus::Completed => {
3013 ($self: ident, $update_res: expr, $peer_state_lock: expr, $peer_state: expr, $per_peer_state_lock: expr, $chan: expr, INITIAL_MONITOR) => {
3014 handle_new_monitor_update!($self, $update_res, $chan, _internal,
3015 handle_monitor_update_completion!($self, $peer_state_lock, $peer_state, $per_peer_state_lock, $chan))
3017 ($self: ident, $funding_txo: expr, $update: expr, $peer_state_lock: expr, $peer_state: expr, $per_peer_state_lock: expr, $chan: expr) => { {
3018 let in_flight_updates = $peer_state.in_flight_monitor_updates.entry($funding_txo)
3019 .or_insert_with(Vec::new);
3020 // During startup, we push monitor updates as background events through to here in
3021 // order to replay updates that were in-flight when we shut down. Thus, we have to
3022 // filter for uniqueness here.
3023 let idx = in_flight_updates.iter().position(|upd| upd == &$update)
3024 .unwrap_or_else(|| {
3025 in_flight_updates.push($update);
3026 in_flight_updates.len() - 1
3028 let update_res = $self.chain_monitor.update_channel($funding_txo, &in_flight_updates[idx]);
3029 handle_new_monitor_update!($self, update_res, $chan, _internal,
3031 let _ = in_flight_updates.remove(idx);
3032 if in_flight_updates.is_empty() && $chan.blocked_monitor_updates_pending() == 0 {
3033 handle_monitor_update_completion!($self, $peer_state_lock, $peer_state, $per_peer_state_lock, $chan);
3039 macro_rules! process_events_body {
3040 ($self: expr, $event_to_handle: expr, $handle_event: expr) => {
3041 let mut processed_all_events = false;
3042 while !processed_all_events {
3043 if $self.pending_events_processor.compare_exchange(false, true, Ordering::Acquire, Ordering::Relaxed).is_err() {
3050 // We'll acquire our total consistency lock so that we can be sure no other
3051 // persists happen while processing monitor events.
3052 let _read_guard = $self.total_consistency_lock.read().unwrap();
3054 // Because `handle_post_event_actions` may send `ChannelMonitorUpdate`s to the user we must
3055 // ensure any startup-generated background events are handled first.
3056 result = $self.process_background_events();
3058 // TODO: This behavior should be documented. It's unintuitive that we query
3059 // ChannelMonitors when clearing other events.
3060 if $self.process_pending_monitor_events() {
3061 result = NotifyOption::DoPersist;
3065 let pending_events = $self.pending_events.lock().unwrap().clone();
3066 let num_events = pending_events.len();
3067 if !pending_events.is_empty() {
3068 result = NotifyOption::DoPersist;
3071 let mut post_event_actions = Vec::new();
3073 for (event, action_opt) in pending_events {
3074 $event_to_handle = event;
3076 if let Some(action) = action_opt {
3077 post_event_actions.push(action);
3082 let mut pending_events = $self.pending_events.lock().unwrap();
3083 pending_events.drain(..num_events);
3084 processed_all_events = pending_events.is_empty();
3085 // Note that `push_pending_forwards_ev` relies on `pending_events_processor` being
3086 // updated here with the `pending_events` lock acquired.
3087 $self.pending_events_processor.store(false, Ordering::Release);
3090 if !post_event_actions.is_empty() {
3091 $self.handle_post_event_actions(post_event_actions);
3092 // If we had some actions, go around again as we may have more events now
3093 processed_all_events = false;
3097 NotifyOption::DoPersist => {
3098 $self.needs_persist_flag.store(true, Ordering::Release);
3099 $self.event_persist_notifier.notify();
3101 NotifyOption::SkipPersistHandleEvents =>
3102 $self.event_persist_notifier.notify(),
3103 NotifyOption::SkipPersistNoEvents => {},
3109 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref> ChannelManager<M, T, ES, NS, SP, F, R, L>
3111 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
3112 T::Target: BroadcasterInterface,
3113 ES::Target: EntropySource,
3114 NS::Target: NodeSigner,
3115 SP::Target: SignerProvider,
3116 F::Target: FeeEstimator,
3120 /// Constructs a new `ChannelManager` to hold several channels and route between them.
3122 /// The current time or latest block header time can be provided as the `current_timestamp`.
3124 /// This is the main "logic hub" for all channel-related actions, and implements
3125 /// [`ChannelMessageHandler`].
3127 /// Non-proportional fees are fixed according to our risk using the provided fee estimator.
3129 /// Users need to notify the new `ChannelManager` when a new block is connected or
3130 /// disconnected using its [`block_connected`] and [`block_disconnected`] methods, starting
3131 /// from after [`params.best_block.block_hash`]. See [`chain::Listen`] and [`chain::Confirm`] for
3134 /// [`block_connected`]: chain::Listen::block_connected
3135 /// [`block_disconnected`]: chain::Listen::block_disconnected
3136 /// [`params.best_block.block_hash`]: chain::BestBlock::block_hash
3138 fee_est: F, chain_monitor: M, tx_broadcaster: T, router: R, logger: L, entropy_source: ES,
3139 node_signer: NS, signer_provider: SP, config: UserConfig, params: ChainParameters,
3140 current_timestamp: u32,
3142 let mut secp_ctx = Secp256k1::new();
3143 secp_ctx.seeded_randomize(&entropy_source.get_secure_random_bytes());
3144 let inbound_pmt_key_material = node_signer.get_inbound_payment_key_material();
3145 let expanded_inbound_key = inbound_payment::ExpandedKey::new(&inbound_pmt_key_material);
3147 default_configuration: config.clone(),
3148 chain_hash: ChainHash::using_genesis_block(params.network),
3149 fee_estimator: LowerBoundedFeeEstimator::new(fee_est),
3154 best_block: RwLock::new(params.best_block),
3156 outbound_scid_aliases: Mutex::new(new_hash_set()),
3157 pending_inbound_payments: Mutex::new(new_hash_map()),
3158 pending_outbound_payments: OutboundPayments::new(),
3159 forward_htlcs: Mutex::new(new_hash_map()),
3160 decode_update_add_htlcs: Mutex::new(new_hash_map()),
3161 claimable_payments: Mutex::new(ClaimablePayments { claimable_payments: new_hash_map(), pending_claiming_payments: new_hash_map() }),
3162 pending_intercepted_htlcs: Mutex::new(new_hash_map()),
3163 outpoint_to_peer: Mutex::new(new_hash_map()),
3164 short_to_chan_info: FairRwLock::new(new_hash_map()),
3166 our_network_pubkey: node_signer.get_node_id(Recipient::Node).unwrap(),
3169 inbound_payment_key: expanded_inbound_key,
3170 fake_scid_rand_bytes: entropy_source.get_secure_random_bytes(),
3172 probing_cookie_secret: entropy_source.get_secure_random_bytes(),
3174 highest_seen_timestamp: AtomicUsize::new(current_timestamp as usize),
3176 per_peer_state: FairRwLock::new(new_hash_map()),
3178 pending_events: Mutex::new(VecDeque::new()),
3179 pending_events_processor: AtomicBool::new(false),
3180 pending_background_events: Mutex::new(Vec::new()),
3181 total_consistency_lock: RwLock::new(()),
3182 background_events_processed_since_startup: AtomicBool::new(false),
3183 event_persist_notifier: Notifier::new(),
3184 needs_persist_flag: AtomicBool::new(false),
3185 funding_batch_states: Mutex::new(BTreeMap::new()),
3187 pending_offers_messages: Mutex::new(Vec::new()),
3188 pending_broadcast_messages: Mutex::new(Vec::new()),
3198 /// Gets the current configuration applied to all new channels.
3199 pub fn get_current_default_configuration(&self) -> &UserConfig {
3200 &self.default_configuration
3203 fn create_and_insert_outbound_scid_alias(&self) -> u64 {
3204 let height = self.best_block.read().unwrap().height;
3205 let mut outbound_scid_alias = 0;
3208 if cfg!(fuzzing) { // fuzzing chacha20 doesn't use the key at all so we always get the same alias
3209 outbound_scid_alias += 1;
3211 outbound_scid_alias = fake_scid::Namespace::OutboundAlias.get_fake_scid(height, &self.chain_hash, &self.fake_scid_rand_bytes, &self.entropy_source);
3213 if outbound_scid_alias != 0 && self.outbound_scid_aliases.lock().unwrap().insert(outbound_scid_alias) {
3217 if i > 1_000_000 { panic!("Your RNG is busted or we ran out of possible outbound SCID aliases (which should never happen before we run out of memory to store channels"); }
3222 /// Creates a new outbound channel to the given remote node and with the given value.
3224 /// `user_channel_id` will be provided back as in
3225 /// [`Event::FundingGenerationReady::user_channel_id`] to allow tracking of which events
3226 /// correspond with which `create_channel` call. Note that the `user_channel_id` defaults to a
3227 /// randomized value for inbound channels. `user_channel_id` has no meaning inside of LDK, it
3228 /// is simply copied to events and otherwise ignored.
3230 /// Raises [`APIError::APIMisuseError`] when `channel_value_satoshis` > 2**24 or `push_msat` is
3231 /// greater than `channel_value_satoshis * 1k` or `channel_value_satoshis < 1000`.
3233 /// Raises [`APIError::ChannelUnavailable`] if the channel cannot be opened due to failing to
3234 /// generate a shutdown scriptpubkey or destination script set by
3235 /// [`SignerProvider::get_shutdown_scriptpubkey`] or [`SignerProvider::get_destination_script`].
3237 /// Note that we do not check if you are currently connected to the given peer. If no
3238 /// connection is available, the outbound `open_channel` message may fail to send, resulting in
3239 /// the channel eventually being silently forgotten (dropped on reload).
3241 /// If `temporary_channel_id` is specified, it will be used as the temporary channel ID of the
3242 /// channel. Otherwise, a random one will be generated for you.
3244 /// Returns the new Channel's temporary `channel_id`. This ID will appear as
3245 /// [`Event::FundingGenerationReady::temporary_channel_id`] and in
3246 /// [`ChannelDetails::channel_id`] until after
3247 /// [`ChannelManager::funding_transaction_generated`] is called, swapping the Channel's ID for
3248 /// one derived from the funding transaction's TXID. If the counterparty rejects the channel
3249 /// immediately, this temporary ID will appear in [`Event::ChannelClosed::channel_id`].
3251 /// [`Event::FundingGenerationReady::user_channel_id`]: events::Event::FundingGenerationReady::user_channel_id
3252 /// [`Event::FundingGenerationReady::temporary_channel_id`]: events::Event::FundingGenerationReady::temporary_channel_id
3253 /// [`Event::ChannelClosed::channel_id`]: events::Event::ChannelClosed::channel_id
3254 pub fn create_channel(&self, their_network_key: PublicKey, channel_value_satoshis: u64, push_msat: u64, user_channel_id: u128, temporary_channel_id: Option<ChannelId>, override_config: Option<UserConfig>) -> Result<ChannelId, APIError> {
3255 if channel_value_satoshis < 1000 {
3256 return Err(APIError::APIMisuseError { err: format!("Channel value must be at least 1000 satoshis. It was {}", channel_value_satoshis) });
3259 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
3260 // We want to make sure the lock is actually acquired by PersistenceNotifierGuard.
3261 debug_assert!(&self.total_consistency_lock.try_write().is_err());
3263 let per_peer_state = self.per_peer_state.read().unwrap();
3265 let peer_state_mutex = per_peer_state.get(&their_network_key)
3266 .ok_or_else(|| APIError::APIMisuseError{ err: format!("Not connected to node: {}", their_network_key) })?;
3268 let mut peer_state = peer_state_mutex.lock().unwrap();
3270 if let Some(temporary_channel_id) = temporary_channel_id {
3271 if peer_state.channel_by_id.contains_key(&temporary_channel_id) {
3272 return Err(APIError::APIMisuseError{ err: format!("Channel with temporary channel ID {} already exists!", temporary_channel_id)});
3277 let outbound_scid_alias = self.create_and_insert_outbound_scid_alias();
3278 let their_features = &peer_state.latest_features;
3279 let config = if override_config.is_some() { override_config.as_ref().unwrap() } else { &self.default_configuration };
3280 match OutboundV1Channel::new(&self.fee_estimator, &self.entropy_source, &self.signer_provider, their_network_key,
3281 their_features, channel_value_satoshis, push_msat, user_channel_id, config,
3282 self.best_block.read().unwrap().height, outbound_scid_alias, temporary_channel_id)
3286 self.outbound_scid_aliases.lock().unwrap().remove(&outbound_scid_alias);
3291 let res = channel.get_open_channel(self.chain_hash);
3293 let temporary_channel_id = channel.context.channel_id();
3294 match peer_state.channel_by_id.entry(temporary_channel_id) {
3295 hash_map::Entry::Occupied(_) => {
3297 return Err(APIError::APIMisuseError { err: "Fuzzy bad RNG".to_owned() });
3299 panic!("RNG is bad???");
3302 hash_map::Entry::Vacant(entry) => { entry.insert(ChannelPhase::UnfundedOutboundV1(channel)); }
3305 peer_state.pending_msg_events.push(events::MessageSendEvent::SendOpenChannel {
3306 node_id: their_network_key,
3309 Ok(temporary_channel_id)
3312 fn list_funded_channels_with_filter<Fn: FnMut(&(&ChannelId, &Channel<SP>)) -> bool + Copy>(&self, f: Fn) -> Vec<ChannelDetails> {
3313 // Allocate our best estimate of the number of channels we have in the `res`
3314 // Vec. Sadly the `short_to_chan_info` map doesn't cover channels without
3315 // a scid or a scid alias, and the `outpoint_to_peer` shouldn't be used outside
3316 // of the ChannelMonitor handling. Therefore reallocations may still occur, but is
3317 // unlikely as the `short_to_chan_info` map often contains 2 entries for
3318 // the same channel.
3319 let mut res = Vec::with_capacity(self.short_to_chan_info.read().unwrap().len());
3321 let best_block_height = self.best_block.read().unwrap().height;
3322 let per_peer_state = self.per_peer_state.read().unwrap();
3323 for (_cp_id, peer_state_mutex) in per_peer_state.iter() {
3324 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
3325 let peer_state = &mut *peer_state_lock;
3326 res.extend(peer_state.channel_by_id.iter()
3327 .filter_map(|(chan_id, phase)| match phase {
3328 // Only `Channels` in the `ChannelPhase::Funded` phase can be considered funded.
3329 ChannelPhase::Funded(chan) => Some((chan_id, chan)),
3333 .map(|(_channel_id, channel)| {
3334 ChannelDetails::from_channel_context(&channel.context, best_block_height,
3335 peer_state.latest_features.clone(), &self.fee_estimator)
3343 /// Gets the list of open channels, in random order. See [`ChannelDetails`] field documentation for
3344 /// more information.
3345 pub fn list_channels(&self) -> Vec<ChannelDetails> {
3346 // Allocate our best estimate of the number of channels we have in the `res`
3347 // Vec. Sadly the `short_to_chan_info` map doesn't cover channels without
3348 // a scid or a scid alias, and the `outpoint_to_peer` shouldn't be used outside
3349 // of the ChannelMonitor handling. Therefore reallocations may still occur, but is
3350 // unlikely as the `short_to_chan_info` map often contains 2 entries for
3351 // the same channel.
3352 let mut res = Vec::with_capacity(self.short_to_chan_info.read().unwrap().len());
3354 let best_block_height = self.best_block.read().unwrap().height;
3355 let per_peer_state = self.per_peer_state.read().unwrap();
3356 for (_cp_id, peer_state_mutex) in per_peer_state.iter() {
3357 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
3358 let peer_state = &mut *peer_state_lock;
3359 for context in peer_state.channel_by_id.iter().map(|(_, phase)| phase.context()) {
3360 let details = ChannelDetails::from_channel_context(context, best_block_height,
3361 peer_state.latest_features.clone(), &self.fee_estimator);
3369 /// Gets the list of usable channels, in random order. Useful as an argument to
3370 /// [`Router::find_route`] to ensure non-announced channels are used.
3372 /// These are guaranteed to have their [`ChannelDetails::is_usable`] value set to true, see the
3373 /// documentation for [`ChannelDetails::is_usable`] for more info on exactly what the criteria
3375 pub fn list_usable_channels(&self) -> Vec<ChannelDetails> {
3376 // Note we use is_live here instead of usable which leads to somewhat confused
3377 // internal/external nomenclature, but that's ok cause that's probably what the user
3378 // really wanted anyway.
3379 self.list_funded_channels_with_filter(|&(_, ref channel)| channel.context.is_live())
3382 /// Gets the list of channels we have with a given counterparty, in random order.
3383 pub fn list_channels_with_counterparty(&self, counterparty_node_id: &PublicKey) -> Vec<ChannelDetails> {
3384 let best_block_height = self.best_block.read().unwrap().height;
3385 let per_peer_state = self.per_peer_state.read().unwrap();
3387 if let Some(peer_state_mutex) = per_peer_state.get(counterparty_node_id) {
3388 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
3389 let peer_state = &mut *peer_state_lock;
3390 let features = &peer_state.latest_features;
3391 let context_to_details = |context| {
3392 ChannelDetails::from_channel_context(context, best_block_height, features.clone(), &self.fee_estimator)
3394 return peer_state.channel_by_id
3396 .map(|(_, phase)| phase.context())
3397 .map(context_to_details)
3403 /// Returns in an undefined order recent payments that -- if not fulfilled -- have yet to find a
3404 /// successful path, or have unresolved HTLCs.
3406 /// This can be useful for payments that may have been prepared, but ultimately not sent, as a
3407 /// result of a crash. If such a payment exists, is not listed here, and an
3408 /// [`Event::PaymentSent`] has not been received, you may consider resending the payment.
3410 /// [`Event::PaymentSent`]: events::Event::PaymentSent
3411 pub fn list_recent_payments(&self) -> Vec<RecentPaymentDetails> {
3412 self.pending_outbound_payments.pending_outbound_payments.lock().unwrap().iter()
3413 .filter_map(|(payment_id, pending_outbound_payment)| match pending_outbound_payment {
3414 PendingOutboundPayment::AwaitingInvoice { .. } => {
3415 Some(RecentPaymentDetails::AwaitingInvoice { payment_id: *payment_id })
3417 // InvoiceReceived is an intermediate state and doesn't need to be exposed
3418 PendingOutboundPayment::InvoiceReceived { .. } => {
3419 Some(RecentPaymentDetails::AwaitingInvoice { payment_id: *payment_id })
3421 PendingOutboundPayment::Retryable { payment_hash, total_msat, .. } => {
3422 Some(RecentPaymentDetails::Pending {
3423 payment_id: *payment_id,
3424 payment_hash: *payment_hash,
3425 total_msat: *total_msat,
3428 PendingOutboundPayment::Abandoned { payment_hash, .. } => {
3429 Some(RecentPaymentDetails::Abandoned { payment_id: *payment_id, payment_hash: *payment_hash })
3431 PendingOutboundPayment::Fulfilled { payment_hash, .. } => {
3432 Some(RecentPaymentDetails::Fulfilled { payment_id: *payment_id, payment_hash: *payment_hash })
3434 PendingOutboundPayment::Legacy { .. } => None
3439 fn close_channel_internal(&self, channel_id: &ChannelId, counterparty_node_id: &PublicKey, target_feerate_sats_per_1000_weight: Option<u32>, override_shutdown_script: Option<ShutdownScript>) -> Result<(), APIError> {
3440 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
3442 let mut failed_htlcs: Vec<(HTLCSource, PaymentHash)> = Vec::new();
3443 let mut shutdown_result = None;
3446 let per_peer_state = self.per_peer_state.read().unwrap();
3448 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
3449 .ok_or_else(|| APIError::ChannelUnavailable { err: format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id) })?;
3451 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
3452 let peer_state = &mut *peer_state_lock;
3454 match peer_state.channel_by_id.entry(channel_id.clone()) {
3455 hash_map::Entry::Occupied(mut chan_phase_entry) => {
3456 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
3457 let funding_txo_opt = chan.context.get_funding_txo();
3458 let their_features = &peer_state.latest_features;
3459 let (shutdown_msg, mut monitor_update_opt, htlcs) =
3460 chan.get_shutdown(&self.signer_provider, their_features, target_feerate_sats_per_1000_weight, override_shutdown_script)?;
3461 failed_htlcs = htlcs;
3463 // We can send the `shutdown` message before updating the `ChannelMonitor`
3464 // here as we don't need the monitor update to complete until we send a
3465 // `shutdown_signed`, which we'll delay if we're pending a monitor update.
3466 peer_state.pending_msg_events.push(events::MessageSendEvent::SendShutdown {
3467 node_id: *counterparty_node_id,
3471 debug_assert!(monitor_update_opt.is_none() || !chan.is_shutdown(),
3472 "We can't both complete shutdown and generate a monitor update");
3474 // Update the monitor with the shutdown script if necessary.
3475 if let Some(monitor_update) = monitor_update_opt.take() {
3476 handle_new_monitor_update!(self, funding_txo_opt.unwrap(), monitor_update,
3477 peer_state_lock, peer_state, per_peer_state, chan);
3480 let mut chan_phase = remove_channel_phase!(self, chan_phase_entry);
3481 shutdown_result = Some(chan_phase.context_mut().force_shutdown(false, ClosureReason::HolderForceClosed));
3484 hash_map::Entry::Vacant(_) => {
3485 return Err(APIError::ChannelUnavailable {
3487 "Channel with id {} not found for the passed counterparty node_id {}",
3488 channel_id, counterparty_node_id,
3495 for htlc_source in failed_htlcs.drain(..) {
3496 let reason = HTLCFailReason::from_failure_code(0x4000 | 8);
3497 let receiver = HTLCDestination::NextHopChannel { node_id: Some(*counterparty_node_id), channel_id: *channel_id };
3498 self.fail_htlc_backwards_internal(&htlc_source.0, &htlc_source.1, &reason, receiver);
3501 if let Some(shutdown_result) = shutdown_result {
3502 self.finish_close_channel(shutdown_result);
3508 /// Begins the process of closing a channel. After this call (plus some timeout), no new HTLCs
3509 /// will be accepted on the given channel, and after additional timeout/the closing of all
3510 /// pending HTLCs, the channel will be closed on chain.
3512 /// * If we are the channel initiator, we will pay between our [`ChannelCloseMinimum`] and
3513 /// [`ChannelConfig::force_close_avoidance_max_fee_satoshis`] plus our [`NonAnchorChannelFee`]
3515 /// * If our counterparty is the channel initiator, we will require a channel closing
3516 /// transaction feerate of at least our [`ChannelCloseMinimum`] feerate or the feerate which
3517 /// would appear on a force-closure transaction, whichever is lower. We will allow our
3518 /// counterparty to pay as much fee as they'd like, however.
3520 /// May generate a [`SendShutdown`] message event on success, which should be relayed.
3522 /// Raises [`APIError::ChannelUnavailable`] if the channel cannot be closed due to failing to
3523 /// generate a shutdown scriptpubkey or destination script set by
3524 /// [`SignerProvider::get_shutdown_scriptpubkey`]. A force-closure may be needed to close the
3527 /// [`ChannelConfig::force_close_avoidance_max_fee_satoshis`]: crate::util::config::ChannelConfig::force_close_avoidance_max_fee_satoshis
3528 /// [`ChannelCloseMinimum`]: crate::chain::chaininterface::ConfirmationTarget::ChannelCloseMinimum
3529 /// [`NonAnchorChannelFee`]: crate::chain::chaininterface::ConfirmationTarget::NonAnchorChannelFee
3530 /// [`SendShutdown`]: crate::events::MessageSendEvent::SendShutdown
3531 pub fn close_channel(&self, channel_id: &ChannelId, counterparty_node_id: &PublicKey) -> Result<(), APIError> {
3532 self.close_channel_internal(channel_id, counterparty_node_id, None, None)
3535 /// Begins the process of closing a channel. After this call (plus some timeout), no new HTLCs
3536 /// will be accepted on the given channel, and after additional timeout/the closing of all
3537 /// pending HTLCs, the channel will be closed on chain.
3539 /// `target_feerate_sat_per_1000_weight` has different meanings depending on if we initiated
3540 /// the channel being closed or not:
3541 /// * If we are the channel initiator, we will pay at least this feerate on the closing
3542 /// transaction. The upper-bound is set by
3543 /// [`ChannelConfig::force_close_avoidance_max_fee_satoshis`] plus our [`NonAnchorChannelFee`]
3544 /// fee estimate (or `target_feerate_sat_per_1000_weight`, if it is greater).
3545 /// * If our counterparty is the channel initiator, we will refuse to accept a channel closure
3546 /// transaction feerate below `target_feerate_sat_per_1000_weight` (or the feerate which
3547 /// will appear on a force-closure transaction, whichever is lower).
3549 /// The `shutdown_script` provided will be used as the `scriptPubKey` for the closing transaction.
3550 /// Will fail if a shutdown script has already been set for this channel by
3551 /// ['ChannelHandshakeConfig::commit_upfront_shutdown_pubkey`]. The given shutdown script must
3552 /// also be compatible with our and the counterparty's features.
3554 /// May generate a [`SendShutdown`] message event on success, which should be relayed.
3556 /// Raises [`APIError::ChannelUnavailable`] if the channel cannot be closed due to failing to
3557 /// generate a shutdown scriptpubkey or destination script set by
3558 /// [`SignerProvider::get_shutdown_scriptpubkey`]. A force-closure may be needed to close the
3561 /// [`ChannelConfig::force_close_avoidance_max_fee_satoshis`]: crate::util::config::ChannelConfig::force_close_avoidance_max_fee_satoshis
3562 /// [`NonAnchorChannelFee`]: crate::chain::chaininterface::ConfirmationTarget::NonAnchorChannelFee
3563 /// [`SendShutdown`]: crate::events::MessageSendEvent::SendShutdown
3564 pub fn close_channel_with_feerate_and_script(&self, channel_id: &ChannelId, counterparty_node_id: &PublicKey, target_feerate_sats_per_1000_weight: Option<u32>, shutdown_script: Option<ShutdownScript>) -> Result<(), APIError> {
3565 self.close_channel_internal(channel_id, counterparty_node_id, target_feerate_sats_per_1000_weight, shutdown_script)
3568 fn finish_close_channel(&self, mut shutdown_res: ShutdownResult) {
3569 debug_assert_ne!(self.per_peer_state.held_by_thread(), LockHeldState::HeldByThread);
3570 #[cfg(debug_assertions)]
3571 for (_, peer) in self.per_peer_state.read().unwrap().iter() {
3572 debug_assert_ne!(peer.held_by_thread(), LockHeldState::HeldByThread);
3575 let logger = WithContext::from(
3576 &self.logger, Some(shutdown_res.counterparty_node_id), Some(shutdown_res.channel_id),
3579 log_debug!(logger, "Finishing closure of channel due to {} with {} HTLCs to fail",
3580 shutdown_res.closure_reason, shutdown_res.dropped_outbound_htlcs.len());
3581 for htlc_source in shutdown_res.dropped_outbound_htlcs.drain(..) {
3582 let (source, payment_hash, counterparty_node_id, channel_id) = htlc_source;
3583 let reason = HTLCFailReason::from_failure_code(0x4000 | 8);
3584 let receiver = HTLCDestination::NextHopChannel { node_id: Some(counterparty_node_id), channel_id };
3585 self.fail_htlc_backwards_internal(&source, &payment_hash, &reason, receiver);
3587 if let Some((_, funding_txo, _channel_id, monitor_update)) = shutdown_res.monitor_update {
3588 // There isn't anything we can do if we get an update failure - we're already
3589 // force-closing. The monitor update on the required in-memory copy should broadcast
3590 // the latest local state, which is the best we can do anyway. Thus, it is safe to
3591 // ignore the result here.
3592 let _ = self.chain_monitor.update_channel(funding_txo, &monitor_update);
3594 let mut shutdown_results = Vec::new();
3595 if let Some(txid) = shutdown_res.unbroadcasted_batch_funding_txid {
3596 let mut funding_batch_states = self.funding_batch_states.lock().unwrap();
3597 let affected_channels = funding_batch_states.remove(&txid).into_iter().flatten();
3598 let per_peer_state = self.per_peer_state.read().unwrap();
3599 let mut has_uncompleted_channel = None;
3600 for (channel_id, counterparty_node_id, state) in affected_channels {
3601 if let Some(peer_state_mutex) = per_peer_state.get(&counterparty_node_id) {
3602 let mut peer_state = peer_state_mutex.lock().unwrap();
3603 if let Some(mut chan) = peer_state.channel_by_id.remove(&channel_id) {
3604 update_maps_on_chan_removal!(self, &chan.context());
3605 shutdown_results.push(chan.context_mut().force_shutdown(false, ClosureReason::FundingBatchClosure));
3608 has_uncompleted_channel = Some(has_uncompleted_channel.map_or(!state, |v| v || !state));
3611 has_uncompleted_channel.unwrap_or(true),
3612 "Closing a batch where all channels have completed initial monitor update",
3617 let mut pending_events = self.pending_events.lock().unwrap();
3618 pending_events.push_back((events::Event::ChannelClosed {
3619 channel_id: shutdown_res.channel_id,
3620 user_channel_id: shutdown_res.user_channel_id,
3621 reason: shutdown_res.closure_reason,
3622 counterparty_node_id: Some(shutdown_res.counterparty_node_id),
3623 channel_capacity_sats: Some(shutdown_res.channel_capacity_satoshis),
3624 channel_funding_txo: shutdown_res.channel_funding_txo,
3627 if let Some(transaction) = shutdown_res.unbroadcasted_funding_tx {
3628 pending_events.push_back((events::Event::DiscardFunding {
3629 channel_id: shutdown_res.channel_id, transaction
3633 for shutdown_result in shutdown_results.drain(..) {
3634 self.finish_close_channel(shutdown_result);
3638 /// `peer_msg` should be set when we receive a message from a peer, but not set when the
3639 /// user closes, which will be re-exposed as the `ChannelClosed` reason.
3640 fn force_close_channel_with_peer(&self, channel_id: &ChannelId, peer_node_id: &PublicKey, peer_msg: Option<&String>, broadcast: bool)
3641 -> Result<PublicKey, APIError> {
3642 let per_peer_state = self.per_peer_state.read().unwrap();
3643 let peer_state_mutex = per_peer_state.get(peer_node_id)
3644 .ok_or_else(|| APIError::ChannelUnavailable { err: format!("Can't find a peer matching the passed counterparty node_id {}", peer_node_id) })?;
3645 let (update_opt, counterparty_node_id) = {
3646 let mut peer_state = peer_state_mutex.lock().unwrap();
3647 let closure_reason = if let Some(peer_msg) = peer_msg {
3648 ClosureReason::CounterpartyForceClosed { peer_msg: UntrustedString(peer_msg.to_string()) }
3650 ClosureReason::HolderForceClosed
3652 let logger = WithContext::from(&self.logger, Some(*peer_node_id), Some(*channel_id));
3653 if let hash_map::Entry::Occupied(chan_phase_entry) = peer_state.channel_by_id.entry(channel_id.clone()) {
3654 log_error!(logger, "Force-closing channel {}", channel_id);
3655 let mut chan_phase = remove_channel_phase!(self, chan_phase_entry);
3656 mem::drop(peer_state);
3657 mem::drop(per_peer_state);
3659 ChannelPhase::Funded(mut chan) => {
3660 self.finish_close_channel(chan.context.force_shutdown(broadcast, closure_reason));
3661 (self.get_channel_update_for_broadcast(&chan).ok(), chan.context.get_counterparty_node_id())
3663 ChannelPhase::UnfundedOutboundV1(_) | ChannelPhase::UnfundedInboundV1(_) => {
3664 self.finish_close_channel(chan_phase.context_mut().force_shutdown(false, closure_reason));
3665 // Unfunded channel has no update
3666 (None, chan_phase.context().get_counterparty_node_id())
3668 // TODO(dual_funding): Combine this match arm with above once #[cfg(any(dual_funding, splicing))] is removed.
3669 #[cfg(any(dual_funding, splicing))]
3670 ChannelPhase::UnfundedOutboundV2(_) | ChannelPhase::UnfundedInboundV2(_) => {
3671 self.finish_close_channel(chan_phase.context_mut().force_shutdown(false, closure_reason));
3672 // Unfunded channel has no update
3673 (None, chan_phase.context().get_counterparty_node_id())
3676 } else if peer_state.inbound_channel_request_by_id.remove(channel_id).is_some() {
3677 log_error!(logger, "Force-closing channel {}", &channel_id);
3678 // N.B. that we don't send any channel close event here: we
3679 // don't have a user_channel_id, and we never sent any opening
3681 (None, *peer_node_id)
3683 return Err(APIError::ChannelUnavailable{ err: format!("Channel with id {} not found for the passed counterparty node_id {}", channel_id, peer_node_id) });
3686 if let Some(update) = update_opt {
3687 // If we have some Channel Update to broadcast, we cache it and broadcast it later.
3688 let mut pending_broadcast_messages = self.pending_broadcast_messages.lock().unwrap();
3689 pending_broadcast_messages.push(events::MessageSendEvent::BroadcastChannelUpdate {
3694 Ok(counterparty_node_id)
3697 fn force_close_sending_error(&self, channel_id: &ChannelId, counterparty_node_id: &PublicKey, broadcast: bool) -> Result<(), APIError> {
3698 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
3699 match self.force_close_channel_with_peer(channel_id, counterparty_node_id, None, broadcast) {
3700 Ok(counterparty_node_id) => {
3701 let per_peer_state = self.per_peer_state.read().unwrap();
3702 if let Some(peer_state_mutex) = per_peer_state.get(&counterparty_node_id) {
3703 let mut peer_state = peer_state_mutex.lock().unwrap();
3704 peer_state.pending_msg_events.push(
3705 events::MessageSendEvent::HandleError {
3706 node_id: counterparty_node_id,
3707 action: msgs::ErrorAction::DisconnectPeer {
3708 msg: Some(msgs::ErrorMessage { channel_id: *channel_id, data: "Channel force-closed".to_owned() })
3719 /// Force closes a channel, immediately broadcasting the latest local transaction(s) and
3720 /// rejecting new HTLCs on the given channel. Fails if `channel_id` is unknown to
3721 /// the manager, or if the `counterparty_node_id` isn't the counterparty of the corresponding
3723 pub fn force_close_broadcasting_latest_txn(&self, channel_id: &ChannelId, counterparty_node_id: &PublicKey)
3724 -> Result<(), APIError> {
3725 self.force_close_sending_error(channel_id, counterparty_node_id, true)
3728 /// Force closes a channel, rejecting new HTLCs on the given channel but skips broadcasting
3729 /// the latest local transaction(s). Fails if `channel_id` is unknown to the manager, or if the
3730 /// `counterparty_node_id` isn't the counterparty of the corresponding channel.
3732 /// You can always broadcast the latest local transaction(s) via
3733 /// [`ChannelMonitor::broadcast_latest_holder_commitment_txn`].
3734 pub fn force_close_without_broadcasting_txn(&self, channel_id: &ChannelId, counterparty_node_id: &PublicKey)
3735 -> Result<(), APIError> {
3736 self.force_close_sending_error(channel_id, counterparty_node_id, false)
3739 /// Force close all channels, immediately broadcasting the latest local commitment transaction
3740 /// for each to the chain and rejecting new HTLCs on each.
3741 pub fn force_close_all_channels_broadcasting_latest_txn(&self) {
3742 for chan in self.list_channels() {
3743 let _ = self.force_close_broadcasting_latest_txn(&chan.channel_id, &chan.counterparty.node_id);
3747 /// Force close all channels rejecting new HTLCs on each but without broadcasting the latest
3748 /// local transaction(s).
3749 pub fn force_close_all_channels_without_broadcasting_txn(&self) {
3750 for chan in self.list_channels() {
3751 let _ = self.force_close_without_broadcasting_txn(&chan.channel_id, &chan.counterparty.node_id);
3755 fn can_forward_htlc_to_outgoing_channel(
3756 &self, chan: &mut Channel<SP>, msg: &msgs::UpdateAddHTLC, next_packet: &NextPacketDetails
3757 ) -> Result<(), (&'static str, u16, Option<msgs::ChannelUpdate>)> {
3758 if !chan.context.should_announce() && !self.default_configuration.accept_forwards_to_priv_channels {
3759 // Note that the behavior here should be identical to the above block - we
3760 // should NOT reveal the existence or non-existence of a private channel if
3761 // we don't allow forwards outbound over them.
3762 return Err(("Refusing to forward to a private channel based on our config.", 0x4000 | 10, None));
3764 if chan.context.get_channel_type().supports_scid_privacy() && next_packet.outgoing_scid != chan.context.outbound_scid_alias() {
3765 // `option_scid_alias` (referred to in LDK as `scid_privacy`) means
3766 // "refuse to forward unless the SCID alias was used", so we pretend
3767 // we don't have the channel here.
3768 return Err(("Refusing to forward over real channel SCID as our counterparty requested.", 0x4000 | 10, None));
3771 // Note that we could technically not return an error yet here and just hope
3772 // that the connection is reestablished or monitor updated by the time we get
3773 // around to doing the actual forward, but better to fail early if we can and
3774 // hopefully an attacker trying to path-trace payments cannot make this occur
3775 // on a small/per-node/per-channel scale.
3776 if !chan.context.is_live() { // channel_disabled
3777 // If the channel_update we're going to return is disabled (i.e. the
3778 // peer has been disabled for some time), return `channel_disabled`,
3779 // otherwise return `temporary_channel_failure`.
3780 let chan_update_opt = self.get_channel_update_for_onion(next_packet.outgoing_scid, chan).ok();
3781 if chan_update_opt.as_ref().map(|u| u.contents.flags & 2 == 2).unwrap_or(false) {
3782 return Err(("Forwarding channel has been disconnected for some time.", 0x1000 | 20, chan_update_opt));
3784 return Err(("Forwarding channel is not in a ready state.", 0x1000 | 7, chan_update_opt));
3787 if next_packet.outgoing_amt_msat < chan.context.get_counterparty_htlc_minimum_msat() { // amount_below_minimum
3788 let chan_update_opt = self.get_channel_update_for_onion(next_packet.outgoing_scid, chan).ok();
3789 return Err(("HTLC amount was below the htlc_minimum_msat", 0x1000 | 11, chan_update_opt));
3791 if let Err((err, code)) = chan.htlc_satisfies_config(msg, next_packet.outgoing_amt_msat, next_packet.outgoing_cltv_value) {
3792 let chan_update_opt = self.get_channel_update_for_onion(next_packet.outgoing_scid, chan).ok();
3793 return Err((err, code, chan_update_opt));
3799 /// Executes a callback `C` that returns some value `X` on the channel found with the given
3800 /// `scid`. `None` is returned when the channel is not found.
3801 fn do_funded_channel_callback<X, C: Fn(&mut Channel<SP>) -> X>(
3802 &self, scid: u64, callback: C,
3804 let (counterparty_node_id, channel_id) = match self.short_to_chan_info.read().unwrap().get(&scid).cloned() {
3805 None => return None,
3806 Some((cp_id, id)) => (cp_id, id),
3808 let per_peer_state = self.per_peer_state.read().unwrap();
3809 let peer_state_mutex_opt = per_peer_state.get(&counterparty_node_id);
3810 if peer_state_mutex_opt.is_none() {
3813 let mut peer_state_lock = peer_state_mutex_opt.unwrap().lock().unwrap();
3814 let peer_state = &mut *peer_state_lock;
3815 match peer_state.channel_by_id.get_mut(&channel_id).and_then(
3816 |chan_phase| if let ChannelPhase::Funded(chan) = chan_phase { Some(chan) } else { None }
3819 Some(chan) => Some(callback(chan)),
3823 fn can_forward_htlc(
3824 &self, msg: &msgs::UpdateAddHTLC, next_packet_details: &NextPacketDetails
3825 ) -> Result<(), (&'static str, u16, Option<msgs::ChannelUpdate>)> {
3826 match self.do_funded_channel_callback(next_packet_details.outgoing_scid, |chan: &mut Channel<SP>| {
3827 self.can_forward_htlc_to_outgoing_channel(chan, msg, next_packet_details)
3830 Some(Err(e)) => return Err(e),
3832 // If we couldn't find the channel info for the scid, it may be a phantom or
3833 // intercept forward.
3834 if (self.default_configuration.accept_intercept_htlcs &&
3835 fake_scid::is_valid_intercept(&self.fake_scid_rand_bytes, next_packet_details.outgoing_scid, &self.chain_hash)) ||
3836 fake_scid::is_valid_phantom(&self.fake_scid_rand_bytes, next_packet_details.outgoing_scid, &self.chain_hash)
3838 return Err(("Don't have available channel for forwarding as requested.", 0x4000 | 10, None));
3843 let cur_height = self.best_block.read().unwrap().height + 1;
3844 if let Err((err_msg, err_code)) = check_incoming_htlc_cltv(
3845 cur_height, next_packet_details.outgoing_cltv_value, msg.cltv_expiry
3847 let chan_update_opt = self.do_funded_channel_callback(next_packet_details.outgoing_scid, |chan: &mut Channel<SP>| {
3848 self.get_channel_update_for_onion(next_packet_details.outgoing_scid, chan).ok()
3850 return Err((err_msg, err_code, chan_update_opt));
3856 fn htlc_failure_from_update_add_err(
3857 &self, msg: &msgs::UpdateAddHTLC, counterparty_node_id: &PublicKey, err_msg: &'static str,
3858 mut err_code: u16, chan_update: Option<msgs::ChannelUpdate>, is_intro_node_blinded_forward: bool,
3859 shared_secret: &[u8; 32]
3860 ) -> HTLCFailureMsg {
3861 let mut res = VecWriter(Vec::with_capacity(chan_update.serialized_length() + 2 + 8 + 2));
3862 if chan_update.is_some() && err_code & 0x1000 == 0x1000 {
3863 let chan_update = chan_update.unwrap();
3864 if err_code == 0x1000 | 11 || err_code == 0x1000 | 12 {
3865 msg.amount_msat.write(&mut res).expect("Writes cannot fail");
3867 else if err_code == 0x1000 | 13 {
3868 msg.cltv_expiry.write(&mut res).expect("Writes cannot fail");
3870 else if err_code == 0x1000 | 20 {
3871 // TODO: underspecified, follow https://github.com/lightning/bolts/issues/791
3872 0u16.write(&mut res).expect("Writes cannot fail");
3874 (chan_update.serialized_length() as u16 + 2).write(&mut res).expect("Writes cannot fail");
3875 msgs::ChannelUpdate::TYPE.write(&mut res).expect("Writes cannot fail");
3876 chan_update.write(&mut res).expect("Writes cannot fail");
3877 } else if err_code & 0x1000 == 0x1000 {
3878 // If we're trying to return an error that requires a `channel_update` but
3879 // we're forwarding to a phantom or intercept "channel" (i.e. cannot
3880 // generate an update), just use the generic "temporary_node_failure"
3882 err_code = 0x2000 | 2;
3886 WithContext::from(&self.logger, Some(*counterparty_node_id), Some(msg.channel_id)),
3887 "Failed to accept/forward incoming HTLC: {}", err_msg
3889 // If `msg.blinding_point` is set, we must always fail with malformed.
3890 if msg.blinding_point.is_some() {
3891 return HTLCFailureMsg::Malformed(msgs::UpdateFailMalformedHTLC {
3892 channel_id: msg.channel_id,
3893 htlc_id: msg.htlc_id,
3894 sha256_of_onion: [0; 32],
3895 failure_code: INVALID_ONION_BLINDING,
3899 let (err_code, err_data) = if is_intro_node_blinded_forward {
3900 (INVALID_ONION_BLINDING, &[0; 32][..])
3902 (err_code, &res.0[..])
3904 HTLCFailureMsg::Relay(msgs::UpdateFailHTLC {
3905 channel_id: msg.channel_id,
3906 htlc_id: msg.htlc_id,
3907 reason: HTLCFailReason::reason(err_code, err_data.to_vec())
3908 .get_encrypted_failure_packet(shared_secret, &None),
3912 fn decode_update_add_htlc_onion(
3913 &self, msg: &msgs::UpdateAddHTLC, counterparty_node_id: &PublicKey,
3915 (onion_utils::Hop, [u8; 32], Option<Result<PublicKey, secp256k1::Error>>), HTLCFailureMsg
3917 let (next_hop, shared_secret, next_packet_details_opt) = decode_incoming_update_add_htlc_onion(
3918 msg, &self.node_signer, &self.logger, &self.secp_ctx
3921 let next_packet_details = match next_packet_details_opt {
3922 Some(next_packet_details) => next_packet_details,
3923 // it is a receive, so no need for outbound checks
3924 None => return Ok((next_hop, shared_secret, None)),
3927 // Perform outbound checks here instead of in [`Self::construct_pending_htlc_info`] because we
3928 // can't hold the outbound peer state lock at the same time as the inbound peer state lock.
3929 self.can_forward_htlc(&msg, &next_packet_details).map_err(|e| {
3930 let (err_msg, err_code, chan_update_opt) = e;
3931 self.htlc_failure_from_update_add_err(
3932 msg, counterparty_node_id, err_msg, err_code, chan_update_opt,
3933 next_hop.is_intro_node_blinded_forward(), &shared_secret
3937 Ok((next_hop, shared_secret, Some(next_packet_details.next_packet_pubkey)))
3940 fn construct_pending_htlc_status<'a>(
3941 &self, msg: &msgs::UpdateAddHTLC, counterparty_node_id: &PublicKey, shared_secret: [u8; 32],
3942 decoded_hop: onion_utils::Hop, allow_underpay: bool,
3943 next_packet_pubkey_opt: Option<Result<PublicKey, secp256k1::Error>>,
3944 ) -> PendingHTLCStatus {
3945 macro_rules! return_err {
3946 ($msg: expr, $err_code: expr, $data: expr) => {
3948 let logger = WithContext::from(&self.logger, Some(*counterparty_node_id), Some(msg.channel_id));
3949 log_info!(logger, "Failed to accept/forward incoming HTLC: {}", $msg);
3950 if msg.blinding_point.is_some() {
3951 return PendingHTLCStatus::Fail(HTLCFailureMsg::Malformed(
3952 msgs::UpdateFailMalformedHTLC {
3953 channel_id: msg.channel_id,
3954 htlc_id: msg.htlc_id,
3955 sha256_of_onion: [0; 32],
3956 failure_code: INVALID_ONION_BLINDING,
3960 return PendingHTLCStatus::Fail(HTLCFailureMsg::Relay(msgs::UpdateFailHTLC {
3961 channel_id: msg.channel_id,
3962 htlc_id: msg.htlc_id,
3963 reason: HTLCFailReason::reason($err_code, $data.to_vec())
3964 .get_encrypted_failure_packet(&shared_secret, &None),
3970 onion_utils::Hop::Receive(next_hop_data) => {
3972 let current_height: u32 = self.best_block.read().unwrap().height;
3973 match create_recv_pending_htlc_info(next_hop_data, shared_secret, msg.payment_hash,
3974 msg.amount_msat, msg.cltv_expiry, None, allow_underpay, msg.skimmed_fee_msat,
3975 current_height, self.default_configuration.accept_mpp_keysend)
3978 // Note that we could obviously respond immediately with an update_fulfill_htlc
3979 // message, however that would leak that we are the recipient of this payment, so
3980 // instead we stay symmetric with the forwarding case, only responding (after a
3981 // delay) once they've send us a commitment_signed!
3982 PendingHTLCStatus::Forward(info)
3984 Err(InboundHTLCErr { err_code, err_data, msg }) => return_err!(msg, err_code, &err_data)
3987 onion_utils::Hop::Forward { next_hop_data, next_hop_hmac, new_packet_bytes } => {
3988 match create_fwd_pending_htlc_info(msg, next_hop_data, next_hop_hmac,
3989 new_packet_bytes, shared_secret, next_packet_pubkey_opt) {
3990 Ok(info) => PendingHTLCStatus::Forward(info),
3991 Err(InboundHTLCErr { err_code, err_data, msg }) => return_err!(msg, err_code, &err_data)
3997 /// Gets the current [`channel_update`] for the given channel. This first checks if the channel is
3998 /// public, and thus should be called whenever the result is going to be passed out in a
3999 /// [`MessageSendEvent::BroadcastChannelUpdate`] event.
4001 /// Note that in [`internal_closing_signed`], this function is called without the `peer_state`
4002 /// corresponding to the channel's counterparty locked, as the channel been removed from the
4003 /// storage and the `peer_state` lock has been dropped.
4005 /// [`channel_update`]: msgs::ChannelUpdate
4006 /// [`internal_closing_signed`]: Self::internal_closing_signed
4007 fn get_channel_update_for_broadcast(&self, chan: &Channel<SP>) -> Result<msgs::ChannelUpdate, LightningError> {
4008 if !chan.context.should_announce() {
4009 return Err(LightningError {
4010 err: "Cannot broadcast a channel_update for a private channel".to_owned(),
4011 action: msgs::ErrorAction::IgnoreError
4014 if chan.context.get_short_channel_id().is_none() {
4015 return Err(LightningError{err: "Channel not yet established".to_owned(), action: msgs::ErrorAction::IgnoreError});
4017 let logger = WithChannelContext::from(&self.logger, &chan.context);
4018 log_trace!(logger, "Attempting to generate broadcast channel update for channel {}", &chan.context.channel_id());
4019 self.get_channel_update_for_unicast(chan)
4022 /// Gets the current [`channel_update`] for the given channel. This does not check if the channel
4023 /// is public (only returning an `Err` if the channel does not yet have an assigned SCID),
4024 /// and thus MUST NOT be called unless the recipient of the resulting message has already
4025 /// provided evidence that they know about the existence of the channel.
4027 /// Note that through [`internal_closing_signed`], this function is called without the
4028 /// `peer_state` corresponding to the channel's counterparty locked, as the channel been
4029 /// removed from the storage and the `peer_state` lock has been dropped.
4031 /// [`channel_update`]: msgs::ChannelUpdate
4032 /// [`internal_closing_signed`]: Self::internal_closing_signed
4033 fn get_channel_update_for_unicast(&self, chan: &Channel<SP>) -> Result<msgs::ChannelUpdate, LightningError> {
4034 let logger = WithChannelContext::from(&self.logger, &chan.context);
4035 log_trace!(logger, "Attempting to generate channel update for channel {}", chan.context.channel_id());
4036 let short_channel_id = match chan.context.get_short_channel_id().or(chan.context.latest_inbound_scid_alias()) {
4037 None => return Err(LightningError{err: "Channel not yet established".to_owned(), action: msgs::ErrorAction::IgnoreError}),
4041 self.get_channel_update_for_onion(short_channel_id, chan)
4044 fn get_channel_update_for_onion(&self, short_channel_id: u64, chan: &Channel<SP>) -> Result<msgs::ChannelUpdate, LightningError> {
4045 let logger = WithChannelContext::from(&self.logger, &chan.context);
4046 log_trace!(logger, "Generating channel update for channel {}", chan.context.channel_id());
4047 let were_node_one = self.our_network_pubkey.serialize()[..] < chan.context.get_counterparty_node_id().serialize()[..];
4049 let enabled = chan.context.is_usable() && match chan.channel_update_status() {
4050 ChannelUpdateStatus::Enabled => true,
4051 ChannelUpdateStatus::DisabledStaged(_) => true,
4052 ChannelUpdateStatus::Disabled => false,
4053 ChannelUpdateStatus::EnabledStaged(_) => false,
4056 let unsigned = msgs::UnsignedChannelUpdate {
4057 chain_hash: self.chain_hash,
4059 timestamp: chan.context.get_update_time_counter(),
4060 flags: (!were_node_one) as u8 | ((!enabled as u8) << 1),
4061 cltv_expiry_delta: chan.context.get_cltv_expiry_delta(),
4062 htlc_minimum_msat: chan.context.get_counterparty_htlc_minimum_msat(),
4063 htlc_maximum_msat: chan.context.get_announced_htlc_max_msat(),
4064 fee_base_msat: chan.context.get_outbound_forwarding_fee_base_msat(),
4065 fee_proportional_millionths: chan.context.get_fee_proportional_millionths(),
4066 excess_data: Vec::new(),
4068 // Panic on failure to signal LDK should be restarted to retry signing the `ChannelUpdate`.
4069 // If we returned an error and the `node_signer` cannot provide a signature for whatever
4070 // reason`, we wouldn't be able to receive inbound payments through the corresponding
4072 let sig = self.node_signer.sign_gossip_message(msgs::UnsignedGossipMessage::ChannelUpdate(&unsigned)).unwrap();
4074 Ok(msgs::ChannelUpdate {
4081 pub(crate) fn test_send_payment_along_path(&self, path: &Path, payment_hash: &PaymentHash, recipient_onion: RecipientOnionFields, total_value: u64, cur_height: u32, payment_id: PaymentId, keysend_preimage: &Option<PaymentPreimage>, session_priv_bytes: [u8; 32]) -> Result<(), APIError> {
4082 let _lck = self.total_consistency_lock.read().unwrap();
4083 self.send_payment_along_path(SendAlongPathArgs {
4084 path, payment_hash, recipient_onion, total_value, cur_height, payment_id, keysend_preimage,
4089 fn send_payment_along_path(&self, args: SendAlongPathArgs) -> Result<(), APIError> {
4090 let SendAlongPathArgs {
4091 path, payment_hash, recipient_onion, total_value, cur_height, payment_id, keysend_preimage,
4094 // The top-level caller should hold the total_consistency_lock read lock.
4095 debug_assert!(self.total_consistency_lock.try_write().is_err());
4096 let prng_seed = self.entropy_source.get_secure_random_bytes();
4097 let session_priv = SecretKey::from_slice(&session_priv_bytes[..]).expect("RNG is busted");
4099 let (onion_packet, htlc_msat, htlc_cltv) = onion_utils::create_payment_onion(
4100 &self.secp_ctx, &path, &session_priv, total_value, recipient_onion, cur_height,
4101 payment_hash, keysend_preimage, prng_seed
4103 let logger = WithContext::from(&self.logger, Some(path.hops.first().unwrap().pubkey), None);
4104 log_error!(logger, "Failed to build an onion for path for payment hash {}", payment_hash);
4108 let err: Result<(), _> = loop {
4109 let (counterparty_node_id, id) = match self.short_to_chan_info.read().unwrap().get(&path.hops.first().unwrap().short_channel_id) {
4111 let logger = WithContext::from(&self.logger, Some(path.hops.first().unwrap().pubkey), None);
4112 log_error!(logger, "Failed to find first-hop for payment hash {}", payment_hash);
4113 return Err(APIError::ChannelUnavailable{err: "No channel available with first hop!".to_owned()})
4115 Some((cp_id, chan_id)) => (cp_id.clone(), chan_id.clone()),
4118 let logger = WithContext::from(&self.logger, Some(counterparty_node_id), Some(id));
4120 "Attempting to send payment with payment hash {} along path with next hop {}",
4121 payment_hash, path.hops.first().unwrap().short_channel_id);
4123 let per_peer_state = self.per_peer_state.read().unwrap();
4124 let peer_state_mutex = per_peer_state.get(&counterparty_node_id)
4125 .ok_or_else(|| APIError::ChannelUnavailable{err: "No peer matching the path's first hop found!".to_owned() })?;
4126 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
4127 let peer_state = &mut *peer_state_lock;
4128 if let hash_map::Entry::Occupied(mut chan_phase_entry) = peer_state.channel_by_id.entry(id) {
4129 match chan_phase_entry.get_mut() {
4130 ChannelPhase::Funded(chan) => {
4131 if !chan.context.is_live() {
4132 return Err(APIError::ChannelUnavailable{err: "Peer for first hop currently disconnected".to_owned()});
4134 let funding_txo = chan.context.get_funding_txo().unwrap();
4135 let logger = WithChannelContext::from(&self.logger, &chan.context);
4136 let send_res = chan.send_htlc_and_commit(htlc_msat, payment_hash.clone(),
4137 htlc_cltv, HTLCSource::OutboundRoute {
4139 session_priv: session_priv.clone(),
4140 first_hop_htlc_msat: htlc_msat,
4142 }, onion_packet, None, &self.fee_estimator, &&logger);
4143 match break_chan_phase_entry!(self, send_res, chan_phase_entry) {
4144 Some(monitor_update) => {
4145 match handle_new_monitor_update!(self, funding_txo, monitor_update, peer_state_lock, peer_state, per_peer_state, chan) {
4147 // Note that MonitorUpdateInProgress here indicates (per function
4148 // docs) that we will resend the commitment update once monitor
4149 // updating completes. Therefore, we must return an error
4150 // indicating that it is unsafe to retry the payment wholesale,
4151 // which we do in the send_payment check for
4152 // MonitorUpdateInProgress, below.
4153 return Err(APIError::MonitorUpdateInProgress);
4161 _ => return Err(APIError::ChannelUnavailable{err: "Channel to first hop is unfunded".to_owned()}),
4164 // The channel was likely removed after we fetched the id from the
4165 // `short_to_chan_info` map, but before we successfully locked the
4166 // `channel_by_id` map.
4167 // This can occur as no consistency guarantees exists between the two maps.
4168 return Err(APIError::ChannelUnavailable{err: "No channel available with first hop!".to_owned()});
4172 match handle_error!(self, err, path.hops.first().unwrap().pubkey) {
4173 Ok(_) => unreachable!(),
4175 Err(APIError::ChannelUnavailable { err: e.err })
4180 /// Sends a payment along a given route.
4182 /// Value parameters are provided via the last hop in route, see documentation for [`RouteHop`]
4183 /// fields for more info.
4185 /// May generate [`UpdateHTLCs`] message(s) event on success, which should be relayed (e.g. via
4186 /// [`PeerManager::process_events`]).
4188 /// # Avoiding Duplicate Payments
4190 /// If a pending payment is currently in-flight with the same [`PaymentId`] provided, this
4191 /// method will error with an [`APIError::InvalidRoute`]. Note, however, that once a payment
4192 /// is no longer pending (either via [`ChannelManager::abandon_payment`], or handling of an
4193 /// [`Event::PaymentSent`] or [`Event::PaymentFailed`]) LDK will not stop you from sending a
4194 /// second payment with the same [`PaymentId`].
4196 /// Thus, in order to ensure duplicate payments are not sent, you should implement your own
4197 /// tracking of payments, including state to indicate once a payment has completed. Because you
4198 /// should also ensure that [`PaymentHash`]es are not re-used, for simplicity, you should
4199 /// consider using the [`PaymentHash`] as the key for tracking payments. In that case, the
4200 /// [`PaymentId`] should be a copy of the [`PaymentHash`] bytes.
4202 /// Additionally, in the scenario where we begin the process of sending a payment, but crash
4203 /// before `send_payment` returns (or prior to [`ChannelMonitorUpdate`] persistence if you're
4204 /// using [`ChannelMonitorUpdateStatus::InProgress`]), the payment may be lost on restart. See
4205 /// [`ChannelManager::list_recent_payments`] for more information.
4207 /// # Possible Error States on [`PaymentSendFailure`]
4209 /// Each path may have a different return value, and [`PaymentSendFailure`] may return a `Vec` with
4210 /// each entry matching the corresponding-index entry in the route paths, see
4211 /// [`PaymentSendFailure`] for more info.
4213 /// In general, a path may raise:
4214 /// * [`APIError::InvalidRoute`] when an invalid route or forwarding parameter (cltv_delta, fee,
4215 /// node public key) is specified.
4216 /// * [`APIError::ChannelUnavailable`] if the next-hop channel is not available as it has been
4217 /// closed, doesn't exist, or the peer is currently disconnected.
4218 /// * [`APIError::MonitorUpdateInProgress`] if a new monitor update failure prevented sending the
4219 /// relevant updates.
4221 /// Note that depending on the type of the [`PaymentSendFailure`] the HTLC may have been
4222 /// irrevocably committed to on our end. In such a case, do NOT retry the payment with a
4223 /// different route unless you intend to pay twice!
4225 /// [`RouteHop`]: crate::routing::router::RouteHop
4226 /// [`Event::PaymentSent`]: events::Event::PaymentSent
4227 /// [`Event::PaymentFailed`]: events::Event::PaymentFailed
4228 /// [`UpdateHTLCs`]: events::MessageSendEvent::UpdateHTLCs
4229 /// [`PeerManager::process_events`]: crate::ln::peer_handler::PeerManager::process_events
4230 /// [`ChannelMonitorUpdateStatus::InProgress`]: crate::chain::ChannelMonitorUpdateStatus::InProgress
4231 pub fn send_payment_with_route(&self, route: &Route, payment_hash: PaymentHash, recipient_onion: RecipientOnionFields, payment_id: PaymentId) -> Result<(), PaymentSendFailure> {
4232 let best_block_height = self.best_block.read().unwrap().height;
4233 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4234 self.pending_outbound_payments
4235 .send_payment_with_route(route, payment_hash, recipient_onion, payment_id,
4236 &self.entropy_source, &self.node_signer, best_block_height,
4237 |args| self.send_payment_along_path(args))
4240 /// Similar to [`ChannelManager::send_payment_with_route`], but will automatically find a route based on
4241 /// `route_params` and retry failed payment paths based on `retry_strategy`.
4242 pub fn send_payment(&self, payment_hash: PaymentHash, recipient_onion: RecipientOnionFields, payment_id: PaymentId, route_params: RouteParameters, retry_strategy: Retry) -> Result<(), RetryableSendFailure> {
4243 let best_block_height = self.best_block.read().unwrap().height;
4244 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4245 self.pending_outbound_payments
4246 .send_payment(payment_hash, recipient_onion, payment_id, retry_strategy, route_params,
4247 &self.router, self.list_usable_channels(), || self.compute_inflight_htlcs(),
4248 &self.entropy_source, &self.node_signer, best_block_height, &self.logger,
4249 &self.pending_events, |args| self.send_payment_along_path(args))
4253 pub(super) fn test_send_payment_internal(&self, route: &Route, payment_hash: PaymentHash, recipient_onion: RecipientOnionFields, keysend_preimage: Option<PaymentPreimage>, payment_id: PaymentId, recv_value_msat: Option<u64>, onion_session_privs: Vec<[u8; 32]>) -> Result<(), PaymentSendFailure> {
4254 let best_block_height = self.best_block.read().unwrap().height;
4255 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4256 self.pending_outbound_payments.test_send_payment_internal(route, payment_hash, recipient_onion,
4257 keysend_preimage, payment_id, recv_value_msat, onion_session_privs, &self.node_signer,
4258 best_block_height, |args| self.send_payment_along_path(args))
4262 pub(crate) fn test_add_new_pending_payment(&self, payment_hash: PaymentHash, recipient_onion: RecipientOnionFields, payment_id: PaymentId, route: &Route) -> Result<Vec<[u8; 32]>, PaymentSendFailure> {
4263 let best_block_height = self.best_block.read().unwrap().height;
4264 self.pending_outbound_payments.test_add_new_pending_payment(payment_hash, recipient_onion, payment_id, route, None, &self.entropy_source, best_block_height)
4268 pub(crate) fn test_set_payment_metadata(&self, payment_id: PaymentId, new_payment_metadata: Option<Vec<u8>>) {
4269 self.pending_outbound_payments.test_set_payment_metadata(payment_id, new_payment_metadata);
4272 pub(super) fn send_payment_for_bolt12_invoice(&self, invoice: &Bolt12Invoice, payment_id: PaymentId) -> Result<(), Bolt12PaymentError> {
4273 let best_block_height = self.best_block.read().unwrap().height;
4274 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4275 self.pending_outbound_payments
4276 .send_payment_for_bolt12_invoice(
4277 invoice, payment_id, &self.router, self.list_usable_channels(),
4278 || self.compute_inflight_htlcs(), &self.entropy_source, &self.node_signer,
4279 best_block_height, &self.logger, &self.pending_events,
4280 |args| self.send_payment_along_path(args)
4284 /// Signals that no further attempts for the given payment should occur. Useful if you have a
4285 /// pending outbound payment with retries remaining, but wish to stop retrying the payment before
4286 /// retries are exhausted.
4288 /// # Event Generation
4290 /// If no [`Event::PaymentFailed`] event had been generated before, one will be generated as soon
4291 /// as there are no remaining pending HTLCs for this payment.
4293 /// Note that calling this method does *not* prevent a payment from succeeding. You must still
4294 /// wait until you receive either a [`Event::PaymentFailed`] or [`Event::PaymentSent`] event to
4295 /// determine the ultimate status of a payment.
4297 /// # Requested Invoices
4299 /// In the case of paying a [`Bolt12Invoice`] via [`ChannelManager::pay_for_offer`], abandoning
4300 /// the payment prior to receiving the invoice will result in an [`Event::InvoiceRequestFailed`]
4301 /// and prevent any attempts at paying it once received. The other events may only be generated
4302 /// once the invoice has been received.
4304 /// # Restart Behavior
4306 /// If an [`Event::PaymentFailed`] is generated and we restart without first persisting the
4307 /// [`ChannelManager`], another [`Event::PaymentFailed`] may be generated; likewise for
4308 /// [`Event::InvoiceRequestFailed`].
4310 /// [`Bolt12Invoice`]: crate::offers::invoice::Bolt12Invoice
4311 pub fn abandon_payment(&self, payment_id: PaymentId) {
4312 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4313 self.pending_outbound_payments.abandon_payment(payment_id, PaymentFailureReason::UserAbandoned, &self.pending_events);
4316 /// Send a spontaneous payment, which is a payment that does not require the recipient to have
4317 /// generated an invoice. Optionally, you may specify the preimage. If you do choose to specify
4318 /// the preimage, it must be a cryptographically secure random value that no intermediate node
4319 /// would be able to guess -- otherwise, an intermediate node may claim the payment and it will
4320 /// never reach the recipient.
4322 /// See [`send_payment`] documentation for more details on the return value of this function
4323 /// and idempotency guarantees provided by the [`PaymentId`] key.
4325 /// Similar to regular payments, you MUST NOT reuse a `payment_preimage` value. See
4326 /// [`send_payment`] for more information about the risks of duplicate preimage usage.
4328 /// [`send_payment`]: Self::send_payment
4329 pub fn send_spontaneous_payment(&self, route: &Route, payment_preimage: Option<PaymentPreimage>, recipient_onion: RecipientOnionFields, payment_id: PaymentId) -> Result<PaymentHash, PaymentSendFailure> {
4330 let best_block_height = self.best_block.read().unwrap().height;
4331 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4332 self.pending_outbound_payments.send_spontaneous_payment_with_route(
4333 route, payment_preimage, recipient_onion, payment_id, &self.entropy_source,
4334 &self.node_signer, best_block_height, |args| self.send_payment_along_path(args))
4337 /// Similar to [`ChannelManager::send_spontaneous_payment`], but will automatically find a route
4338 /// based on `route_params` and retry failed payment paths based on `retry_strategy`.
4340 /// See [`PaymentParameters::for_keysend`] for help in constructing `route_params` for spontaneous
4343 /// [`PaymentParameters::for_keysend`]: crate::routing::router::PaymentParameters::for_keysend
4344 pub fn send_spontaneous_payment_with_retry(&self, payment_preimage: Option<PaymentPreimage>, recipient_onion: RecipientOnionFields, payment_id: PaymentId, route_params: RouteParameters, retry_strategy: Retry) -> Result<PaymentHash, RetryableSendFailure> {
4345 let best_block_height = self.best_block.read().unwrap().height;
4346 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4347 self.pending_outbound_payments.send_spontaneous_payment(payment_preimage, recipient_onion,
4348 payment_id, retry_strategy, route_params, &self.router, self.list_usable_channels(),
4349 || self.compute_inflight_htlcs(), &self.entropy_source, &self.node_signer, best_block_height,
4350 &self.logger, &self.pending_events, |args| self.send_payment_along_path(args))
4353 /// Send a payment that is probing the given route for liquidity. We calculate the
4354 /// [`PaymentHash`] of probes based on a static secret and a random [`PaymentId`], which allows
4355 /// us to easily discern them from real payments.
4356 pub fn send_probe(&self, path: Path) -> Result<(PaymentHash, PaymentId), PaymentSendFailure> {
4357 let best_block_height = self.best_block.read().unwrap().height;
4358 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4359 self.pending_outbound_payments.send_probe(path, self.probing_cookie_secret,
4360 &self.entropy_source, &self.node_signer, best_block_height,
4361 |args| self.send_payment_along_path(args))
4364 /// Returns whether a payment with the given [`PaymentHash`] and [`PaymentId`] is, in fact, a
4367 pub(crate) fn payment_is_probe(&self, payment_hash: &PaymentHash, payment_id: &PaymentId) -> bool {
4368 outbound_payment::payment_is_probe(payment_hash, payment_id, self.probing_cookie_secret)
4371 /// Sends payment probes over all paths of a route that would be used to pay the given
4372 /// amount to the given `node_id`.
4374 /// See [`ChannelManager::send_preflight_probes`] for more information.
4375 pub fn send_spontaneous_preflight_probes(
4376 &self, node_id: PublicKey, amount_msat: u64, final_cltv_expiry_delta: u32,
4377 liquidity_limit_multiplier: Option<u64>,
4378 ) -> Result<Vec<(PaymentHash, PaymentId)>, ProbeSendFailure> {
4379 let payment_params =
4380 PaymentParameters::from_node_id(node_id, final_cltv_expiry_delta);
4382 let route_params = RouteParameters::from_payment_params_and_value(payment_params, amount_msat);
4384 self.send_preflight_probes(route_params, liquidity_limit_multiplier)
4387 /// Sends payment probes over all paths of a route that would be used to pay a route found
4388 /// according to the given [`RouteParameters`].
4390 /// This may be used to send "pre-flight" probes, i.e., to train our scorer before conducting
4391 /// the actual payment. Note this is only useful if there likely is sufficient time for the
4392 /// probe to settle before sending out the actual payment, e.g., when waiting for user
4393 /// confirmation in a wallet UI.
4395 /// Otherwise, there is a chance the probe could take up some liquidity needed to complete the
4396 /// actual payment. Users should therefore be cautious and might avoid sending probes if
4397 /// liquidity is scarce and/or they don't expect the probe to return before they send the
4398 /// payment. To mitigate this issue, channels with available liquidity less than the required
4399 /// amount times the given `liquidity_limit_multiplier` won't be used to send pre-flight
4400 /// probes. If `None` is given as `liquidity_limit_multiplier`, it defaults to `3`.
4401 pub fn send_preflight_probes(
4402 &self, route_params: RouteParameters, liquidity_limit_multiplier: Option<u64>,
4403 ) -> Result<Vec<(PaymentHash, PaymentId)>, ProbeSendFailure> {
4404 let liquidity_limit_multiplier = liquidity_limit_multiplier.unwrap_or(3);
4406 let payer = self.get_our_node_id();
4407 let usable_channels = self.list_usable_channels();
4408 let first_hops = usable_channels.iter().collect::<Vec<_>>();
4409 let inflight_htlcs = self.compute_inflight_htlcs();
4413 .find_route(&payer, &route_params, Some(&first_hops), inflight_htlcs)
4415 log_error!(self.logger, "Failed to find path for payment probe: {:?}", e);
4416 ProbeSendFailure::RouteNotFound
4419 let mut used_liquidity_map = hash_map_with_capacity(first_hops.len());
4421 let mut res = Vec::new();
4423 for mut path in route.paths {
4424 // If the last hop is probably an unannounced channel we refrain from probing all the
4425 // way through to the end and instead probe up to the second-to-last channel.
4426 while let Some(last_path_hop) = path.hops.last() {
4427 if last_path_hop.maybe_announced_channel {
4428 // We found a potentially announced last hop.
4431 // Drop the last hop, as it's likely unannounced.
4434 "Avoided sending payment probe all the way to last hop {} as it is likely unannounced.",
4435 last_path_hop.short_channel_id
4437 let final_value_msat = path.final_value_msat();
4439 if let Some(new_last) = path.hops.last_mut() {
4440 new_last.fee_msat += final_value_msat;
4445 if path.hops.len() < 2 {
4448 "Skipped sending payment probe over path with less than two hops."
4453 if let Some(first_path_hop) = path.hops.first() {
4454 if let Some(first_hop) = first_hops.iter().find(|h| {
4455 h.get_outbound_payment_scid() == Some(first_path_hop.short_channel_id)
4457 let path_value = path.final_value_msat() + path.fee_msat();
4458 let used_liquidity =
4459 used_liquidity_map.entry(first_path_hop.short_channel_id).or_insert(0);
4461 if first_hop.next_outbound_htlc_limit_msat
4462 < (*used_liquidity + path_value) * liquidity_limit_multiplier
4464 log_debug!(self.logger, "Skipped sending payment probe to avoid putting channel {} under the liquidity limit.", first_path_hop.short_channel_id);
4467 *used_liquidity += path_value;
4472 res.push(self.send_probe(path).map_err(|e| {
4473 log_error!(self.logger, "Failed to send pre-flight probe: {:?}", e);
4474 ProbeSendFailure::SendingFailed(e)
4481 /// Handles the generation of a funding transaction, optionally (for tests) with a function
4482 /// which checks the correctness of the funding transaction given the associated channel.
4483 fn funding_transaction_generated_intern<FundingOutput: FnMut(&OutboundV1Channel<SP>, &Transaction) -> Result<OutPoint, APIError>>(
4484 &self, temporary_channel_id: &ChannelId, counterparty_node_id: &PublicKey, funding_transaction: Transaction, is_batch_funding: bool,
4485 mut find_funding_output: FundingOutput,
4486 ) -> Result<(), APIError> {
4487 let per_peer_state = self.per_peer_state.read().unwrap();
4488 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
4489 .ok_or_else(|| APIError::ChannelUnavailable { err: format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id) })?;
4491 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
4492 let peer_state = &mut *peer_state_lock;
4494 let (mut chan, msg_opt) = match peer_state.channel_by_id.remove(temporary_channel_id) {
4495 Some(ChannelPhase::UnfundedOutboundV1(mut chan)) => {
4496 funding_txo = find_funding_output(&chan, &funding_transaction)?;
4498 let logger = WithChannelContext::from(&self.logger, &chan.context);
4499 let funding_res = chan.get_funding_created(funding_transaction, funding_txo, is_batch_funding, &&logger)
4500 .map_err(|(mut chan, e)| if let ChannelError::Close(msg) = e {
4501 let channel_id = chan.context.channel_id();
4502 let reason = ClosureReason::ProcessingError { err: msg.clone() };
4503 let shutdown_res = chan.context.force_shutdown(false, reason);
4504 (chan, MsgHandleErrInternal::from_finish_shutdown(msg, channel_id, shutdown_res, None))
4505 } else { unreachable!(); });
4507 Ok(funding_msg) => (chan, funding_msg),
4508 Err((chan, err)) => {
4509 mem::drop(peer_state_lock);
4510 mem::drop(per_peer_state);
4511 let _: Result<(), _> = handle_error!(self, Err(err), chan.context.get_counterparty_node_id());
4512 return Err(APIError::ChannelUnavailable {
4513 err: "Signer refused to sign the initial commitment transaction".to_owned()
4519 peer_state.channel_by_id.insert(*temporary_channel_id, phase);
4520 return Err(APIError::APIMisuseError {
4522 "Channel with id {} for the passed counterparty node_id {} is not an unfunded, outbound V1 channel",
4523 temporary_channel_id, counterparty_node_id),
4526 None => return Err(APIError::ChannelUnavailable {err: format!(
4527 "Channel with id {} not found for the passed counterparty node_id {}",
4528 temporary_channel_id, counterparty_node_id),
4532 if let Some(msg) = msg_opt {
4533 peer_state.pending_msg_events.push(events::MessageSendEvent::SendFundingCreated {
4534 node_id: chan.context.get_counterparty_node_id(),
4538 match peer_state.channel_by_id.entry(chan.context.channel_id()) {
4539 hash_map::Entry::Occupied(_) => {
4540 panic!("Generated duplicate funding txid?");
4542 hash_map::Entry::Vacant(e) => {
4543 let mut outpoint_to_peer = self.outpoint_to_peer.lock().unwrap();
4544 match outpoint_to_peer.entry(funding_txo) {
4545 hash_map::Entry::Vacant(e) => { e.insert(chan.context.get_counterparty_node_id()); },
4546 hash_map::Entry::Occupied(o) => {
4548 "An existing channel using outpoint {} is open with peer {}",
4549 funding_txo, o.get()
4551 mem::drop(outpoint_to_peer);
4552 mem::drop(peer_state_lock);
4553 mem::drop(per_peer_state);
4554 let reason = ClosureReason::ProcessingError { err: err.clone() };
4555 self.finish_close_channel(chan.context.force_shutdown(true, reason));
4556 return Err(APIError::ChannelUnavailable { err });
4559 e.insert(ChannelPhase::UnfundedOutboundV1(chan));
4566 pub(crate) fn funding_transaction_generated_unchecked(&self, temporary_channel_id: &ChannelId, counterparty_node_id: &PublicKey, funding_transaction: Transaction, output_index: u16) -> Result<(), APIError> {
4567 self.funding_transaction_generated_intern(temporary_channel_id, counterparty_node_id, funding_transaction, false, |_, tx| {
4568 Ok(OutPoint { txid: tx.txid(), index: output_index })
4572 /// Call this upon creation of a funding transaction for the given channel.
4574 /// Returns an [`APIError::APIMisuseError`] if the funding_transaction spent non-SegWit outputs
4575 /// or if no output was found which matches the parameters in [`Event::FundingGenerationReady`].
4577 /// Returns [`APIError::APIMisuseError`] if the funding transaction is not final for propagation
4578 /// across the p2p network.
4580 /// Returns [`APIError::ChannelUnavailable`] if a funding transaction has already been provided
4581 /// for the channel or if the channel has been closed as indicated by [`Event::ChannelClosed`].
4583 /// May panic if the output found in the funding transaction is duplicative with some other
4584 /// channel (note that this should be trivially prevented by using unique funding transaction
4585 /// keys per-channel).
4587 /// Do NOT broadcast the funding transaction yourself. When we have safely received our
4588 /// counterparty's signature the funding transaction will automatically be broadcast via the
4589 /// [`BroadcasterInterface`] provided when this `ChannelManager` was constructed.
4591 /// Note that this includes RBF or similar transaction replacement strategies - lightning does
4592 /// not currently support replacing a funding transaction on an existing channel. Instead,
4593 /// create a new channel with a conflicting funding transaction.
4595 /// Note to keep the miner incentives aligned in moving the blockchain forward, we recommend
4596 /// the wallet software generating the funding transaction to apply anti-fee sniping as
4597 /// implemented by Bitcoin Core wallet. See <https://bitcoinops.org/en/topics/fee-sniping/>
4598 /// for more details.
4600 /// [`Event::FundingGenerationReady`]: crate::events::Event::FundingGenerationReady
4601 /// [`Event::ChannelClosed`]: crate::events::Event::ChannelClosed
4602 pub fn funding_transaction_generated(&self, temporary_channel_id: &ChannelId, counterparty_node_id: &PublicKey, funding_transaction: Transaction) -> Result<(), APIError> {
4603 self.batch_funding_transaction_generated(&[(temporary_channel_id, counterparty_node_id)], funding_transaction)
4606 /// Call this upon creation of a batch funding transaction for the given channels.
4608 /// Return values are identical to [`Self::funding_transaction_generated`], respective to
4609 /// each individual channel and transaction output.
4611 /// Do NOT broadcast the funding transaction yourself. This batch funding transaction
4612 /// will only be broadcast when we have safely received and persisted the counterparty's
4613 /// signature for each channel.
4615 /// If there is an error, all channels in the batch are to be considered closed.
4616 pub fn batch_funding_transaction_generated(&self, temporary_channels: &[(&ChannelId, &PublicKey)], funding_transaction: Transaction) -> Result<(), APIError> {
4617 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4618 let mut result = Ok(());
4620 if !funding_transaction.is_coin_base() {
4621 for inp in funding_transaction.input.iter() {
4622 if inp.witness.is_empty() {
4623 result = result.and(Err(APIError::APIMisuseError {
4624 err: "Funding transaction must be fully signed and spend Segwit outputs".to_owned()
4629 if funding_transaction.output.len() > u16::max_value() as usize {
4630 result = result.and(Err(APIError::APIMisuseError {
4631 err: "Transaction had more than 2^16 outputs, which is not supported".to_owned()
4635 let height = self.best_block.read().unwrap().height;
4636 // Transactions are evaluated as final by network mempools if their locktime is strictly
4637 // lower than the next block height. However, the modules constituting our Lightning
4638 // node might not have perfect sync about their blockchain views. Thus, if the wallet
4639 // module is ahead of LDK, only allow one more block of headroom.
4640 if !funding_transaction.input.iter().all(|input| input.sequence == Sequence::MAX) &&
4641 funding_transaction.lock_time.is_block_height() &&
4642 funding_transaction.lock_time.to_consensus_u32() > height + 1
4644 result = result.and(Err(APIError::APIMisuseError {
4645 err: "Funding transaction absolute timelock is non-final".to_owned()
4650 let txid = funding_transaction.txid();
4651 let is_batch_funding = temporary_channels.len() > 1;
4652 let mut funding_batch_states = if is_batch_funding {
4653 Some(self.funding_batch_states.lock().unwrap())
4657 let mut funding_batch_state = funding_batch_states.as_mut().and_then(|states| {
4658 match states.entry(txid) {
4659 btree_map::Entry::Occupied(_) => {
4660 result = result.clone().and(Err(APIError::APIMisuseError {
4661 err: "Batch funding transaction with the same txid already exists".to_owned()
4665 btree_map::Entry::Vacant(vacant) => Some(vacant.insert(Vec::new())),
4668 for &(temporary_channel_id, counterparty_node_id) in temporary_channels {
4669 result = result.and_then(|_| self.funding_transaction_generated_intern(
4670 temporary_channel_id,
4671 counterparty_node_id,
4672 funding_transaction.clone(),
4675 let mut output_index = None;
4676 let expected_spk = chan.context.get_funding_redeemscript().to_v0_p2wsh();
4677 for (idx, outp) in tx.output.iter().enumerate() {
4678 if outp.script_pubkey == expected_spk && outp.value == chan.context.get_value_satoshis() {
4679 if output_index.is_some() {
4680 return Err(APIError::APIMisuseError {
4681 err: "Multiple outputs matched the expected script and value".to_owned()
4684 output_index = Some(idx as u16);
4687 if output_index.is_none() {
4688 return Err(APIError::APIMisuseError {
4689 err: "No output matched the script_pubkey and value in the FundingGenerationReady event".to_owned()
4692 let outpoint = OutPoint { txid: tx.txid(), index: output_index.unwrap() };
4693 if let Some(funding_batch_state) = funding_batch_state.as_mut() {
4694 // TODO(dual_funding): We only do batch funding for V1 channels at the moment, but we'll probably
4695 // need to fix this somehow to not rely on using the outpoint for the channel ID if we
4696 // want to support V2 batching here as well.
4697 funding_batch_state.push((ChannelId::v1_from_funding_outpoint(outpoint), *counterparty_node_id, false));
4703 if let Err(ref e) = result {
4704 // Remaining channels need to be removed on any error.
4705 let e = format!("Error in transaction funding: {:?}", e);
4706 let mut channels_to_remove = Vec::new();
4707 channels_to_remove.extend(funding_batch_states.as_mut()
4708 .and_then(|states| states.remove(&txid))
4709 .into_iter().flatten()
4710 .map(|(chan_id, node_id, _state)| (chan_id, node_id))
4712 channels_to_remove.extend(temporary_channels.iter()
4713 .map(|(&chan_id, &node_id)| (chan_id, node_id))
4715 let mut shutdown_results = Vec::new();
4717 let per_peer_state = self.per_peer_state.read().unwrap();
4718 for (channel_id, counterparty_node_id) in channels_to_remove {
4719 per_peer_state.get(&counterparty_node_id)
4720 .map(|peer_state_mutex| peer_state_mutex.lock().unwrap())
4721 .and_then(|mut peer_state| peer_state.channel_by_id.remove(&channel_id))
4723 update_maps_on_chan_removal!(self, &chan.context());
4724 let closure_reason = ClosureReason::ProcessingError { err: e.clone() };
4725 shutdown_results.push(chan.context_mut().force_shutdown(false, closure_reason));
4729 mem::drop(funding_batch_states);
4730 for shutdown_result in shutdown_results.drain(..) {
4731 self.finish_close_channel(shutdown_result);
4737 /// Atomically applies partial updates to the [`ChannelConfig`] of the given channels.
4739 /// Once the updates are applied, each eligible channel (advertised with a known short channel
4740 /// ID and a change in [`forwarding_fee_proportional_millionths`], [`forwarding_fee_base_msat`],
4741 /// or [`cltv_expiry_delta`]) has a [`BroadcastChannelUpdate`] event message generated
4742 /// containing the new [`ChannelUpdate`] message which should be broadcast to the network.
4744 /// Returns [`ChannelUnavailable`] when a channel is not found or an incorrect
4745 /// `counterparty_node_id` is provided.
4747 /// Returns [`APIMisuseError`] when a [`cltv_expiry_delta`] update is to be applied with a value
4748 /// below [`MIN_CLTV_EXPIRY_DELTA`].
4750 /// If an error is returned, none of the updates should be considered applied.
4752 /// [`forwarding_fee_proportional_millionths`]: ChannelConfig::forwarding_fee_proportional_millionths
4753 /// [`forwarding_fee_base_msat`]: ChannelConfig::forwarding_fee_base_msat
4754 /// [`cltv_expiry_delta`]: ChannelConfig::cltv_expiry_delta
4755 /// [`BroadcastChannelUpdate`]: events::MessageSendEvent::BroadcastChannelUpdate
4756 /// [`ChannelUpdate`]: msgs::ChannelUpdate
4757 /// [`ChannelUnavailable`]: APIError::ChannelUnavailable
4758 /// [`APIMisuseError`]: APIError::APIMisuseError
4759 pub fn update_partial_channel_config(
4760 &self, counterparty_node_id: &PublicKey, channel_ids: &[ChannelId], config_update: &ChannelConfigUpdate,
4761 ) -> Result<(), APIError> {
4762 if config_update.cltv_expiry_delta.map(|delta| delta < MIN_CLTV_EXPIRY_DELTA).unwrap_or(false) {
4763 return Err(APIError::APIMisuseError {
4764 err: format!("The chosen CLTV expiry delta is below the minimum of {}", MIN_CLTV_EXPIRY_DELTA),
4768 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4769 let per_peer_state = self.per_peer_state.read().unwrap();
4770 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
4771 .ok_or_else(|| APIError::ChannelUnavailable { err: format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id) })?;
4772 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
4773 let peer_state = &mut *peer_state_lock;
4775 for channel_id in channel_ids {
4776 if !peer_state.has_channel(channel_id) {
4777 return Err(APIError::ChannelUnavailable {
4778 err: format!("Channel with id {} not found for the passed counterparty node_id {}", channel_id, counterparty_node_id),
4782 for channel_id in channel_ids {
4783 if let Some(channel_phase) = peer_state.channel_by_id.get_mut(channel_id) {
4784 let mut config = channel_phase.context().config();
4785 config.apply(config_update);
4786 if !channel_phase.context_mut().update_config(&config) {
4789 if let ChannelPhase::Funded(channel) = channel_phase {
4790 if let Ok(msg) = self.get_channel_update_for_broadcast(channel) {
4791 let mut pending_broadcast_messages = self.pending_broadcast_messages.lock().unwrap();
4792 pending_broadcast_messages.push(events::MessageSendEvent::BroadcastChannelUpdate { msg });
4793 } else if let Ok(msg) = self.get_channel_update_for_unicast(channel) {
4794 peer_state.pending_msg_events.push(events::MessageSendEvent::SendChannelUpdate {
4795 node_id: channel.context.get_counterparty_node_id(),
4802 // This should not be reachable as we've already checked for non-existence in the previous channel_id loop.
4803 debug_assert!(false);
4804 return Err(APIError::ChannelUnavailable {
4806 "Channel with ID {} for passed counterparty_node_id {} disappeared after we confirmed its existence - this should not be reachable!",
4807 channel_id, counterparty_node_id),
4814 /// Atomically updates the [`ChannelConfig`] for the given channels.
4816 /// Once the updates are applied, each eligible channel (advertised with a known short channel
4817 /// ID and a change in [`forwarding_fee_proportional_millionths`], [`forwarding_fee_base_msat`],
4818 /// or [`cltv_expiry_delta`]) has a [`BroadcastChannelUpdate`] event message generated
4819 /// containing the new [`ChannelUpdate`] message which should be broadcast to the network.
4821 /// Returns [`ChannelUnavailable`] when a channel is not found or an incorrect
4822 /// `counterparty_node_id` is provided.
4824 /// Returns [`APIMisuseError`] when a [`cltv_expiry_delta`] update is to be applied with a value
4825 /// below [`MIN_CLTV_EXPIRY_DELTA`].
4827 /// If an error is returned, none of the updates should be considered applied.
4829 /// [`forwarding_fee_proportional_millionths`]: ChannelConfig::forwarding_fee_proportional_millionths
4830 /// [`forwarding_fee_base_msat`]: ChannelConfig::forwarding_fee_base_msat
4831 /// [`cltv_expiry_delta`]: ChannelConfig::cltv_expiry_delta
4832 /// [`BroadcastChannelUpdate`]: events::MessageSendEvent::BroadcastChannelUpdate
4833 /// [`ChannelUpdate`]: msgs::ChannelUpdate
4834 /// [`ChannelUnavailable`]: APIError::ChannelUnavailable
4835 /// [`APIMisuseError`]: APIError::APIMisuseError
4836 pub fn update_channel_config(
4837 &self, counterparty_node_id: &PublicKey, channel_ids: &[ChannelId], config: &ChannelConfig,
4838 ) -> Result<(), APIError> {
4839 return self.update_partial_channel_config(counterparty_node_id, channel_ids, &(*config).into());
4842 /// Attempts to forward an intercepted HTLC over the provided channel id and with the provided
4843 /// amount to forward. Should only be called in response to an [`HTLCIntercepted`] event.
4845 /// Intercepted HTLCs can be useful for Lightning Service Providers (LSPs) to open a just-in-time
4846 /// channel to a receiving node if the node lacks sufficient inbound liquidity.
4848 /// To make use of intercepted HTLCs, set [`UserConfig::accept_intercept_htlcs`] and use
4849 /// [`ChannelManager::get_intercept_scid`] to generate short channel id(s) to put in the
4850 /// receiver's invoice route hints. These route hints will signal to LDK to generate an
4851 /// [`HTLCIntercepted`] event when it receives the forwarded HTLC, and this method or
4852 /// [`ChannelManager::fail_intercepted_htlc`] MUST be called in response to the event.
4854 /// Note that LDK does not enforce fee requirements in `amt_to_forward_msat`, and will not stop
4855 /// you from forwarding more than you received. See
4856 /// [`HTLCIntercepted::expected_outbound_amount_msat`] for more on forwarding a different amount
4859 /// Errors if the event was not handled in time, in which case the HTLC was automatically failed
4862 /// [`UserConfig::accept_intercept_htlcs`]: crate::util::config::UserConfig::accept_intercept_htlcs
4863 /// [`HTLCIntercepted`]: events::Event::HTLCIntercepted
4864 /// [`HTLCIntercepted::expected_outbound_amount_msat`]: events::Event::HTLCIntercepted::expected_outbound_amount_msat
4865 // TODO: when we move to deciding the best outbound channel at forward time, only take
4866 // `next_node_id` and not `next_hop_channel_id`
4867 pub fn forward_intercepted_htlc(&self, intercept_id: InterceptId, next_hop_channel_id: &ChannelId, next_node_id: PublicKey, amt_to_forward_msat: u64) -> Result<(), APIError> {
4868 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4870 let next_hop_scid = {
4871 let peer_state_lock = self.per_peer_state.read().unwrap();
4872 let peer_state_mutex = peer_state_lock.get(&next_node_id)
4873 .ok_or_else(|| APIError::ChannelUnavailable { err: format!("Can't find a peer matching the passed counterparty node_id {}", next_node_id) })?;
4874 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
4875 let peer_state = &mut *peer_state_lock;
4876 match peer_state.channel_by_id.get(next_hop_channel_id) {
4877 Some(ChannelPhase::Funded(chan)) => {
4878 if !chan.context.is_usable() {
4879 return Err(APIError::ChannelUnavailable {
4880 err: format!("Channel with id {} not fully established", next_hop_channel_id)
4883 chan.context.get_short_channel_id().unwrap_or(chan.context.outbound_scid_alias())
4885 Some(_) => return Err(APIError::ChannelUnavailable {
4886 err: format!("Channel with id {} for the passed counterparty node_id {} is still opening.",
4887 next_hop_channel_id, next_node_id)
4890 let error = format!("Channel with id {} not found for the passed counterparty node_id {}",
4891 next_hop_channel_id, next_node_id);
4892 let logger = WithContext::from(&self.logger, Some(next_node_id), Some(*next_hop_channel_id));
4893 log_error!(logger, "{} when attempting to forward intercepted HTLC", error);
4894 return Err(APIError::ChannelUnavailable {
4901 let payment = self.pending_intercepted_htlcs.lock().unwrap().remove(&intercept_id)
4902 .ok_or_else(|| APIError::APIMisuseError {
4903 err: format!("Payment with intercept id {} not found", log_bytes!(intercept_id.0))
4906 let routing = match payment.forward_info.routing {
4907 PendingHTLCRouting::Forward { onion_packet, blinded, .. } => {
4908 PendingHTLCRouting::Forward {
4909 onion_packet, blinded, short_channel_id: next_hop_scid
4912 _ => unreachable!() // Only `PendingHTLCRouting::Forward`s are intercepted
4914 let skimmed_fee_msat =
4915 payment.forward_info.outgoing_amt_msat.saturating_sub(amt_to_forward_msat);
4916 let pending_htlc_info = PendingHTLCInfo {
4917 skimmed_fee_msat: if skimmed_fee_msat == 0 { None } else { Some(skimmed_fee_msat) },
4918 outgoing_amt_msat: amt_to_forward_msat, routing, ..payment.forward_info
4921 let mut per_source_pending_forward = [(
4922 payment.prev_short_channel_id,
4923 payment.prev_funding_outpoint,
4924 payment.prev_channel_id,
4925 payment.prev_user_channel_id,
4926 vec![(pending_htlc_info, payment.prev_htlc_id)]
4928 self.forward_htlcs(&mut per_source_pending_forward);
4932 /// Fails the intercepted HTLC indicated by intercept_id. Should only be called in response to
4933 /// an [`HTLCIntercepted`] event. See [`ChannelManager::forward_intercepted_htlc`].
4935 /// Errors if the event was not handled in time, in which case the HTLC was automatically failed
4938 /// [`HTLCIntercepted`]: events::Event::HTLCIntercepted
4939 pub fn fail_intercepted_htlc(&self, intercept_id: InterceptId) -> Result<(), APIError> {
4940 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
4942 let payment = self.pending_intercepted_htlcs.lock().unwrap().remove(&intercept_id)
4943 .ok_or_else(|| APIError::APIMisuseError {
4944 err: format!("Payment with intercept id {} not found", log_bytes!(intercept_id.0))
4947 if let PendingHTLCRouting::Forward { short_channel_id, .. } = payment.forward_info.routing {
4948 let htlc_source = HTLCSource::PreviousHopData(HTLCPreviousHopData {
4949 short_channel_id: payment.prev_short_channel_id,
4950 user_channel_id: Some(payment.prev_user_channel_id),
4951 outpoint: payment.prev_funding_outpoint,
4952 channel_id: payment.prev_channel_id,
4953 htlc_id: payment.prev_htlc_id,
4954 incoming_packet_shared_secret: payment.forward_info.incoming_shared_secret,
4955 phantom_shared_secret: None,
4956 blinded_failure: payment.forward_info.routing.blinded_failure(),
4959 let failure_reason = HTLCFailReason::from_failure_code(0x4000 | 10);
4960 let destination = HTLCDestination::UnknownNextHop { requested_forward_scid: short_channel_id };
4961 self.fail_htlc_backwards_internal(&htlc_source, &payment.forward_info.payment_hash, &failure_reason, destination);
4962 } else { unreachable!() } // Only `PendingHTLCRouting::Forward`s are intercepted
4967 fn process_pending_update_add_htlcs(&self) {
4968 let mut decode_update_add_htlcs = new_hash_map();
4969 mem::swap(&mut decode_update_add_htlcs, &mut self.decode_update_add_htlcs.lock().unwrap());
4971 let get_failed_htlc_destination = |outgoing_scid_opt: Option<u64>, payment_hash: PaymentHash| {
4972 if let Some(outgoing_scid) = outgoing_scid_opt {
4973 match self.short_to_chan_info.read().unwrap().get(&outgoing_scid) {
4974 Some((outgoing_counterparty_node_id, outgoing_channel_id)) =>
4975 HTLCDestination::NextHopChannel {
4976 node_id: Some(*outgoing_counterparty_node_id),
4977 channel_id: *outgoing_channel_id,
4979 None => HTLCDestination::UnknownNextHop {
4980 requested_forward_scid: outgoing_scid,
4984 HTLCDestination::FailedPayment { payment_hash }
4988 'outer_loop: for (incoming_scid, update_add_htlcs) in decode_update_add_htlcs {
4989 let incoming_channel_details_opt = self.do_funded_channel_callback(incoming_scid, |chan: &mut Channel<SP>| {
4990 let counterparty_node_id = chan.context.get_counterparty_node_id();
4991 let channel_id = chan.context.channel_id();
4992 let funding_txo = chan.context.get_funding_txo().unwrap();
4993 let user_channel_id = chan.context.get_user_id();
4994 let accept_underpaying_htlcs = chan.context.config().accept_underpaying_htlcs;
4995 (counterparty_node_id, channel_id, funding_txo, user_channel_id, accept_underpaying_htlcs)
4998 incoming_counterparty_node_id, incoming_channel_id, incoming_funding_txo,
4999 incoming_user_channel_id, incoming_accept_underpaying_htlcs
5000 ) = if let Some(incoming_channel_details) = incoming_channel_details_opt {
5001 incoming_channel_details
5003 // The incoming channel no longer exists, HTLCs should be resolved onchain instead.
5007 let mut htlc_forwards = Vec::new();
5008 let mut htlc_fails = Vec::new();
5009 for update_add_htlc in &update_add_htlcs {
5010 let (next_hop, shared_secret, next_packet_details_opt) = match decode_incoming_update_add_htlc_onion(
5011 &update_add_htlc, &self.node_signer, &self.logger, &self.secp_ctx
5013 Ok(decoded_onion) => decoded_onion,
5015 htlc_fails.push((htlc_fail, HTLCDestination::InvalidOnion));
5020 let is_intro_node_blinded_forward = next_hop.is_intro_node_blinded_forward();
5021 let outgoing_scid_opt = next_packet_details_opt.as_ref().map(|d| d.outgoing_scid);
5023 // Process the HTLC on the incoming channel.
5024 match self.do_funded_channel_callback(incoming_scid, |chan: &mut Channel<SP>| {
5025 let logger = WithChannelContext::from(&self.logger, &chan.context);
5026 chan.can_accept_incoming_htlc(
5027 update_add_htlc, &self.fee_estimator, &logger,
5031 Some(Err((err, code))) => {
5032 let outgoing_chan_update_opt = if let Some(outgoing_scid) = outgoing_scid_opt.as_ref() {
5033 self.do_funded_channel_callback(*outgoing_scid, |chan: &mut Channel<SP>| {
5034 self.get_channel_update_for_onion(*outgoing_scid, chan).ok()
5039 let htlc_fail = self.htlc_failure_from_update_add_err(
5040 &update_add_htlc, &incoming_counterparty_node_id, err, code,
5041 outgoing_chan_update_opt, is_intro_node_blinded_forward, &shared_secret,
5043 let htlc_destination = get_failed_htlc_destination(outgoing_scid_opt, update_add_htlc.payment_hash);
5044 htlc_fails.push((htlc_fail, htlc_destination));
5047 // The incoming channel no longer exists, HTLCs should be resolved onchain instead.
5048 None => continue 'outer_loop,
5051 // Now process the HTLC on the outgoing channel if it's a forward.
5052 if let Some(next_packet_details) = next_packet_details_opt.as_ref() {
5053 if let Err((err, code, chan_update_opt)) = self.can_forward_htlc(
5054 &update_add_htlc, next_packet_details
5056 let htlc_fail = self.htlc_failure_from_update_add_err(
5057 &update_add_htlc, &incoming_counterparty_node_id, err, code,
5058 chan_update_opt, is_intro_node_blinded_forward, &shared_secret,
5060 let htlc_destination = get_failed_htlc_destination(outgoing_scid_opt, update_add_htlc.payment_hash);
5061 htlc_fails.push((htlc_fail, htlc_destination));
5066 match self.construct_pending_htlc_status(
5067 &update_add_htlc, &incoming_counterparty_node_id, shared_secret, next_hop,
5068 incoming_accept_underpaying_htlcs, next_packet_details_opt.map(|d| d.next_packet_pubkey),
5070 PendingHTLCStatus::Forward(htlc_forward) => {
5071 htlc_forwards.push((htlc_forward, update_add_htlc.htlc_id));
5073 PendingHTLCStatus::Fail(htlc_fail) => {
5074 let htlc_destination = get_failed_htlc_destination(outgoing_scid_opt, update_add_htlc.payment_hash);
5075 htlc_fails.push((htlc_fail, htlc_destination));
5080 // Process all of the forwards and failures for the channel in which the HTLCs were
5081 // proposed to as a batch.
5082 let pending_forwards = (incoming_scid, incoming_funding_txo, incoming_channel_id,
5083 incoming_user_channel_id, htlc_forwards.drain(..).collect());
5084 self.forward_htlcs_without_forward_event(&mut [pending_forwards]);
5085 for (htlc_fail, htlc_destination) in htlc_fails.drain(..) {
5086 let failure = match htlc_fail {
5087 HTLCFailureMsg::Relay(fail_htlc) => HTLCForwardInfo::FailHTLC {
5088 htlc_id: fail_htlc.htlc_id,
5089 err_packet: fail_htlc.reason,
5091 HTLCFailureMsg::Malformed(fail_malformed_htlc) => HTLCForwardInfo::FailMalformedHTLC {
5092 htlc_id: fail_malformed_htlc.htlc_id,
5093 sha256_of_onion: fail_malformed_htlc.sha256_of_onion,
5094 failure_code: fail_malformed_htlc.failure_code,
5097 self.forward_htlcs.lock().unwrap().entry(incoming_scid).or_insert(vec![]).push(failure);
5098 self.pending_events.lock().unwrap().push_back((events::Event::HTLCHandlingFailed {
5099 prev_channel_id: incoming_channel_id,
5100 failed_next_destination: htlc_destination,
5106 /// Processes HTLCs which are pending waiting on random forward delay.
5108 /// Should only really ever be called in response to a PendingHTLCsForwardable event.
5109 /// Will likely generate further events.
5110 pub fn process_pending_htlc_forwards(&self) {
5111 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
5113 self.process_pending_update_add_htlcs();
5115 let mut new_events = VecDeque::new();
5116 let mut failed_forwards = Vec::new();
5117 let mut phantom_receives: Vec<(u64, OutPoint, ChannelId, u128, Vec<(PendingHTLCInfo, u64)>)> = Vec::new();
5119 let mut forward_htlcs = new_hash_map();
5120 mem::swap(&mut forward_htlcs, &mut self.forward_htlcs.lock().unwrap());
5122 for (short_chan_id, mut pending_forwards) in forward_htlcs {
5123 if short_chan_id != 0 {
5124 let mut forwarding_counterparty = None;
5125 macro_rules! forwarding_channel_not_found {
5127 for forward_info in pending_forwards.drain(..) {
5128 match forward_info {
5129 HTLCForwardInfo::AddHTLC(PendingAddHTLCInfo {
5130 prev_short_channel_id, prev_htlc_id, prev_channel_id, prev_funding_outpoint,
5131 prev_user_channel_id, forward_info: PendingHTLCInfo {
5132 routing, incoming_shared_secret, payment_hash, outgoing_amt_msat,
5133 outgoing_cltv_value, ..
5136 macro_rules! failure_handler {
5137 ($msg: expr, $err_code: expr, $err_data: expr, $phantom_ss: expr, $next_hop_unknown: expr) => {
5138 let logger = WithContext::from(&self.logger, forwarding_counterparty, Some(prev_channel_id));
5139 log_info!(logger, "Failed to accept/forward incoming HTLC: {}", $msg);
5141 let htlc_source = HTLCSource::PreviousHopData(HTLCPreviousHopData {
5142 short_channel_id: prev_short_channel_id,
5143 user_channel_id: Some(prev_user_channel_id),
5144 channel_id: prev_channel_id,
5145 outpoint: prev_funding_outpoint,
5146 htlc_id: prev_htlc_id,
5147 incoming_packet_shared_secret: incoming_shared_secret,
5148 phantom_shared_secret: $phantom_ss,
5149 blinded_failure: routing.blinded_failure(),
5152 let reason = if $next_hop_unknown {
5153 HTLCDestination::UnknownNextHop { requested_forward_scid: short_chan_id }
5155 HTLCDestination::FailedPayment{ payment_hash }
5158 failed_forwards.push((htlc_source, payment_hash,
5159 HTLCFailReason::reason($err_code, $err_data),
5165 macro_rules! fail_forward {
5166 ($msg: expr, $err_code: expr, $err_data: expr, $phantom_ss: expr) => {
5168 failure_handler!($msg, $err_code, $err_data, $phantom_ss, true);
5172 macro_rules! failed_payment {
5173 ($msg: expr, $err_code: expr, $err_data: expr, $phantom_ss: expr) => {
5175 failure_handler!($msg, $err_code, $err_data, $phantom_ss, false);
5179 if let PendingHTLCRouting::Forward { ref onion_packet, .. } = routing {
5180 let phantom_pubkey_res = self.node_signer.get_node_id(Recipient::PhantomNode);
5181 if phantom_pubkey_res.is_ok() && fake_scid::is_valid_phantom(&self.fake_scid_rand_bytes, short_chan_id, &self.chain_hash) {
5182 let phantom_shared_secret = self.node_signer.ecdh(Recipient::PhantomNode, &onion_packet.public_key.unwrap(), None).unwrap().secret_bytes();
5183 let next_hop = match onion_utils::decode_next_payment_hop(
5184 phantom_shared_secret, &onion_packet.hop_data, onion_packet.hmac,
5185 payment_hash, None, &self.node_signer
5188 Err(onion_utils::OnionDecodeErr::Malformed { err_msg, err_code }) => {
5189 let sha256_of_onion = Sha256::hash(&onion_packet.hop_data).to_byte_array();
5190 // In this scenario, the phantom would have sent us an
5191 // `update_fail_malformed_htlc`, meaning here we encrypt the error as
5192 // if it came from us (the second-to-last hop) but contains the sha256
5194 failed_payment!(err_msg, err_code, sha256_of_onion.to_vec(), None);
5196 Err(onion_utils::OnionDecodeErr::Relay { err_msg, err_code }) => {
5197 failed_payment!(err_msg, err_code, Vec::new(), Some(phantom_shared_secret));
5201 onion_utils::Hop::Receive(hop_data) => {
5202 let current_height: u32 = self.best_block.read().unwrap().height;
5203 match create_recv_pending_htlc_info(hop_data,
5204 incoming_shared_secret, payment_hash, outgoing_amt_msat,
5205 outgoing_cltv_value, Some(phantom_shared_secret), false, None,
5206 current_height, self.default_configuration.accept_mpp_keysend)
5208 Ok(info) => phantom_receives.push((prev_short_channel_id, prev_funding_outpoint, prev_channel_id, prev_user_channel_id, vec![(info, prev_htlc_id)])),
5209 Err(InboundHTLCErr { err_code, err_data, msg }) => failed_payment!(msg, err_code, err_data, Some(phantom_shared_secret))
5215 fail_forward!(format!("Unknown short channel id {} for forward HTLC", short_chan_id), 0x4000 | 10, Vec::new(), None);
5218 fail_forward!(format!("Unknown short channel id {} for forward HTLC", short_chan_id), 0x4000 | 10, Vec::new(), None);
5221 HTLCForwardInfo::FailHTLC { .. } | HTLCForwardInfo::FailMalformedHTLC { .. } => {
5222 // Channel went away before we could fail it. This implies
5223 // the channel is now on chain and our counterparty is
5224 // trying to broadcast the HTLC-Timeout, but that's their
5225 // problem, not ours.
5231 let chan_info_opt = self.short_to_chan_info.read().unwrap().get(&short_chan_id).cloned();
5232 let (counterparty_node_id, forward_chan_id) = match chan_info_opt {
5233 Some((cp_id, chan_id)) => (cp_id, chan_id),
5235 forwarding_channel_not_found!();
5239 forwarding_counterparty = Some(counterparty_node_id);
5240 let per_peer_state = self.per_peer_state.read().unwrap();
5241 let peer_state_mutex_opt = per_peer_state.get(&counterparty_node_id);
5242 if peer_state_mutex_opt.is_none() {
5243 forwarding_channel_not_found!();
5246 let mut peer_state_lock = peer_state_mutex_opt.unwrap().lock().unwrap();
5247 let peer_state = &mut *peer_state_lock;
5248 if let Some(ChannelPhase::Funded(ref mut chan)) = peer_state.channel_by_id.get_mut(&forward_chan_id) {
5249 let logger = WithChannelContext::from(&self.logger, &chan.context);
5250 for forward_info in pending_forwards.drain(..) {
5251 let queue_fail_htlc_res = match forward_info {
5252 HTLCForwardInfo::AddHTLC(PendingAddHTLCInfo {
5253 prev_short_channel_id, prev_htlc_id, prev_channel_id, prev_funding_outpoint,
5254 prev_user_channel_id, forward_info: PendingHTLCInfo {
5255 incoming_shared_secret, payment_hash, outgoing_amt_msat, outgoing_cltv_value,
5256 routing: PendingHTLCRouting::Forward {
5257 onion_packet, blinded, ..
5258 }, skimmed_fee_msat, ..
5261 log_trace!(logger, "Adding HTLC from short id {} with payment_hash {} to channel with short id {} after delay", prev_short_channel_id, &payment_hash, short_chan_id);
5262 let htlc_source = HTLCSource::PreviousHopData(HTLCPreviousHopData {
5263 short_channel_id: prev_short_channel_id,
5264 user_channel_id: Some(prev_user_channel_id),
5265 channel_id: prev_channel_id,
5266 outpoint: prev_funding_outpoint,
5267 htlc_id: prev_htlc_id,
5268 incoming_packet_shared_secret: incoming_shared_secret,
5269 // Phantom payments are only PendingHTLCRouting::Receive.
5270 phantom_shared_secret: None,
5271 blinded_failure: blinded.map(|b| b.failure),
5273 let next_blinding_point = blinded.and_then(|b| {
5274 let encrypted_tlvs_ss = self.node_signer.ecdh(
5275 Recipient::Node, &b.inbound_blinding_point, None
5276 ).unwrap().secret_bytes();
5277 onion_utils::next_hop_pubkey(
5278 &self.secp_ctx, b.inbound_blinding_point, &encrypted_tlvs_ss
5281 if let Err(e) = chan.queue_add_htlc(outgoing_amt_msat,
5282 payment_hash, outgoing_cltv_value, htlc_source.clone(),
5283 onion_packet, skimmed_fee_msat, next_blinding_point, &self.fee_estimator,
5286 if let ChannelError::Ignore(msg) = e {
5287 log_trace!(logger, "Failed to forward HTLC with payment_hash {}: {}", &payment_hash, msg);
5289 panic!("Stated return value requirements in send_htlc() were not met");
5291 let (failure_code, data) = self.get_htlc_temp_fail_err_and_data(0x1000|7, short_chan_id, chan);
5292 failed_forwards.push((htlc_source, payment_hash,
5293 HTLCFailReason::reason(failure_code, data),
5294 HTLCDestination::NextHopChannel { node_id: Some(chan.context.get_counterparty_node_id()), channel_id: forward_chan_id }
5300 HTLCForwardInfo::AddHTLC { .. } => {
5301 panic!("short_channel_id != 0 should imply any pending_forward entries are of type Forward");
5303 HTLCForwardInfo::FailHTLC { htlc_id, err_packet } => {
5304 log_trace!(logger, "Failing HTLC back to channel with short id {} (backward HTLC ID {}) after delay", short_chan_id, htlc_id);
5305 Some((chan.queue_fail_htlc(htlc_id, err_packet, &&logger), htlc_id))
5307 HTLCForwardInfo::FailMalformedHTLC { htlc_id, failure_code, sha256_of_onion } => {
5308 log_trace!(logger, "Failing malformed HTLC back to channel with short id {} (backward HTLC ID {}) after delay", short_chan_id, htlc_id);
5309 let res = chan.queue_fail_malformed_htlc(
5310 htlc_id, failure_code, sha256_of_onion, &&logger
5312 Some((res, htlc_id))
5315 if let Some((queue_fail_htlc_res, htlc_id)) = queue_fail_htlc_res {
5316 if let Err(e) = queue_fail_htlc_res {
5317 if let ChannelError::Ignore(msg) = e {
5318 log_trace!(logger, "Failed to fail HTLC with ID {} backwards to short_id {}: {}", htlc_id, short_chan_id, msg);
5320 panic!("Stated return value requirements in queue_fail_{{malformed_}}htlc() were not met");
5322 // fail-backs are best-effort, we probably already have one
5323 // pending, and if not that's OK, if not, the channel is on
5324 // the chain and sending the HTLC-Timeout is their problem.
5330 forwarding_channel_not_found!();
5334 'next_forwardable_htlc: for forward_info in pending_forwards.drain(..) {
5335 match forward_info {
5336 HTLCForwardInfo::AddHTLC(PendingAddHTLCInfo {
5337 prev_short_channel_id, prev_htlc_id, prev_channel_id, prev_funding_outpoint,
5338 prev_user_channel_id, forward_info: PendingHTLCInfo {
5339 routing, incoming_shared_secret, payment_hash, incoming_amt_msat, outgoing_amt_msat,
5340 skimmed_fee_msat, ..
5343 let blinded_failure = routing.blinded_failure();
5344 let (cltv_expiry, onion_payload, payment_data, payment_context, phantom_shared_secret, mut onion_fields) = match routing {
5345 PendingHTLCRouting::Receive {
5346 payment_data, payment_metadata, payment_context,
5347 incoming_cltv_expiry, phantom_shared_secret, custom_tlvs,
5348 requires_blinded_error: _
5350 let _legacy_hop_data = Some(payment_data.clone());
5351 let onion_fields = RecipientOnionFields { payment_secret: Some(payment_data.payment_secret),
5352 payment_metadata, custom_tlvs };
5353 (incoming_cltv_expiry, OnionPayload::Invoice { _legacy_hop_data },
5354 Some(payment_data), payment_context, phantom_shared_secret, onion_fields)
5356 PendingHTLCRouting::ReceiveKeysend {
5357 payment_data, payment_preimage, payment_metadata,
5358 incoming_cltv_expiry, custom_tlvs, requires_blinded_error: _
5360 let onion_fields = RecipientOnionFields {
5361 payment_secret: payment_data.as_ref().map(|data| data.payment_secret),
5365 (incoming_cltv_expiry, OnionPayload::Spontaneous(payment_preimage),
5366 payment_data, None, None, onion_fields)
5369 panic!("short_channel_id == 0 should imply any pending_forward entries are of type Receive");
5372 let claimable_htlc = ClaimableHTLC {
5373 prev_hop: HTLCPreviousHopData {
5374 short_channel_id: prev_short_channel_id,
5375 user_channel_id: Some(prev_user_channel_id),
5376 channel_id: prev_channel_id,
5377 outpoint: prev_funding_outpoint,
5378 htlc_id: prev_htlc_id,
5379 incoming_packet_shared_secret: incoming_shared_secret,
5380 phantom_shared_secret,
5383 // We differentiate the received value from the sender intended value
5384 // if possible so that we don't prematurely mark MPP payments complete
5385 // if routing nodes overpay
5386 value: incoming_amt_msat.unwrap_or(outgoing_amt_msat),
5387 sender_intended_value: outgoing_amt_msat,
5389 total_value_received: None,
5390 total_msat: if let Some(data) = &payment_data { data.total_msat } else { outgoing_amt_msat },
5393 counterparty_skimmed_fee_msat: skimmed_fee_msat,
5396 let mut committed_to_claimable = false;
5398 macro_rules! fail_htlc {
5399 ($htlc: expr, $payment_hash: expr) => {
5400 debug_assert!(!committed_to_claimable);
5401 let mut htlc_msat_height_data = $htlc.value.to_be_bytes().to_vec();
5402 htlc_msat_height_data.extend_from_slice(
5403 &self.best_block.read().unwrap().height.to_be_bytes(),
5405 failed_forwards.push((HTLCSource::PreviousHopData(HTLCPreviousHopData {
5406 short_channel_id: $htlc.prev_hop.short_channel_id,
5407 user_channel_id: $htlc.prev_hop.user_channel_id,
5408 channel_id: prev_channel_id,
5409 outpoint: prev_funding_outpoint,
5410 htlc_id: $htlc.prev_hop.htlc_id,
5411 incoming_packet_shared_secret: $htlc.prev_hop.incoming_packet_shared_secret,
5412 phantom_shared_secret,
5415 HTLCFailReason::reason(0x4000 | 15, htlc_msat_height_data),
5416 HTLCDestination::FailedPayment { payment_hash: $payment_hash },
5418 continue 'next_forwardable_htlc;
5421 let phantom_shared_secret = claimable_htlc.prev_hop.phantom_shared_secret;
5422 let mut receiver_node_id = self.our_network_pubkey;
5423 if phantom_shared_secret.is_some() {
5424 receiver_node_id = self.node_signer.get_node_id(Recipient::PhantomNode)
5425 .expect("Failed to get node_id for phantom node recipient");
5428 macro_rules! check_total_value {
5429 ($purpose: expr) => {{
5430 let mut payment_claimable_generated = false;
5431 let is_keysend = $purpose.is_keysend();
5432 let mut claimable_payments = self.claimable_payments.lock().unwrap();
5433 if claimable_payments.pending_claiming_payments.contains_key(&payment_hash) {
5434 fail_htlc!(claimable_htlc, payment_hash);
5436 let ref mut claimable_payment = claimable_payments.claimable_payments
5437 .entry(payment_hash)
5438 // Note that if we insert here we MUST NOT fail_htlc!()
5439 .or_insert_with(|| {
5440 committed_to_claimable = true;
5442 purpose: $purpose.clone(), htlcs: Vec::new(), onion_fields: None,
5445 if $purpose != claimable_payment.purpose {
5446 let log_keysend = |keysend| if keysend { "keysend" } else { "non-keysend" };
5447 log_trace!(self.logger, "Failing new {} HTLC with payment_hash {} as we already had an existing {} HTLC with the same payment hash", log_keysend(is_keysend), &payment_hash, log_keysend(!is_keysend));
5448 fail_htlc!(claimable_htlc, payment_hash);
5450 if !self.default_configuration.accept_mpp_keysend && is_keysend && !claimable_payment.htlcs.is_empty() {
5451 log_trace!(self.logger, "Failing new keysend HTLC with payment_hash {} as we already had an existing keysend HTLC with the same payment hash and our config states we don't accept MPP keysend", &payment_hash);
5452 fail_htlc!(claimable_htlc, payment_hash);
5454 if let Some(earlier_fields) = &mut claimable_payment.onion_fields {
5455 if earlier_fields.check_merge(&mut onion_fields).is_err() {
5456 fail_htlc!(claimable_htlc, payment_hash);
5459 claimable_payment.onion_fields = Some(onion_fields);
5461 let ref mut htlcs = &mut claimable_payment.htlcs;
5462 let mut total_value = claimable_htlc.sender_intended_value;
5463 let mut earliest_expiry = claimable_htlc.cltv_expiry;
5464 for htlc in htlcs.iter() {
5465 total_value += htlc.sender_intended_value;
5466 earliest_expiry = cmp::min(earliest_expiry, htlc.cltv_expiry);
5467 if htlc.total_msat != claimable_htlc.total_msat {
5468 log_trace!(self.logger, "Failing HTLCs with payment_hash {} as the HTLCs had inconsistent total values (eg {} and {})",
5469 &payment_hash, claimable_htlc.total_msat, htlc.total_msat);
5470 total_value = msgs::MAX_VALUE_MSAT;
5472 if total_value >= msgs::MAX_VALUE_MSAT { break; }
5474 // The condition determining whether an MPP is complete must
5475 // match exactly the condition used in `timer_tick_occurred`
5476 if total_value >= msgs::MAX_VALUE_MSAT {
5477 fail_htlc!(claimable_htlc, payment_hash);
5478 } else if total_value - claimable_htlc.sender_intended_value >= claimable_htlc.total_msat {
5479 log_trace!(self.logger, "Failing HTLC with payment_hash {} as payment is already claimable",
5481 fail_htlc!(claimable_htlc, payment_hash);
5482 } else if total_value >= claimable_htlc.total_msat {
5483 #[allow(unused_assignments)] {
5484 committed_to_claimable = true;
5486 htlcs.push(claimable_htlc);
5487 let amount_msat = htlcs.iter().map(|htlc| htlc.value).sum();
5488 htlcs.iter_mut().for_each(|htlc| htlc.total_value_received = Some(amount_msat));
5489 let counterparty_skimmed_fee_msat = htlcs.iter()
5490 .map(|htlc| htlc.counterparty_skimmed_fee_msat.unwrap_or(0)).sum();
5491 debug_assert!(total_value.saturating_sub(amount_msat) <=
5492 counterparty_skimmed_fee_msat);
5493 new_events.push_back((events::Event::PaymentClaimable {
5494 receiver_node_id: Some(receiver_node_id),
5498 counterparty_skimmed_fee_msat,
5499 via_channel_id: Some(prev_channel_id),
5500 via_user_channel_id: Some(prev_user_channel_id),
5501 claim_deadline: Some(earliest_expiry - HTLC_FAIL_BACK_BUFFER),
5502 onion_fields: claimable_payment.onion_fields.clone(),
5504 payment_claimable_generated = true;
5506 // Nothing to do - we haven't reached the total
5507 // payment value yet, wait until we receive more
5509 htlcs.push(claimable_htlc);
5510 #[allow(unused_assignments)] {
5511 committed_to_claimable = true;
5514 payment_claimable_generated
5518 // Check that the payment hash and secret are known. Note that we
5519 // MUST take care to handle the "unknown payment hash" and
5520 // "incorrect payment secret" cases here identically or we'd expose
5521 // that we are the ultimate recipient of the given payment hash.
5522 // Further, we must not expose whether we have any other HTLCs
5523 // associated with the same payment_hash pending or not.
5524 let mut payment_secrets = self.pending_inbound_payments.lock().unwrap();
5525 match payment_secrets.entry(payment_hash) {
5526 hash_map::Entry::Vacant(_) => {
5527 match claimable_htlc.onion_payload {
5528 OnionPayload::Invoice { .. } => {
5529 let payment_data = payment_data.unwrap();
5530 let (payment_preimage, min_final_cltv_expiry_delta) = match inbound_payment::verify(payment_hash, &payment_data, self.highest_seen_timestamp.load(Ordering::Acquire) as u64, &self.inbound_payment_key, &self.logger) {
5531 Ok(result) => result,
5533 log_trace!(self.logger, "Failing new HTLC with payment_hash {} as payment verification failed", &payment_hash);
5534 fail_htlc!(claimable_htlc, payment_hash);
5537 if let Some(min_final_cltv_expiry_delta) = min_final_cltv_expiry_delta {
5538 let expected_min_expiry_height = (self.current_best_block().height + min_final_cltv_expiry_delta as u32) as u64;
5539 if (cltv_expiry as u64) < expected_min_expiry_height {
5540 log_trace!(self.logger, "Failing new HTLC with payment_hash {} as its CLTV expiry was too soon (had {}, earliest expected {})",
5541 &payment_hash, cltv_expiry, expected_min_expiry_height);
5542 fail_htlc!(claimable_htlc, payment_hash);
5545 let purpose = events::PaymentPurpose::from_parts(
5547 payment_data.payment_secret,
5550 check_total_value!(purpose);
5552 OnionPayload::Spontaneous(preimage) => {
5553 let purpose = events::PaymentPurpose::SpontaneousPayment(preimage);
5554 check_total_value!(purpose);
5558 hash_map::Entry::Occupied(inbound_payment) => {
5559 if let OnionPayload::Spontaneous(_) = claimable_htlc.onion_payload {
5560 log_trace!(self.logger, "Failing new keysend HTLC with payment_hash {} because we already have an inbound payment with the same payment hash", &payment_hash);
5561 fail_htlc!(claimable_htlc, payment_hash);
5563 let payment_data = payment_data.unwrap();
5564 if inbound_payment.get().payment_secret != payment_data.payment_secret {
5565 log_trace!(self.logger, "Failing new HTLC with payment_hash {} as it didn't match our expected payment secret.", &payment_hash);
5566 fail_htlc!(claimable_htlc, payment_hash);
5567 } else if inbound_payment.get().min_value_msat.is_some() && payment_data.total_msat < inbound_payment.get().min_value_msat.unwrap() {
5568 log_trace!(self.logger, "Failing new HTLC with payment_hash {} as it didn't match our minimum value (had {}, needed {}).",
5569 &payment_hash, payment_data.total_msat, inbound_payment.get().min_value_msat.unwrap());
5570 fail_htlc!(claimable_htlc, payment_hash);
5572 let purpose = events::PaymentPurpose::from_parts(
5573 inbound_payment.get().payment_preimage,
5574 payment_data.payment_secret,
5577 let payment_claimable_generated = check_total_value!(purpose);
5578 if payment_claimable_generated {
5579 inbound_payment.remove_entry();
5585 HTLCForwardInfo::FailHTLC { .. } | HTLCForwardInfo::FailMalformedHTLC { .. } => {
5586 panic!("Got pending fail of our own HTLC");
5594 let best_block_height = self.best_block.read().unwrap().height;
5595 self.pending_outbound_payments.check_retry_payments(&self.router, || self.list_usable_channels(),
5596 || self.compute_inflight_htlcs(), &self.entropy_source, &self.node_signer, best_block_height,
5597 &self.pending_events, &self.logger, |args| self.send_payment_along_path(args));
5599 for (htlc_source, payment_hash, failure_reason, destination) in failed_forwards.drain(..) {
5600 self.fail_htlc_backwards_internal(&htlc_source, &payment_hash, &failure_reason, destination);
5602 self.forward_htlcs(&mut phantom_receives);
5604 // Freeing the holding cell here is relatively redundant - in practice we'll do it when we
5605 // next get a `get_and_clear_pending_msg_events` call, but some tests rely on it, and it's
5606 // nice to do the work now if we can rather than while we're trying to get messages in the
5608 self.check_free_holding_cells();
5610 if new_events.is_empty() { return }
5611 let mut events = self.pending_events.lock().unwrap();
5612 events.append(&mut new_events);
5615 /// Free the background events, generally called from [`PersistenceNotifierGuard`] constructors.
5617 /// Expects the caller to have a total_consistency_lock read lock.
5618 fn process_background_events(&self) -> NotifyOption {
5619 debug_assert_ne!(self.total_consistency_lock.held_by_thread(), LockHeldState::NotHeldByThread);
5621 self.background_events_processed_since_startup.store(true, Ordering::Release);
5623 let mut background_events = Vec::new();
5624 mem::swap(&mut *self.pending_background_events.lock().unwrap(), &mut background_events);
5625 if background_events.is_empty() {
5626 return NotifyOption::SkipPersistNoEvents;
5629 for event in background_events.drain(..) {
5631 BackgroundEvent::ClosedMonitorUpdateRegeneratedOnStartup((funding_txo, _channel_id, update)) => {
5632 // The channel has already been closed, so no use bothering to care about the
5633 // monitor updating completing.
5634 let _ = self.chain_monitor.update_channel(funding_txo, &update);
5636 BackgroundEvent::MonitorUpdateRegeneratedOnStartup { counterparty_node_id, funding_txo, channel_id, update } => {
5637 let mut updated_chan = false;
5639 let per_peer_state = self.per_peer_state.read().unwrap();
5640 if let Some(peer_state_mutex) = per_peer_state.get(&counterparty_node_id) {
5641 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
5642 let peer_state = &mut *peer_state_lock;
5643 match peer_state.channel_by_id.entry(channel_id) {
5644 hash_map::Entry::Occupied(mut chan_phase) => {
5645 if let ChannelPhase::Funded(chan) = chan_phase.get_mut() {
5646 updated_chan = true;
5647 handle_new_monitor_update!(self, funding_txo, update.clone(),
5648 peer_state_lock, peer_state, per_peer_state, chan);
5650 debug_assert!(false, "We shouldn't have an update for a non-funded channel");
5653 hash_map::Entry::Vacant(_) => {},
5658 // TODO: Track this as in-flight even though the channel is closed.
5659 let _ = self.chain_monitor.update_channel(funding_txo, &update);
5662 BackgroundEvent::MonitorUpdatesComplete { counterparty_node_id, channel_id } => {
5663 let per_peer_state = self.per_peer_state.read().unwrap();
5664 if let Some(peer_state_mutex) = per_peer_state.get(&counterparty_node_id) {
5665 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
5666 let peer_state = &mut *peer_state_lock;
5667 if let Some(ChannelPhase::Funded(chan)) = peer_state.channel_by_id.get_mut(&channel_id) {
5668 handle_monitor_update_completion!(self, peer_state_lock, peer_state, per_peer_state, chan);
5670 let update_actions = peer_state.monitor_update_blocked_actions
5671 .remove(&channel_id).unwrap_or(Vec::new());
5672 mem::drop(peer_state_lock);
5673 mem::drop(per_peer_state);
5674 self.handle_monitor_update_completion_actions(update_actions);
5680 NotifyOption::DoPersist
5683 #[cfg(any(test, feature = "_test_utils"))]
5684 /// Process background events, for functional testing
5685 pub fn test_process_background_events(&self) {
5686 let _lck = self.total_consistency_lock.read().unwrap();
5687 let _ = self.process_background_events();
5690 fn update_channel_fee(&self, chan_id: &ChannelId, chan: &mut Channel<SP>, new_feerate: u32) -> NotifyOption {
5691 if !chan.context.is_outbound() { return NotifyOption::SkipPersistNoEvents; }
5693 let logger = WithChannelContext::from(&self.logger, &chan.context);
5695 // If the feerate has decreased by less than half, don't bother
5696 if new_feerate <= chan.context.get_feerate_sat_per_1000_weight() && new_feerate * 2 > chan.context.get_feerate_sat_per_1000_weight() {
5697 return NotifyOption::SkipPersistNoEvents;
5699 if !chan.context.is_live() {
5700 log_trace!(logger, "Channel {} does not qualify for a feerate change from {} to {} as it cannot currently be updated (probably the peer is disconnected).",
5701 chan_id, chan.context.get_feerate_sat_per_1000_weight(), new_feerate);
5702 return NotifyOption::SkipPersistNoEvents;
5704 log_trace!(logger, "Channel {} qualifies for a feerate change from {} to {}.",
5705 &chan_id, chan.context.get_feerate_sat_per_1000_weight(), new_feerate);
5707 chan.queue_update_fee(new_feerate, &self.fee_estimator, &&logger);
5708 NotifyOption::DoPersist
5712 /// In chanmon_consistency we want to sometimes do the channel fee updates done in
5713 /// timer_tick_occurred, but we can't generate the disabled channel updates as it considers
5714 /// these a fuzz failure (as they usually indicate a channel force-close, which is exactly what
5715 /// it wants to detect). Thus, we have a variant exposed here for its benefit.
5716 pub fn maybe_update_chan_fees(&self) {
5717 PersistenceNotifierGuard::optionally_notify(self, || {
5718 let mut should_persist = NotifyOption::SkipPersistNoEvents;
5720 let non_anchor_feerate = self.fee_estimator.bounded_sat_per_1000_weight(ConfirmationTarget::NonAnchorChannelFee);
5721 let anchor_feerate = self.fee_estimator.bounded_sat_per_1000_weight(ConfirmationTarget::AnchorChannelFee);
5723 let per_peer_state = self.per_peer_state.read().unwrap();
5724 for (_cp_id, peer_state_mutex) in per_peer_state.iter() {
5725 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
5726 let peer_state = &mut *peer_state_lock;
5727 for (chan_id, chan) in peer_state.channel_by_id.iter_mut().filter_map(
5728 |(chan_id, phase)| if let ChannelPhase::Funded(chan) = phase { Some((chan_id, chan)) } else { None }
5730 let new_feerate = if chan.context.get_channel_type().supports_anchors_zero_fee_htlc_tx() {
5735 let chan_needs_persist = self.update_channel_fee(chan_id, chan, new_feerate);
5736 if chan_needs_persist == NotifyOption::DoPersist { should_persist = NotifyOption::DoPersist; }
5744 /// Performs actions which should happen on startup and roughly once per minute thereafter.
5746 /// This currently includes:
5747 /// * Increasing or decreasing the on-chain feerate estimates for our outbound channels,
5748 /// * Broadcasting [`ChannelUpdate`] messages if we've been disconnected from our peer for more
5749 /// than a minute, informing the network that they should no longer attempt to route over
5751 /// * Expiring a channel's previous [`ChannelConfig`] if necessary to only allow forwarding HTLCs
5752 /// with the current [`ChannelConfig`].
5753 /// * Removing peers which have disconnected but and no longer have any channels.
5754 /// * Force-closing and removing channels which have not completed establishment in a timely manner.
5755 /// * Forgetting about stale outbound payments, either those that have already been fulfilled
5756 /// or those awaiting an invoice that hasn't been delivered in the necessary amount of time.
5757 /// The latter is determined using the system clock in `std` and the highest seen block time
5758 /// minus two hours in `no-std`.
5760 /// Note that this may cause reentrancy through [`chain::Watch::update_channel`] calls or feerate
5761 /// estimate fetches.
5763 /// [`ChannelUpdate`]: msgs::ChannelUpdate
5764 /// [`ChannelConfig`]: crate::util::config::ChannelConfig
5765 pub fn timer_tick_occurred(&self) {
5766 PersistenceNotifierGuard::optionally_notify(self, || {
5767 let mut should_persist = NotifyOption::SkipPersistNoEvents;
5769 let non_anchor_feerate = self.fee_estimator.bounded_sat_per_1000_weight(ConfirmationTarget::NonAnchorChannelFee);
5770 let anchor_feerate = self.fee_estimator.bounded_sat_per_1000_weight(ConfirmationTarget::AnchorChannelFee);
5772 let mut handle_errors: Vec<(Result<(), _>, _)> = Vec::new();
5773 let mut timed_out_mpp_htlcs = Vec::new();
5774 let mut pending_peers_awaiting_removal = Vec::new();
5775 let mut shutdown_channels = Vec::new();
5777 let mut process_unfunded_channel_tick = |
5778 chan_id: &ChannelId,
5779 context: &mut ChannelContext<SP>,
5780 unfunded_context: &mut UnfundedChannelContext,
5781 pending_msg_events: &mut Vec<MessageSendEvent>,
5782 counterparty_node_id: PublicKey,
5784 context.maybe_expire_prev_config();
5785 if unfunded_context.should_expire_unfunded_channel() {
5786 let logger = WithChannelContext::from(&self.logger, context);
5788 "Force-closing pending channel with ID {} for not establishing in a timely manner", chan_id);
5789 update_maps_on_chan_removal!(self, &context);
5790 shutdown_channels.push(context.force_shutdown(false, ClosureReason::HolderForceClosed));
5791 pending_msg_events.push(MessageSendEvent::HandleError {
5792 node_id: counterparty_node_id,
5793 action: msgs::ErrorAction::SendErrorMessage {
5794 msg: msgs::ErrorMessage {
5795 channel_id: *chan_id,
5796 data: "Force-closing pending channel due to timeout awaiting establishment handshake".to_owned(),
5807 let per_peer_state = self.per_peer_state.read().unwrap();
5808 for (counterparty_node_id, peer_state_mutex) in per_peer_state.iter() {
5809 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
5810 let peer_state = &mut *peer_state_lock;
5811 let pending_msg_events = &mut peer_state.pending_msg_events;
5812 let counterparty_node_id = *counterparty_node_id;
5813 peer_state.channel_by_id.retain(|chan_id, phase| {
5815 ChannelPhase::Funded(chan) => {
5816 let new_feerate = if chan.context.get_channel_type().supports_anchors_zero_fee_htlc_tx() {
5821 let chan_needs_persist = self.update_channel_fee(chan_id, chan, new_feerate);
5822 if chan_needs_persist == NotifyOption::DoPersist { should_persist = NotifyOption::DoPersist; }
5824 if let Err(e) = chan.timer_check_closing_negotiation_progress() {
5825 let (needs_close, err) = convert_chan_phase_err!(self, e, chan, chan_id, FUNDED_CHANNEL);
5826 handle_errors.push((Err(err), counterparty_node_id));
5827 if needs_close { return false; }
5830 match chan.channel_update_status() {
5831 ChannelUpdateStatus::Enabled if !chan.context.is_live() => chan.set_channel_update_status(ChannelUpdateStatus::DisabledStaged(0)),
5832 ChannelUpdateStatus::Disabled if chan.context.is_live() => chan.set_channel_update_status(ChannelUpdateStatus::EnabledStaged(0)),
5833 ChannelUpdateStatus::DisabledStaged(_) if chan.context.is_live()
5834 => chan.set_channel_update_status(ChannelUpdateStatus::Enabled),
5835 ChannelUpdateStatus::EnabledStaged(_) if !chan.context.is_live()
5836 => chan.set_channel_update_status(ChannelUpdateStatus::Disabled),
5837 ChannelUpdateStatus::DisabledStaged(mut n) if !chan.context.is_live() => {
5839 if n >= DISABLE_GOSSIP_TICKS {
5840 chan.set_channel_update_status(ChannelUpdateStatus::Disabled);
5841 if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
5842 let mut pending_broadcast_messages = self.pending_broadcast_messages.lock().unwrap();
5843 pending_broadcast_messages.push(events::MessageSendEvent::BroadcastChannelUpdate {
5847 should_persist = NotifyOption::DoPersist;
5849 chan.set_channel_update_status(ChannelUpdateStatus::DisabledStaged(n));
5852 ChannelUpdateStatus::EnabledStaged(mut n) if chan.context.is_live() => {
5854 if n >= ENABLE_GOSSIP_TICKS {
5855 chan.set_channel_update_status(ChannelUpdateStatus::Enabled);
5856 if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
5857 let mut pending_broadcast_messages = self.pending_broadcast_messages.lock().unwrap();
5858 pending_broadcast_messages.push(events::MessageSendEvent::BroadcastChannelUpdate {
5862 should_persist = NotifyOption::DoPersist;
5864 chan.set_channel_update_status(ChannelUpdateStatus::EnabledStaged(n));
5870 chan.context.maybe_expire_prev_config();
5872 if chan.should_disconnect_peer_awaiting_response() {
5873 let logger = WithChannelContext::from(&self.logger, &chan.context);
5874 log_debug!(logger, "Disconnecting peer {} due to not making any progress on channel {}",
5875 counterparty_node_id, chan_id);
5876 pending_msg_events.push(MessageSendEvent::HandleError {
5877 node_id: counterparty_node_id,
5878 action: msgs::ErrorAction::DisconnectPeerWithWarning {
5879 msg: msgs::WarningMessage {
5880 channel_id: *chan_id,
5881 data: "Disconnecting due to timeout awaiting response".to_owned(),
5889 ChannelPhase::UnfundedInboundV1(chan) => {
5890 process_unfunded_channel_tick(chan_id, &mut chan.context, &mut chan.unfunded_context,
5891 pending_msg_events, counterparty_node_id)
5893 ChannelPhase::UnfundedOutboundV1(chan) => {
5894 process_unfunded_channel_tick(chan_id, &mut chan.context, &mut chan.unfunded_context,
5895 pending_msg_events, counterparty_node_id)
5897 #[cfg(any(dual_funding, splicing))]
5898 ChannelPhase::UnfundedInboundV2(chan) => {
5899 process_unfunded_channel_tick(chan_id, &mut chan.context, &mut chan.unfunded_context,
5900 pending_msg_events, counterparty_node_id)
5902 #[cfg(any(dual_funding, splicing))]
5903 ChannelPhase::UnfundedOutboundV2(chan) => {
5904 process_unfunded_channel_tick(chan_id, &mut chan.context, &mut chan.unfunded_context,
5905 pending_msg_events, counterparty_node_id)
5910 for (chan_id, req) in peer_state.inbound_channel_request_by_id.iter_mut() {
5911 if { req.ticks_remaining -= 1 ; req.ticks_remaining } <= 0 {
5912 let logger = WithContext::from(&self.logger, Some(counterparty_node_id), Some(*chan_id));
5913 log_error!(logger, "Force-closing unaccepted inbound channel {} for not accepting in a timely manner", &chan_id);
5914 peer_state.pending_msg_events.push(
5915 events::MessageSendEvent::HandleError {
5916 node_id: counterparty_node_id,
5917 action: msgs::ErrorAction::SendErrorMessage {
5918 msg: msgs::ErrorMessage { channel_id: chan_id.clone(), data: "Channel force-closed".to_owned() }
5924 peer_state.inbound_channel_request_by_id.retain(|_, req| req.ticks_remaining > 0);
5926 if peer_state.ok_to_remove(true) {
5927 pending_peers_awaiting_removal.push(counterparty_node_id);
5932 // When a peer disconnects but still has channels, the peer's `peer_state` entry in the
5933 // `per_peer_state` is not removed by the `peer_disconnected` function. If the channels
5934 // of to that peer is later closed while still being disconnected (i.e. force closed),
5935 // we therefore need to remove the peer from `peer_state` separately.
5936 // To avoid having to take the `per_peer_state` `write` lock once the channels are
5937 // closed, we instead remove such peers awaiting removal here on a timer, to limit the
5938 // negative effects on parallelism as much as possible.
5939 if pending_peers_awaiting_removal.len() > 0 {
5940 let mut per_peer_state = self.per_peer_state.write().unwrap();
5941 for counterparty_node_id in pending_peers_awaiting_removal {
5942 match per_peer_state.entry(counterparty_node_id) {
5943 hash_map::Entry::Occupied(entry) => {
5944 // Remove the entry if the peer is still disconnected and we still
5945 // have no channels to the peer.
5946 let remove_entry = {
5947 let peer_state = entry.get().lock().unwrap();
5948 peer_state.ok_to_remove(true)
5951 entry.remove_entry();
5954 hash_map::Entry::Vacant(_) => { /* The PeerState has already been removed */ }
5959 self.claimable_payments.lock().unwrap().claimable_payments.retain(|payment_hash, payment| {
5960 if payment.htlcs.is_empty() {
5961 // This should be unreachable
5962 debug_assert!(false);
5965 if let OnionPayload::Invoice { .. } = payment.htlcs[0].onion_payload {
5966 // Check if we've received all the parts we need for an MPP (the value of the parts adds to total_msat).
5967 // In this case we're not going to handle any timeouts of the parts here.
5968 // This condition determining whether the MPP is complete here must match
5969 // exactly the condition used in `process_pending_htlc_forwards`.
5970 if payment.htlcs[0].total_msat <= payment.htlcs.iter()
5971 .fold(0, |total, htlc| total + htlc.sender_intended_value)
5974 } else if payment.htlcs.iter_mut().any(|htlc| {
5975 htlc.timer_ticks += 1;
5976 return htlc.timer_ticks >= MPP_TIMEOUT_TICKS
5978 timed_out_mpp_htlcs.extend(payment.htlcs.drain(..)
5979 .map(|htlc: ClaimableHTLC| (htlc.prev_hop, *payment_hash)));
5986 for htlc_source in timed_out_mpp_htlcs.drain(..) {
5987 let source = HTLCSource::PreviousHopData(htlc_source.0.clone());
5988 let reason = HTLCFailReason::from_failure_code(23);
5989 let receiver = HTLCDestination::FailedPayment { payment_hash: htlc_source.1 };
5990 self.fail_htlc_backwards_internal(&source, &htlc_source.1, &reason, receiver);
5993 for (err, counterparty_node_id) in handle_errors.drain(..) {
5994 let _ = handle_error!(self, err, counterparty_node_id);
5997 for shutdown_res in shutdown_channels {
5998 self.finish_close_channel(shutdown_res);
6001 #[cfg(feature = "std")]
6002 let duration_since_epoch = std::time::SystemTime::now()
6003 .duration_since(std::time::SystemTime::UNIX_EPOCH)
6004 .expect("SystemTime::now() should come after SystemTime::UNIX_EPOCH");
6005 #[cfg(not(feature = "std"))]
6006 let duration_since_epoch = Duration::from_secs(
6007 self.highest_seen_timestamp.load(Ordering::Acquire).saturating_sub(7200) as u64
6010 self.pending_outbound_payments.remove_stale_payments(
6011 duration_since_epoch, &self.pending_events
6014 // Technically we don't need to do this here, but if we have holding cell entries in a
6015 // channel that need freeing, it's better to do that here and block a background task
6016 // than block the message queueing pipeline.
6017 if self.check_free_holding_cells() {
6018 should_persist = NotifyOption::DoPersist;
6025 /// Indicates that the preimage for payment_hash is unknown or the received amount is incorrect
6026 /// after a PaymentClaimable event, failing the HTLC back to its origin and freeing resources
6027 /// along the path (including in our own channel on which we received it).
6029 /// Note that in some cases around unclean shutdown, it is possible the payment may have
6030 /// already been claimed by you via [`ChannelManager::claim_funds`] prior to you seeing (a
6031 /// second copy of) the [`events::Event::PaymentClaimable`] event. Alternatively, the payment
6032 /// may have already been failed automatically by LDK if it was nearing its expiration time.
6034 /// While LDK will never claim a payment automatically on your behalf (i.e. without you calling
6035 /// [`ChannelManager::claim_funds`]), you should still monitor for
6036 /// [`events::Event::PaymentClaimed`] events even for payments you intend to fail, especially on
6037 /// startup during which time claims that were in-progress at shutdown may be replayed.
6038 pub fn fail_htlc_backwards(&self, payment_hash: &PaymentHash) {
6039 self.fail_htlc_backwards_with_reason(payment_hash, FailureCode::IncorrectOrUnknownPaymentDetails);
6042 /// This is a variant of [`ChannelManager::fail_htlc_backwards`] that allows you to specify the
6043 /// reason for the failure.
6045 /// See [`FailureCode`] for valid failure codes.
6046 pub fn fail_htlc_backwards_with_reason(&self, payment_hash: &PaymentHash, failure_code: FailureCode) {
6047 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
6049 let removed_source = self.claimable_payments.lock().unwrap().claimable_payments.remove(payment_hash);
6050 if let Some(payment) = removed_source {
6051 for htlc in payment.htlcs {
6052 let reason = self.get_htlc_fail_reason_from_failure_code(failure_code, &htlc);
6053 let source = HTLCSource::PreviousHopData(htlc.prev_hop);
6054 let receiver = HTLCDestination::FailedPayment { payment_hash: *payment_hash };
6055 self.fail_htlc_backwards_internal(&source, &payment_hash, &reason, receiver);
6060 /// Gets error data to form an [`HTLCFailReason`] given a [`FailureCode`] and [`ClaimableHTLC`].
6061 fn get_htlc_fail_reason_from_failure_code(&self, failure_code: FailureCode, htlc: &ClaimableHTLC) -> HTLCFailReason {
6062 match failure_code {
6063 FailureCode::TemporaryNodeFailure => HTLCFailReason::from_failure_code(failure_code.into()),
6064 FailureCode::RequiredNodeFeatureMissing => HTLCFailReason::from_failure_code(failure_code.into()),
6065 FailureCode::IncorrectOrUnknownPaymentDetails => {
6066 let mut htlc_msat_height_data = htlc.value.to_be_bytes().to_vec();
6067 htlc_msat_height_data.extend_from_slice(&self.best_block.read().unwrap().height.to_be_bytes());
6068 HTLCFailReason::reason(failure_code.into(), htlc_msat_height_data)
6070 FailureCode::InvalidOnionPayload(data) => {
6071 let fail_data = match data {
6072 Some((typ, offset)) => [BigSize(typ).encode(), offset.encode()].concat(),
6075 HTLCFailReason::reason(failure_code.into(), fail_data)
6080 /// Gets an HTLC onion failure code and error data for an `UPDATE` error, given the error code
6081 /// that we want to return and a channel.
6083 /// This is for failures on the channel on which the HTLC was *received*, not failures
6085 fn get_htlc_inbound_temp_fail_err_and_data(&self, desired_err_code: u16, chan: &Channel<SP>) -> (u16, Vec<u8>) {
6086 // We can't be sure what SCID was used when relaying inbound towards us, so we have to
6087 // guess somewhat. If its a public channel, we figure best to just use the real SCID (as
6088 // we're not leaking that we have a channel with the counterparty), otherwise we try to use
6089 // an inbound SCID alias before the real SCID.
6090 let scid_pref = if chan.context.should_announce() {
6091 chan.context.get_short_channel_id().or(chan.context.latest_inbound_scid_alias())
6093 chan.context.latest_inbound_scid_alias().or(chan.context.get_short_channel_id())
6095 if let Some(scid) = scid_pref {
6096 self.get_htlc_temp_fail_err_and_data(desired_err_code, scid, chan)
6098 (0x4000|10, Vec::new())
6103 /// Gets an HTLC onion failure code and error data for an `UPDATE` error, given the error code
6104 /// that we want to return and a channel.
6105 fn get_htlc_temp_fail_err_and_data(&self, desired_err_code: u16, scid: u64, chan: &Channel<SP>) -> (u16, Vec<u8>) {
6106 debug_assert_eq!(desired_err_code & 0x1000, 0x1000);
6107 if let Ok(upd) = self.get_channel_update_for_onion(scid, chan) {
6108 let mut enc = VecWriter(Vec::with_capacity(upd.serialized_length() + 6));
6109 if desired_err_code == 0x1000 | 20 {
6110 // No flags for `disabled_flags` are currently defined so they're always two zero bytes.
6111 // See https://github.com/lightning/bolts/blob/341ec84/04-onion-routing.md?plain=1#L1008
6112 0u16.write(&mut enc).expect("Writes cannot fail");
6114 (upd.serialized_length() as u16 + 2).write(&mut enc).expect("Writes cannot fail");
6115 msgs::ChannelUpdate::TYPE.write(&mut enc).expect("Writes cannot fail");
6116 upd.write(&mut enc).expect("Writes cannot fail");
6117 (desired_err_code, enc.0)
6119 // If we fail to get a unicast channel_update, it implies we don't yet have an SCID,
6120 // which means we really shouldn't have gotten a payment to be forwarded over this
6121 // channel yet, or if we did it's from a route hint. Either way, returning an error of
6122 // PERM|no_such_channel should be fine.
6123 (0x4000|10, Vec::new())
6127 // Fail a list of HTLCs that were just freed from the holding cell. The HTLCs need to be
6128 // failed backwards or, if they were one of our outgoing HTLCs, then their failure needs to
6129 // be surfaced to the user.
6130 fn fail_holding_cell_htlcs(
6131 &self, mut htlcs_to_fail: Vec<(HTLCSource, PaymentHash)>, channel_id: ChannelId,
6132 counterparty_node_id: &PublicKey
6134 let (failure_code, onion_failure_data) = {
6135 let per_peer_state = self.per_peer_state.read().unwrap();
6136 if let Some(peer_state_mutex) = per_peer_state.get(counterparty_node_id) {
6137 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
6138 let peer_state = &mut *peer_state_lock;
6139 match peer_state.channel_by_id.entry(channel_id) {
6140 hash_map::Entry::Occupied(chan_phase_entry) => {
6141 if let ChannelPhase::Funded(chan) = chan_phase_entry.get() {
6142 self.get_htlc_inbound_temp_fail_err_and_data(0x1000|7, &chan)
6144 // We shouldn't be trying to fail holding cell HTLCs on an unfunded channel.
6145 debug_assert!(false);
6146 (0x4000|10, Vec::new())
6149 hash_map::Entry::Vacant(_) => (0x4000|10, Vec::new())
6151 } else { (0x4000|10, Vec::new()) }
6154 for (htlc_src, payment_hash) in htlcs_to_fail.drain(..) {
6155 let reason = HTLCFailReason::reason(failure_code, onion_failure_data.clone());
6156 let receiver = HTLCDestination::NextHopChannel { node_id: Some(counterparty_node_id.clone()), channel_id };
6157 self.fail_htlc_backwards_internal(&htlc_src, &payment_hash, &reason, receiver);
6161 fn fail_htlc_backwards_internal(&self, source: &HTLCSource, payment_hash: &PaymentHash, onion_error: &HTLCFailReason, destination: HTLCDestination) {
6162 let push_forward_event = self.fail_htlc_backwards_internal_without_forward_event(source, payment_hash, onion_error, destination);
6163 if push_forward_event { self.push_pending_forwards_ev(); }
6166 /// Fails an HTLC backwards to the sender of it to us.
6167 /// Note that we do not assume that channels corresponding to failed HTLCs are still available.
6168 fn fail_htlc_backwards_internal_without_forward_event(&self, source: &HTLCSource, payment_hash: &PaymentHash, onion_error: &HTLCFailReason, destination: HTLCDestination) -> bool {
6169 // Ensure that no peer state channel storage lock is held when calling this function.
6170 // This ensures that future code doesn't introduce a lock-order requirement for
6171 // `forward_htlcs` to be locked after the `per_peer_state` peer locks, which calling
6172 // this function with any `per_peer_state` peer lock acquired would.
6173 #[cfg(debug_assertions)]
6174 for (_, peer) in self.per_peer_state.read().unwrap().iter() {
6175 debug_assert_ne!(peer.held_by_thread(), LockHeldState::HeldByThread);
6178 //TODO: There is a timing attack here where if a node fails an HTLC back to us they can
6179 //identify whether we sent it or not based on the (I presume) very different runtime
6180 //between the branches here. We should make this async and move it into the forward HTLCs
6183 // Note that we MUST NOT end up calling methods on self.chain_monitor here - we're called
6184 // from block_connected which may run during initialization prior to the chain_monitor
6185 // being fully configured. See the docs for `ChannelManagerReadArgs` for more.
6186 let mut push_forward_event;
6188 HTLCSource::OutboundRoute { ref path, ref session_priv, ref payment_id, .. } => {
6189 push_forward_event = self.pending_outbound_payments.fail_htlc(source, payment_hash, onion_error, path,
6190 session_priv, payment_id, self.probing_cookie_secret, &self.secp_ctx,
6191 &self.pending_events, &self.logger);
6193 HTLCSource::PreviousHopData(HTLCPreviousHopData {
6194 ref short_channel_id, ref htlc_id, ref incoming_packet_shared_secret,
6195 ref phantom_shared_secret, outpoint: _, ref blinded_failure, ref channel_id, ..
6198 WithContext::from(&self.logger, None, Some(*channel_id)),
6199 "Failing {}HTLC with payment_hash {} backwards from us: {:?}",
6200 if blinded_failure.is_some() { "blinded " } else { "" }, &payment_hash, onion_error
6202 let failure = match blinded_failure {
6203 Some(BlindedFailure::FromIntroductionNode) => {
6204 let blinded_onion_error = HTLCFailReason::reason(INVALID_ONION_BLINDING, vec![0; 32]);
6205 let err_packet = blinded_onion_error.get_encrypted_failure_packet(
6206 incoming_packet_shared_secret, phantom_shared_secret
6208 HTLCForwardInfo::FailHTLC { htlc_id: *htlc_id, err_packet }
6210 Some(BlindedFailure::FromBlindedNode) => {
6211 HTLCForwardInfo::FailMalformedHTLC {
6213 failure_code: INVALID_ONION_BLINDING,
6214 sha256_of_onion: [0; 32]
6218 let err_packet = onion_error.get_encrypted_failure_packet(
6219 incoming_packet_shared_secret, phantom_shared_secret
6221 HTLCForwardInfo::FailHTLC { htlc_id: *htlc_id, err_packet }
6225 push_forward_event = self.decode_update_add_htlcs.lock().unwrap().is_empty();
6226 let mut forward_htlcs = self.forward_htlcs.lock().unwrap();
6227 push_forward_event &= forward_htlcs.is_empty();
6228 match forward_htlcs.entry(*short_channel_id) {
6229 hash_map::Entry::Occupied(mut entry) => {
6230 entry.get_mut().push(failure);
6232 hash_map::Entry::Vacant(entry) => {
6233 entry.insert(vec!(failure));
6236 mem::drop(forward_htlcs);
6237 let mut pending_events = self.pending_events.lock().unwrap();
6238 pending_events.push_back((events::Event::HTLCHandlingFailed {
6239 prev_channel_id: *channel_id,
6240 failed_next_destination: destination,
6247 /// Provides a payment preimage in response to [`Event::PaymentClaimable`], generating any
6248 /// [`MessageSendEvent`]s needed to claim the payment.
6250 /// This method is guaranteed to ensure the payment has been claimed but only if the current
6251 /// height is strictly below [`Event::PaymentClaimable::claim_deadline`]. To avoid race
6252 /// conditions, you should wait for an [`Event::PaymentClaimed`] before considering the payment
6253 /// successful. It will generally be available in the next [`process_pending_events`] call.
6255 /// Note that if you did not set an `amount_msat` when calling [`create_inbound_payment`] or
6256 /// [`create_inbound_payment_for_hash`] you must check that the amount in the `PaymentClaimable`
6257 /// event matches your expectation. If you fail to do so and call this method, you may provide
6258 /// the sender "proof-of-payment" when they did not fulfill the full expected payment.
6260 /// This function will fail the payment if it has custom TLVs with even type numbers, as we
6261 /// will assume they are unknown. If you intend to accept even custom TLVs, you should use
6262 /// [`claim_funds_with_known_custom_tlvs`].
6264 /// [`Event::PaymentClaimable`]: crate::events::Event::PaymentClaimable
6265 /// [`Event::PaymentClaimable::claim_deadline`]: crate::events::Event::PaymentClaimable::claim_deadline
6266 /// [`Event::PaymentClaimed`]: crate::events::Event::PaymentClaimed
6267 /// [`process_pending_events`]: EventsProvider::process_pending_events
6268 /// [`create_inbound_payment`]: Self::create_inbound_payment
6269 /// [`create_inbound_payment_for_hash`]: Self::create_inbound_payment_for_hash
6270 /// [`claim_funds_with_known_custom_tlvs`]: Self::claim_funds_with_known_custom_tlvs
6271 pub fn claim_funds(&self, payment_preimage: PaymentPreimage) {
6272 self.claim_payment_internal(payment_preimage, false);
6275 /// This is a variant of [`claim_funds`] that allows accepting a payment with custom TLVs with
6276 /// even type numbers.
6280 /// You MUST check you've understood all even TLVs before using this to
6281 /// claim, otherwise you may unintentionally agree to some protocol you do not understand.
6283 /// [`claim_funds`]: Self::claim_funds
6284 pub fn claim_funds_with_known_custom_tlvs(&self, payment_preimage: PaymentPreimage) {
6285 self.claim_payment_internal(payment_preimage, true);
6288 fn claim_payment_internal(&self, payment_preimage: PaymentPreimage, custom_tlvs_known: bool) {
6289 let payment_hash = PaymentHash(Sha256::hash(&payment_preimage.0).to_byte_array());
6291 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
6294 let mut claimable_payments = self.claimable_payments.lock().unwrap();
6295 if let Some(payment) = claimable_payments.claimable_payments.remove(&payment_hash) {
6296 let mut receiver_node_id = self.our_network_pubkey;
6297 for htlc in payment.htlcs.iter() {
6298 if htlc.prev_hop.phantom_shared_secret.is_some() {
6299 let phantom_pubkey = self.node_signer.get_node_id(Recipient::PhantomNode)
6300 .expect("Failed to get node_id for phantom node recipient");
6301 receiver_node_id = phantom_pubkey;
6306 let htlcs = payment.htlcs.iter().map(events::ClaimedHTLC::from).collect();
6307 let sender_intended_value = payment.htlcs.first().map(|htlc| htlc.total_msat);
6308 let dup_purpose = claimable_payments.pending_claiming_payments.insert(payment_hash,
6309 ClaimingPayment { amount_msat: payment.htlcs.iter().map(|source| source.value).sum(),
6310 payment_purpose: payment.purpose, receiver_node_id, htlcs, sender_intended_value
6312 if dup_purpose.is_some() {
6313 debug_assert!(false, "Shouldn't get a duplicate pending claim event ever");
6314 log_error!(self.logger, "Got a duplicate pending claimable event on payment hash {}! Please report this bug",
6318 if let Some(RecipientOnionFields { ref custom_tlvs, .. }) = payment.onion_fields {
6319 if !custom_tlvs_known && custom_tlvs.iter().any(|(typ, _)| typ % 2 == 0) {
6320 log_info!(self.logger, "Rejecting payment with payment hash {} as we cannot accept payment with unknown even TLVs: {}",
6321 &payment_hash, log_iter!(custom_tlvs.iter().map(|(typ, _)| typ).filter(|typ| *typ % 2 == 0)));
6322 claimable_payments.pending_claiming_payments.remove(&payment_hash);
6323 mem::drop(claimable_payments);
6324 for htlc in payment.htlcs {
6325 let reason = self.get_htlc_fail_reason_from_failure_code(FailureCode::InvalidOnionPayload(None), &htlc);
6326 let source = HTLCSource::PreviousHopData(htlc.prev_hop);
6327 let receiver = HTLCDestination::FailedPayment { payment_hash };
6328 self.fail_htlc_backwards_internal(&source, &payment_hash, &reason, receiver);
6337 debug_assert!(!sources.is_empty());
6339 // Just in case one HTLC has been failed between when we generated the `PaymentClaimable`
6340 // and when we got here we need to check that the amount we're about to claim matches the
6341 // amount we told the user in the last `PaymentClaimable`. We also do a sanity-check that
6342 // the MPP parts all have the same `total_msat`.
6343 let mut claimable_amt_msat = 0;
6344 let mut prev_total_msat = None;
6345 let mut expected_amt_msat = None;
6346 let mut valid_mpp = true;
6347 let mut errs = Vec::new();
6348 let per_peer_state = self.per_peer_state.read().unwrap();
6349 for htlc in sources.iter() {
6350 if prev_total_msat.is_some() && prev_total_msat != Some(htlc.total_msat) {
6351 log_error!(self.logger, "Somehow ended up with an MPP payment with different expected total amounts - this should not be reachable!");
6352 debug_assert!(false);
6356 prev_total_msat = Some(htlc.total_msat);
6358 if expected_amt_msat.is_some() && expected_amt_msat != htlc.total_value_received {
6359 log_error!(self.logger, "Somehow ended up with an MPP payment with different received total amounts - this should not be reachable!");
6360 debug_assert!(false);
6364 expected_amt_msat = htlc.total_value_received;
6365 claimable_amt_msat += htlc.value;
6367 mem::drop(per_peer_state);
6368 if sources.is_empty() || expected_amt_msat.is_none() {
6369 self.claimable_payments.lock().unwrap().pending_claiming_payments.remove(&payment_hash);
6370 log_info!(self.logger, "Attempted to claim an incomplete payment which no longer had any available HTLCs!");
6373 if claimable_amt_msat != expected_amt_msat.unwrap() {
6374 self.claimable_payments.lock().unwrap().pending_claiming_payments.remove(&payment_hash);
6375 log_info!(self.logger, "Attempted to claim an incomplete payment, expected {} msat, had {} available to claim.",
6376 expected_amt_msat.unwrap(), claimable_amt_msat);
6380 for htlc in sources.drain(..) {
6381 let prev_hop_chan_id = htlc.prev_hop.channel_id;
6382 if let Err((pk, err)) = self.claim_funds_from_hop(
6383 htlc.prev_hop, payment_preimage,
6384 |_, definitely_duplicate| {
6385 debug_assert!(!definitely_duplicate, "We shouldn't claim duplicatively from a payment");
6386 Some(MonitorUpdateCompletionAction::PaymentClaimed { payment_hash })
6389 if let msgs::ErrorAction::IgnoreError = err.err.action {
6390 // We got a temporary failure updating monitor, but will claim the
6391 // HTLC when the monitor updating is restored (or on chain).
6392 let logger = WithContext::from(&self.logger, None, Some(prev_hop_chan_id));
6393 log_error!(logger, "Temporary failure claiming HTLC, treating as success: {}", err.err.err);
6394 } else { errs.push((pk, err)); }
6399 for htlc in sources.drain(..) {
6400 let mut htlc_msat_height_data = htlc.value.to_be_bytes().to_vec();
6401 htlc_msat_height_data.extend_from_slice(&self.best_block.read().unwrap().height.to_be_bytes());
6402 let source = HTLCSource::PreviousHopData(htlc.prev_hop);
6403 let reason = HTLCFailReason::reason(0x4000 | 15, htlc_msat_height_data);
6404 let receiver = HTLCDestination::FailedPayment { payment_hash };
6405 self.fail_htlc_backwards_internal(&source, &payment_hash, &reason, receiver);
6407 self.claimable_payments.lock().unwrap().pending_claiming_payments.remove(&payment_hash);
6410 // Now we can handle any errors which were generated.
6411 for (counterparty_node_id, err) in errs.drain(..) {
6412 let res: Result<(), _> = Err(err);
6413 let _ = handle_error!(self, res, counterparty_node_id);
6417 fn claim_funds_from_hop<ComplFunc: FnOnce(Option<u64>, bool) -> Option<MonitorUpdateCompletionAction>>(&self,
6418 prev_hop: HTLCPreviousHopData, payment_preimage: PaymentPreimage, completion_action: ComplFunc)
6419 -> Result<(), (PublicKey, MsgHandleErrInternal)> {
6420 //TODO: Delay the claimed_funds relaying just like we do outbound relay!
6422 // If we haven't yet run background events assume we're still deserializing and shouldn't
6423 // actually pass `ChannelMonitorUpdate`s to users yet. Instead, queue them up as
6424 // `BackgroundEvent`s.
6425 let during_init = !self.background_events_processed_since_startup.load(Ordering::Acquire);
6427 // As we may call handle_monitor_update_completion_actions in rather rare cases, check that
6428 // the required mutexes are not held before we start.
6429 debug_assert_ne!(self.pending_events.held_by_thread(), LockHeldState::HeldByThread);
6430 debug_assert_ne!(self.claimable_payments.held_by_thread(), LockHeldState::HeldByThread);
6433 let per_peer_state = self.per_peer_state.read().unwrap();
6434 let chan_id = prev_hop.channel_id;
6435 let counterparty_node_id_opt = match self.short_to_chan_info.read().unwrap().get(&prev_hop.short_channel_id) {
6436 Some((cp_id, _dup_chan_id)) => Some(cp_id.clone()),
6440 let peer_state_opt = counterparty_node_id_opt.as_ref().map(
6441 |counterparty_node_id| per_peer_state.get(counterparty_node_id)
6442 .map(|peer_mutex| peer_mutex.lock().unwrap())
6445 if peer_state_opt.is_some() {
6446 let mut peer_state_lock = peer_state_opt.unwrap();
6447 let peer_state = &mut *peer_state_lock;
6448 if let hash_map::Entry::Occupied(mut chan_phase_entry) = peer_state.channel_by_id.entry(chan_id) {
6449 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
6450 let counterparty_node_id = chan.context.get_counterparty_node_id();
6451 let logger = WithChannelContext::from(&self.logger, &chan.context);
6452 let fulfill_res = chan.get_update_fulfill_htlc_and_commit(prev_hop.htlc_id, payment_preimage, &&logger);
6455 UpdateFulfillCommitFetch::NewClaim { htlc_value_msat, monitor_update } => {
6456 if let Some(action) = completion_action(Some(htlc_value_msat), false) {
6457 log_trace!(logger, "Tracking monitor update completion action for channel {}: {:?}",
6459 peer_state.monitor_update_blocked_actions.entry(chan_id).or_insert(Vec::new()).push(action);
6462 handle_new_monitor_update!(self, prev_hop.outpoint, monitor_update, peer_state_lock,
6463 peer_state, per_peer_state, chan);
6465 // If we're running during init we cannot update a monitor directly -
6466 // they probably haven't actually been loaded yet. Instead, push the
6467 // monitor update as a background event.
6468 self.pending_background_events.lock().unwrap().push(
6469 BackgroundEvent::MonitorUpdateRegeneratedOnStartup {
6470 counterparty_node_id,
6471 funding_txo: prev_hop.outpoint,
6472 channel_id: prev_hop.channel_id,
6473 update: monitor_update.clone(),
6477 UpdateFulfillCommitFetch::DuplicateClaim {} => {
6478 let action = if let Some(action) = completion_action(None, true) {
6483 mem::drop(peer_state_lock);
6485 log_trace!(logger, "Completing monitor update completion action for channel {} as claim was redundant: {:?}",
6487 let (node_id, _funding_outpoint, channel_id, blocker) =
6488 if let MonitorUpdateCompletionAction::FreeOtherChannelImmediately {
6489 downstream_counterparty_node_id: node_id,
6490 downstream_funding_outpoint: funding_outpoint,
6491 blocking_action: blocker, downstream_channel_id: channel_id,
6493 (node_id, funding_outpoint, channel_id, blocker)
6495 debug_assert!(false,
6496 "Duplicate claims should always free another channel immediately");
6499 if let Some(peer_state_mtx) = per_peer_state.get(&node_id) {
6500 let mut peer_state = peer_state_mtx.lock().unwrap();
6501 if let Some(blockers) = peer_state
6502 .actions_blocking_raa_monitor_updates
6503 .get_mut(&channel_id)
6505 let mut found_blocker = false;
6506 blockers.retain(|iter| {
6507 // Note that we could actually be blocked, in
6508 // which case we need to only remove the one
6509 // blocker which was added duplicatively.
6510 let first_blocker = !found_blocker;
6511 if *iter == blocker { found_blocker = true; }
6512 *iter != blocker || !first_blocker
6514 debug_assert!(found_blocker);
6517 debug_assert!(false);
6526 let preimage_update = ChannelMonitorUpdate {
6527 update_id: CLOSED_CHANNEL_UPDATE_ID,
6528 counterparty_node_id: None,
6529 updates: vec![ChannelMonitorUpdateStep::PaymentPreimage {
6532 channel_id: Some(prev_hop.channel_id),
6536 // We update the ChannelMonitor on the backward link, after
6537 // receiving an `update_fulfill_htlc` from the forward link.
6538 let update_res = self.chain_monitor.update_channel(prev_hop.outpoint, &preimage_update);
6539 if update_res != ChannelMonitorUpdateStatus::Completed {
6540 // TODO: This needs to be handled somehow - if we receive a monitor update
6541 // with a preimage we *must* somehow manage to propagate it to the upstream
6542 // channel, or we must have an ability to receive the same event and try
6543 // again on restart.
6544 log_error!(WithContext::from(&self.logger, None, Some(prev_hop.channel_id)),
6545 "Critical error: failed to update channel monitor with preimage {:?}: {:?}",
6546 payment_preimage, update_res);
6549 // If we're running during init we cannot update a monitor directly - they probably
6550 // haven't actually been loaded yet. Instead, push the monitor update as a background
6552 // Note that while it's safe to use `ClosedMonitorUpdateRegeneratedOnStartup` here (the
6553 // channel is already closed) we need to ultimately handle the monitor update
6554 // completion action only after we've completed the monitor update. This is the only
6555 // way to guarantee this update *will* be regenerated on startup (otherwise if this was
6556 // from a forwarded HTLC the downstream preimage may be deleted before we claim
6557 // upstream). Thus, we need to transition to some new `BackgroundEvent` type which will
6558 // complete the monitor update completion action from `completion_action`.
6559 self.pending_background_events.lock().unwrap().push(
6560 BackgroundEvent::ClosedMonitorUpdateRegeneratedOnStartup((
6561 prev_hop.outpoint, prev_hop.channel_id, preimage_update,
6564 // Note that we do process the completion action here. This totally could be a
6565 // duplicate claim, but we have no way of knowing without interrogating the
6566 // `ChannelMonitor` we've provided the above update to. Instead, note that `Event`s are
6567 // generally always allowed to be duplicative (and it's specifically noted in
6568 // `PaymentForwarded`).
6569 self.handle_monitor_update_completion_actions(completion_action(None, false));
6573 fn finalize_claims(&self, sources: Vec<HTLCSource>) {
6574 self.pending_outbound_payments.finalize_claims(sources, &self.pending_events);
6577 fn claim_funds_internal(&self, source: HTLCSource, payment_preimage: PaymentPreimage,
6578 forwarded_htlc_value_msat: Option<u64>, skimmed_fee_msat: Option<u64>, from_onchain: bool,
6579 startup_replay: bool, next_channel_counterparty_node_id: Option<PublicKey>,
6580 next_channel_outpoint: OutPoint, next_channel_id: ChannelId, next_user_channel_id: Option<u128>,
6583 HTLCSource::OutboundRoute { session_priv, payment_id, path, .. } => {
6584 debug_assert!(self.background_events_processed_since_startup.load(Ordering::Acquire),
6585 "We don't support claim_htlc claims during startup - monitors may not be available yet");
6586 if let Some(pubkey) = next_channel_counterparty_node_id {
6587 debug_assert_eq!(pubkey, path.hops[0].pubkey);
6589 let ev_completion_action = EventCompletionAction::ReleaseRAAChannelMonitorUpdate {
6590 channel_funding_outpoint: next_channel_outpoint, channel_id: next_channel_id,
6591 counterparty_node_id: path.hops[0].pubkey,
6593 self.pending_outbound_payments.claim_htlc(payment_id, payment_preimage,
6594 session_priv, path, from_onchain, ev_completion_action, &self.pending_events,
6597 HTLCSource::PreviousHopData(hop_data) => {
6598 let prev_channel_id = hop_data.channel_id;
6599 let prev_user_channel_id = hop_data.user_channel_id;
6600 let completed_blocker = RAAMonitorUpdateBlockingAction::from_prev_hop_data(&hop_data);
6601 #[cfg(debug_assertions)]
6602 let claiming_chan_funding_outpoint = hop_data.outpoint;
6603 let res = self.claim_funds_from_hop(hop_data, payment_preimage,
6604 |htlc_claim_value_msat, definitely_duplicate| {
6605 let chan_to_release =
6606 if let Some(node_id) = next_channel_counterparty_node_id {
6607 Some((node_id, next_channel_outpoint, next_channel_id, completed_blocker))
6609 // We can only get `None` here if we are processing a
6610 // `ChannelMonitor`-originated event, in which case we
6611 // don't care about ensuring we wake the downstream
6612 // channel's monitor updating - the channel is already
6617 if definitely_duplicate && startup_replay {
6618 // On startup we may get redundant claims which are related to
6619 // monitor updates still in flight. In that case, we shouldn't
6620 // immediately free, but instead let that monitor update complete
6621 // in the background.
6622 #[cfg(debug_assertions)] {
6623 let background_events = self.pending_background_events.lock().unwrap();
6624 // There should be a `BackgroundEvent` pending...
6625 assert!(background_events.iter().any(|ev| {
6627 // to apply a monitor update that blocked the claiming channel,
6628 BackgroundEvent::MonitorUpdateRegeneratedOnStartup {
6629 funding_txo, update, ..
6631 if *funding_txo == claiming_chan_funding_outpoint {
6632 assert!(update.updates.iter().any(|upd|
6633 if let ChannelMonitorUpdateStep::PaymentPreimage {
6634 payment_preimage: update_preimage
6636 payment_preimage == *update_preimage
6642 // or the channel we'd unblock is already closed,
6643 BackgroundEvent::ClosedMonitorUpdateRegeneratedOnStartup(
6644 (funding_txo, _channel_id, monitor_update)
6646 if *funding_txo == next_channel_outpoint {
6647 assert_eq!(monitor_update.updates.len(), 1);
6649 monitor_update.updates[0],
6650 ChannelMonitorUpdateStep::ChannelForceClosed { .. }
6655 // or the monitor update has completed and will unblock
6656 // immediately once we get going.
6657 BackgroundEvent::MonitorUpdatesComplete {
6660 *channel_id == prev_channel_id,
6662 }), "{:?}", *background_events);
6665 } else if definitely_duplicate {
6666 if let Some(other_chan) = chan_to_release {
6667 Some(MonitorUpdateCompletionAction::FreeOtherChannelImmediately {
6668 downstream_counterparty_node_id: other_chan.0,
6669 downstream_funding_outpoint: other_chan.1,
6670 downstream_channel_id: other_chan.2,
6671 blocking_action: other_chan.3,
6675 let total_fee_earned_msat = if let Some(forwarded_htlc_value) = forwarded_htlc_value_msat {
6676 if let Some(claimed_htlc_value) = htlc_claim_value_msat {
6677 Some(claimed_htlc_value - forwarded_htlc_value)
6680 debug_assert!(skimmed_fee_msat <= total_fee_earned_msat,
6681 "skimmed_fee_msat must always be included in total_fee_earned_msat");
6682 Some(MonitorUpdateCompletionAction::EmitEventAndFreeOtherChannel {
6683 event: events::Event::PaymentForwarded {
6684 prev_channel_id: Some(prev_channel_id),
6685 next_channel_id: Some(next_channel_id),
6686 prev_user_channel_id,
6687 next_user_channel_id,
6688 total_fee_earned_msat,
6690 claim_from_onchain_tx: from_onchain,
6691 outbound_amount_forwarded_msat: forwarded_htlc_value_msat,
6693 downstream_counterparty_and_funding_outpoint: chan_to_release,
6697 if let Err((pk, err)) = res {
6698 let result: Result<(), _> = Err(err);
6699 let _ = handle_error!(self, result, pk);
6705 /// Gets the node_id held by this ChannelManager
6706 pub fn get_our_node_id(&self) -> PublicKey {
6707 self.our_network_pubkey.clone()
6710 fn handle_monitor_update_completion_actions<I: IntoIterator<Item=MonitorUpdateCompletionAction>>(&self, actions: I) {
6711 debug_assert_ne!(self.pending_events.held_by_thread(), LockHeldState::HeldByThread);
6712 debug_assert_ne!(self.claimable_payments.held_by_thread(), LockHeldState::HeldByThread);
6713 debug_assert_ne!(self.per_peer_state.held_by_thread(), LockHeldState::HeldByThread);
6715 for action in actions.into_iter() {
6717 MonitorUpdateCompletionAction::PaymentClaimed { payment_hash } => {
6718 let payment = self.claimable_payments.lock().unwrap().pending_claiming_payments.remove(&payment_hash);
6719 if let Some(ClaimingPayment {
6721 payment_purpose: purpose,
6724 sender_intended_value: sender_intended_total_msat,
6726 self.pending_events.lock().unwrap().push_back((events::Event::PaymentClaimed {
6730 receiver_node_id: Some(receiver_node_id),
6732 sender_intended_total_msat,
6736 MonitorUpdateCompletionAction::EmitEventAndFreeOtherChannel {
6737 event, downstream_counterparty_and_funding_outpoint
6739 self.pending_events.lock().unwrap().push_back((event, None));
6740 if let Some((node_id, funding_outpoint, channel_id, blocker)) = downstream_counterparty_and_funding_outpoint {
6741 self.handle_monitor_update_release(node_id, funding_outpoint, channel_id, Some(blocker));
6744 MonitorUpdateCompletionAction::FreeOtherChannelImmediately {
6745 downstream_counterparty_node_id, downstream_funding_outpoint, downstream_channel_id, blocking_action,
6747 self.handle_monitor_update_release(
6748 downstream_counterparty_node_id,
6749 downstream_funding_outpoint,
6750 downstream_channel_id,
6751 Some(blocking_action),
6758 /// Handles a channel reentering a functional state, either due to reconnect or a monitor
6759 /// update completion.
6760 fn handle_channel_resumption(&self, pending_msg_events: &mut Vec<MessageSendEvent>,
6761 channel: &mut Channel<SP>, raa: Option<msgs::RevokeAndACK>,
6762 commitment_update: Option<msgs::CommitmentUpdate>, order: RAACommitmentOrder,
6763 pending_forwards: Vec<(PendingHTLCInfo, u64)>, pending_update_adds: Vec<msgs::UpdateAddHTLC>,
6764 funding_broadcastable: Option<Transaction>,
6765 channel_ready: Option<msgs::ChannelReady>, announcement_sigs: Option<msgs::AnnouncementSignatures>)
6766 -> (Option<(u64, OutPoint, ChannelId, u128, Vec<(PendingHTLCInfo, u64)>)>, Option<(u64, Vec<msgs::UpdateAddHTLC>)>) {
6767 let logger = WithChannelContext::from(&self.logger, &channel.context);
6768 log_trace!(logger, "Handling channel resumption for channel {} with {} RAA, {} commitment update, {} pending forwards, {} pending update_add_htlcs, {}broadcasting funding, {} channel ready, {} announcement",
6769 &channel.context.channel_id(),
6770 if raa.is_some() { "an" } else { "no" },
6771 if commitment_update.is_some() { "a" } else { "no" },
6772 pending_forwards.len(), pending_update_adds.len(),
6773 if funding_broadcastable.is_some() { "" } else { "not " },
6774 if channel_ready.is_some() { "sending" } else { "without" },
6775 if announcement_sigs.is_some() { "sending" } else { "without" });
6777 let counterparty_node_id = channel.context.get_counterparty_node_id();
6778 let short_channel_id = channel.context.get_short_channel_id().unwrap_or(channel.context.outbound_scid_alias());
6780 let mut htlc_forwards = None;
6781 if !pending_forwards.is_empty() {
6782 htlc_forwards = Some((short_channel_id, channel.context.get_funding_txo().unwrap(),
6783 channel.context.channel_id(), channel.context.get_user_id(), pending_forwards));
6785 let mut decode_update_add_htlcs = None;
6786 if !pending_update_adds.is_empty() {
6787 decode_update_add_htlcs = Some((short_channel_id, pending_update_adds));
6790 if let Some(msg) = channel_ready {
6791 send_channel_ready!(self, pending_msg_events, channel, msg);
6793 if let Some(msg) = announcement_sigs {
6794 pending_msg_events.push(events::MessageSendEvent::SendAnnouncementSignatures {
6795 node_id: counterparty_node_id,
6800 macro_rules! handle_cs { () => {
6801 if let Some(update) = commitment_update {
6802 pending_msg_events.push(events::MessageSendEvent::UpdateHTLCs {
6803 node_id: counterparty_node_id,
6808 macro_rules! handle_raa { () => {
6809 if let Some(revoke_and_ack) = raa {
6810 pending_msg_events.push(events::MessageSendEvent::SendRevokeAndACK {
6811 node_id: counterparty_node_id,
6812 msg: revoke_and_ack,
6817 RAACommitmentOrder::CommitmentFirst => {
6821 RAACommitmentOrder::RevokeAndACKFirst => {
6827 if let Some(tx) = funding_broadcastable {
6828 log_info!(logger, "Broadcasting funding transaction with txid {}", tx.txid());
6829 self.tx_broadcaster.broadcast_transactions(&[&tx]);
6833 let mut pending_events = self.pending_events.lock().unwrap();
6834 emit_channel_pending_event!(pending_events, channel);
6835 emit_channel_ready_event!(pending_events, channel);
6838 (htlc_forwards, decode_update_add_htlcs)
6841 fn channel_monitor_updated(&self, funding_txo: &OutPoint, channel_id: &ChannelId, highest_applied_update_id: u64, counterparty_node_id: Option<&PublicKey>) {
6842 debug_assert!(self.total_consistency_lock.try_write().is_err()); // Caller holds read lock
6844 let counterparty_node_id = match counterparty_node_id {
6845 Some(cp_id) => cp_id.clone(),
6847 // TODO: Once we can rely on the counterparty_node_id from the
6848 // monitor event, this and the outpoint_to_peer map should be removed.
6849 let outpoint_to_peer = self.outpoint_to_peer.lock().unwrap();
6850 match outpoint_to_peer.get(funding_txo) {
6851 Some(cp_id) => cp_id.clone(),
6856 let per_peer_state = self.per_peer_state.read().unwrap();
6857 let mut peer_state_lock;
6858 let peer_state_mutex_opt = per_peer_state.get(&counterparty_node_id);
6859 if peer_state_mutex_opt.is_none() { return }
6860 peer_state_lock = peer_state_mutex_opt.unwrap().lock().unwrap();
6861 let peer_state = &mut *peer_state_lock;
6863 if let Some(ChannelPhase::Funded(chan)) = peer_state.channel_by_id.get_mut(channel_id) {
6866 let update_actions = peer_state.monitor_update_blocked_actions
6867 .remove(&channel_id).unwrap_or(Vec::new());
6868 mem::drop(peer_state_lock);
6869 mem::drop(per_peer_state);
6870 self.handle_monitor_update_completion_actions(update_actions);
6873 let remaining_in_flight =
6874 if let Some(pending) = peer_state.in_flight_monitor_updates.get_mut(funding_txo) {
6875 pending.retain(|upd| upd.update_id > highest_applied_update_id);
6878 let logger = WithChannelContext::from(&self.logger, &channel.context);
6879 log_trace!(logger, "ChannelMonitor updated to {}. Current highest is {}. {} pending in-flight updates.",
6880 highest_applied_update_id, channel.context.get_latest_monitor_update_id(),
6881 remaining_in_flight);
6882 if !channel.is_awaiting_monitor_update() || channel.context.get_latest_monitor_update_id() != highest_applied_update_id {
6885 handle_monitor_update_completion!(self, peer_state_lock, peer_state, per_peer_state, channel);
6888 /// Accepts a request to open a channel after a [`Event::OpenChannelRequest`].
6890 /// The `temporary_channel_id` parameter indicates which inbound channel should be accepted,
6891 /// and the `counterparty_node_id` parameter is the id of the peer which has requested to open
6894 /// The `user_channel_id` parameter will be provided back in
6895 /// [`Event::ChannelClosed::user_channel_id`] to allow tracking of which events correspond
6896 /// with which `accept_inbound_channel`/`accept_inbound_channel_from_trusted_peer_0conf` call.
6898 /// Note that this method will return an error and reject the channel, if it requires support
6899 /// for zero confirmations. Instead, `accept_inbound_channel_from_trusted_peer_0conf` must be
6900 /// used to accept such channels.
6902 /// [`Event::OpenChannelRequest`]: events::Event::OpenChannelRequest
6903 /// [`Event::ChannelClosed::user_channel_id`]: events::Event::ChannelClosed::user_channel_id
6904 pub fn accept_inbound_channel(&self, temporary_channel_id: &ChannelId, counterparty_node_id: &PublicKey, user_channel_id: u128) -> Result<(), APIError> {
6905 self.do_accept_inbound_channel(temporary_channel_id, counterparty_node_id, false, user_channel_id)
6908 /// Accepts a request to open a channel after a [`events::Event::OpenChannelRequest`], treating
6909 /// it as confirmed immediately.
6911 /// The `user_channel_id` parameter will be provided back in
6912 /// [`Event::ChannelClosed::user_channel_id`] to allow tracking of which events correspond
6913 /// with which `accept_inbound_channel`/`accept_inbound_channel_from_trusted_peer_0conf` call.
6915 /// Unlike [`ChannelManager::accept_inbound_channel`], this method accepts the incoming channel
6916 /// and (if the counterparty agrees), enables forwarding of payments immediately.
6918 /// This fully trusts that the counterparty has honestly and correctly constructed the funding
6919 /// transaction and blindly assumes that it will eventually confirm.
6921 /// If it does not confirm before we decide to close the channel, or if the funding transaction
6922 /// does not pay to the correct script the correct amount, *you will lose funds*.
6924 /// [`Event::OpenChannelRequest`]: events::Event::OpenChannelRequest
6925 /// [`Event::ChannelClosed::user_channel_id`]: events::Event::ChannelClosed::user_channel_id
6926 pub fn accept_inbound_channel_from_trusted_peer_0conf(&self, temporary_channel_id: &ChannelId, counterparty_node_id: &PublicKey, user_channel_id: u128) -> Result<(), APIError> {
6927 self.do_accept_inbound_channel(temporary_channel_id, counterparty_node_id, true, user_channel_id)
6930 fn do_accept_inbound_channel(&self, temporary_channel_id: &ChannelId, counterparty_node_id: &PublicKey, accept_0conf: bool, user_channel_id: u128) -> Result<(), APIError> {
6932 let logger = WithContext::from(&self.logger, Some(*counterparty_node_id), Some(*temporary_channel_id));
6933 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
6935 let peers_without_funded_channels =
6936 self.peers_without_funded_channels(|peer| { peer.total_channel_count() > 0 });
6937 let per_peer_state = self.per_peer_state.read().unwrap();
6938 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
6940 let err_str = format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id);
6941 log_error!(logger, "{}", err_str);
6943 APIError::ChannelUnavailable { err: err_str }
6945 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
6946 let peer_state = &mut *peer_state_lock;
6947 let is_only_peer_channel = peer_state.total_channel_count() == 1;
6949 // Find (and remove) the channel in the unaccepted table. If it's not there, something weird is
6950 // happening and return an error. N.B. that we create channel with an outbound SCID of zero so
6951 // that we can delay allocating the SCID until after we're sure that the checks below will
6953 let res = match peer_state.inbound_channel_request_by_id.remove(temporary_channel_id) {
6954 Some(unaccepted_channel) => {
6955 let best_block_height = self.best_block.read().unwrap().height;
6956 InboundV1Channel::new(&self.fee_estimator, &self.entropy_source, &self.signer_provider,
6957 counterparty_node_id.clone(), &self.channel_type_features(), &peer_state.latest_features,
6958 &unaccepted_channel.open_channel_msg, user_channel_id, &self.default_configuration, best_block_height,
6959 &self.logger, accept_0conf).map_err(|err| MsgHandleErrInternal::from_chan_no_close(err, *temporary_channel_id))
6962 let err_str = "No such channel awaiting to be accepted.".to_owned();
6963 log_error!(logger, "{}", err_str);
6965 return Err(APIError::APIMisuseError { err: err_str });
6971 mem::drop(peer_state_lock);
6972 mem::drop(per_peer_state);
6973 match handle_error!(self, Result::<(), MsgHandleErrInternal>::Err(err), *counterparty_node_id) {
6974 Ok(_) => unreachable!("`handle_error` only returns Err as we've passed in an Err"),
6976 return Err(APIError::ChannelUnavailable { err: e.err });
6980 Ok(mut channel) => {
6982 // This should have been correctly configured by the call to InboundV1Channel::new.
6983 debug_assert!(channel.context.minimum_depth().unwrap() == 0);
6984 } else if channel.context.get_channel_type().requires_zero_conf() {
6985 let send_msg_err_event = events::MessageSendEvent::HandleError {
6986 node_id: channel.context.get_counterparty_node_id(),
6987 action: msgs::ErrorAction::SendErrorMessage{
6988 msg: msgs::ErrorMessage { channel_id: temporary_channel_id.clone(), data: "No zero confirmation channels accepted".to_owned(), }
6991 peer_state.pending_msg_events.push(send_msg_err_event);
6992 let err_str = "Please use accept_inbound_channel_from_trusted_peer_0conf to accept channels with zero confirmations.".to_owned();
6993 log_error!(logger, "{}", err_str);
6995 return Err(APIError::APIMisuseError { err: err_str });
6997 // If this peer already has some channels, a new channel won't increase our number of peers
6998 // with unfunded channels, so as long as we aren't over the maximum number of unfunded
6999 // channels per-peer we can accept channels from a peer with existing ones.
7000 if is_only_peer_channel && peers_without_funded_channels >= MAX_UNFUNDED_CHANNEL_PEERS {
7001 let send_msg_err_event = events::MessageSendEvent::HandleError {
7002 node_id: channel.context.get_counterparty_node_id(),
7003 action: msgs::ErrorAction::SendErrorMessage{
7004 msg: msgs::ErrorMessage { channel_id: temporary_channel_id.clone(), data: "Have too many peers with unfunded channels, not accepting new ones".to_owned(), }
7007 peer_state.pending_msg_events.push(send_msg_err_event);
7008 let err_str = "Too many peers with unfunded channels, refusing to accept new ones".to_owned();
7009 log_error!(logger, "{}", err_str);
7011 return Err(APIError::APIMisuseError { err: err_str });
7015 // Now that we know we have a channel, assign an outbound SCID alias.
7016 let outbound_scid_alias = self.create_and_insert_outbound_scid_alias();
7017 channel.context.set_outbound_scid_alias(outbound_scid_alias);
7019 peer_state.pending_msg_events.push(events::MessageSendEvent::SendAcceptChannel {
7020 node_id: channel.context.get_counterparty_node_id(),
7021 msg: channel.accept_inbound_channel(),
7024 peer_state.channel_by_id.insert(temporary_channel_id.clone(), ChannelPhase::UnfundedInboundV1(channel));
7031 /// Gets the number of peers which match the given filter and do not have any funded, outbound,
7032 /// or 0-conf channels.
7034 /// The filter is called for each peer and provided with the number of unfunded, inbound, and
7035 /// non-0-conf channels we have with the peer.
7036 fn peers_without_funded_channels<Filter>(&self, maybe_count_peer: Filter) -> usize
7037 where Filter: Fn(&PeerState<SP>) -> bool {
7038 let mut peers_without_funded_channels = 0;
7039 let best_block_height = self.best_block.read().unwrap().height;
7041 let peer_state_lock = self.per_peer_state.read().unwrap();
7042 for (_, peer_mtx) in peer_state_lock.iter() {
7043 let peer = peer_mtx.lock().unwrap();
7044 if !maybe_count_peer(&*peer) { continue; }
7045 let num_unfunded_channels = Self::unfunded_channel_count(&peer, best_block_height);
7046 if num_unfunded_channels == peer.total_channel_count() {
7047 peers_without_funded_channels += 1;
7051 return peers_without_funded_channels;
7054 fn unfunded_channel_count(
7055 peer: &PeerState<SP>, best_block_height: u32
7057 let mut num_unfunded_channels = 0;
7058 for (_, phase) in peer.channel_by_id.iter() {
7060 ChannelPhase::Funded(chan) => {
7061 // This covers non-zero-conf inbound `Channel`s that we are currently monitoring, but those
7062 // which have not yet had any confirmations on-chain.
7063 if !chan.context.is_outbound() && chan.context.minimum_depth().unwrap_or(1) != 0 &&
7064 chan.context.get_funding_tx_confirmations(best_block_height) == 0
7066 num_unfunded_channels += 1;
7069 ChannelPhase::UnfundedInboundV1(chan) => {
7070 if chan.context.minimum_depth().unwrap_or(1) != 0 {
7071 num_unfunded_channels += 1;
7074 // TODO(dual_funding): Combine this match arm with above once #[cfg(any(dual_funding, splicing))] is removed.
7075 #[cfg(any(dual_funding, splicing))]
7076 ChannelPhase::UnfundedInboundV2(chan) => {
7077 // Only inbound V2 channels that are not 0conf and that we do not contribute to will be
7078 // included in the unfunded count.
7079 if chan.context.minimum_depth().unwrap_or(1) != 0 &&
7080 chan.dual_funding_context.our_funding_satoshis == 0 {
7081 num_unfunded_channels += 1;
7084 ChannelPhase::UnfundedOutboundV1(_) => {
7085 // Outbound channels don't contribute to the unfunded count in the DoS context.
7088 // TODO(dual_funding): Combine this match arm with above once #[cfg(any(dual_funding, splicing))] is removed.
7089 #[cfg(any(dual_funding, splicing))]
7090 ChannelPhase::UnfundedOutboundV2(_) => {
7091 // Outbound channels don't contribute to the unfunded count in the DoS context.
7096 num_unfunded_channels + peer.inbound_channel_request_by_id.len()
7099 fn internal_open_channel(&self, counterparty_node_id: &PublicKey, msg: &msgs::OpenChannel) -> Result<(), MsgHandleErrInternal> {
7100 // Note that the ChannelManager is NOT re-persisted on disk after this, so any changes are
7101 // likely to be lost on restart!
7102 if msg.common_fields.chain_hash != self.chain_hash {
7103 return Err(MsgHandleErrInternal::send_err_msg_no_close("Unknown genesis block hash".to_owned(),
7104 msg.common_fields.temporary_channel_id.clone()));
7107 if !self.default_configuration.accept_inbound_channels {
7108 return Err(MsgHandleErrInternal::send_err_msg_no_close("No inbound channels accepted".to_owned(),
7109 msg.common_fields.temporary_channel_id.clone()));
7112 // Get the number of peers with channels, but without funded ones. We don't care too much
7113 // about peers that never open a channel, so we filter by peers that have at least one
7114 // channel, and then limit the number of those with unfunded channels.
7115 let channeled_peers_without_funding =
7116 self.peers_without_funded_channels(|node| node.total_channel_count() > 0);
7118 let per_peer_state = self.per_peer_state.read().unwrap();
7119 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7121 debug_assert!(false);
7122 MsgHandleErrInternal::send_err_msg_no_close(
7123 format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id),
7124 msg.common_fields.temporary_channel_id.clone())
7126 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7127 let peer_state = &mut *peer_state_lock;
7129 // If this peer already has some channels, a new channel won't increase our number of peers
7130 // with unfunded channels, so as long as we aren't over the maximum number of unfunded
7131 // channels per-peer we can accept channels from a peer with existing ones.
7132 if peer_state.total_channel_count() == 0 &&
7133 channeled_peers_without_funding >= MAX_UNFUNDED_CHANNEL_PEERS &&
7134 !self.default_configuration.manually_accept_inbound_channels
7136 return Err(MsgHandleErrInternal::send_err_msg_no_close(
7137 "Have too many peers with unfunded channels, not accepting new ones".to_owned(),
7138 msg.common_fields.temporary_channel_id.clone()));
7141 let best_block_height = self.best_block.read().unwrap().height;
7142 if Self::unfunded_channel_count(peer_state, best_block_height) >= MAX_UNFUNDED_CHANS_PER_PEER {
7143 return Err(MsgHandleErrInternal::send_err_msg_no_close(
7144 format!("Refusing more than {} unfunded channels.", MAX_UNFUNDED_CHANS_PER_PEER),
7145 msg.common_fields.temporary_channel_id.clone()));
7148 let channel_id = msg.common_fields.temporary_channel_id;
7149 let channel_exists = peer_state.has_channel(&channel_id);
7151 return Err(MsgHandleErrInternal::send_err_msg_no_close(
7152 "temporary_channel_id collision for the same peer!".to_owned(),
7153 msg.common_fields.temporary_channel_id.clone()));
7156 // If we're doing manual acceptance checks on the channel, then defer creation until we're sure we want to accept.
7157 if self.default_configuration.manually_accept_inbound_channels {
7158 let channel_type = channel::channel_type_from_open_channel(
7159 &msg.common_fields, &peer_state.latest_features, &self.channel_type_features()
7161 MsgHandleErrInternal::from_chan_no_close(e, msg.common_fields.temporary_channel_id)
7163 let mut pending_events = self.pending_events.lock().unwrap();
7164 pending_events.push_back((events::Event::OpenChannelRequest {
7165 temporary_channel_id: msg.common_fields.temporary_channel_id.clone(),
7166 counterparty_node_id: counterparty_node_id.clone(),
7167 funding_satoshis: msg.common_fields.funding_satoshis,
7168 push_msat: msg.push_msat,
7171 peer_state.inbound_channel_request_by_id.insert(channel_id, InboundChannelRequest {
7172 open_channel_msg: msg.clone(),
7173 ticks_remaining: UNACCEPTED_INBOUND_CHANNEL_AGE_LIMIT_TICKS,
7178 // Otherwise create the channel right now.
7179 let mut random_bytes = [0u8; 16];
7180 random_bytes.copy_from_slice(&self.entropy_source.get_secure_random_bytes()[..16]);
7181 let user_channel_id = u128::from_be_bytes(random_bytes);
7182 let mut channel = match InboundV1Channel::new(&self.fee_estimator, &self.entropy_source, &self.signer_provider,
7183 counterparty_node_id.clone(), &self.channel_type_features(), &peer_state.latest_features, msg, user_channel_id,
7184 &self.default_configuration, best_block_height, &self.logger, /*is_0conf=*/false)
7187 return Err(MsgHandleErrInternal::from_chan_no_close(e, msg.common_fields.temporary_channel_id));
7192 let channel_type = channel.context.get_channel_type();
7193 if channel_type.requires_zero_conf() {
7194 return Err(MsgHandleErrInternal::send_err_msg_no_close(
7195 "No zero confirmation channels accepted".to_owned(),
7196 msg.common_fields.temporary_channel_id.clone()));
7198 if channel_type.requires_anchors_zero_fee_htlc_tx() {
7199 return Err(MsgHandleErrInternal::send_err_msg_no_close(
7200 "No channels with anchor outputs accepted".to_owned(),
7201 msg.common_fields.temporary_channel_id.clone()));
7204 let outbound_scid_alias = self.create_and_insert_outbound_scid_alias();
7205 channel.context.set_outbound_scid_alias(outbound_scid_alias);
7207 peer_state.pending_msg_events.push(events::MessageSendEvent::SendAcceptChannel {
7208 node_id: counterparty_node_id.clone(),
7209 msg: channel.accept_inbound_channel(),
7211 peer_state.channel_by_id.insert(channel_id, ChannelPhase::UnfundedInboundV1(channel));
7215 fn internal_accept_channel(&self, counterparty_node_id: &PublicKey, msg: &msgs::AcceptChannel) -> Result<(), MsgHandleErrInternal> {
7216 // Note that the ChannelManager is NOT re-persisted on disk after this, so any changes are
7217 // likely to be lost on restart!
7218 let (value, output_script, user_id) = {
7219 let per_peer_state = self.per_peer_state.read().unwrap();
7220 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7222 debug_assert!(false);
7223 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.common_fields.temporary_channel_id)
7225 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7226 let peer_state = &mut *peer_state_lock;
7227 match peer_state.channel_by_id.entry(msg.common_fields.temporary_channel_id) {
7228 hash_map::Entry::Occupied(mut phase) => {
7229 match phase.get_mut() {
7230 ChannelPhase::UnfundedOutboundV1(chan) => {
7231 try_chan_phase_entry!(self, chan.accept_channel(&msg, &self.default_configuration.channel_handshake_limits, &peer_state.latest_features), phase);
7232 (chan.context.get_value_satoshis(), chan.context.get_funding_redeemscript().to_v0_p2wsh(), chan.context.get_user_id())
7235 return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got an unexpected accept_channel message from peer with counterparty_node_id {}", counterparty_node_id), msg.common_fields.temporary_channel_id));
7239 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.common_fields.temporary_channel_id))
7242 let mut pending_events = self.pending_events.lock().unwrap();
7243 pending_events.push_back((events::Event::FundingGenerationReady {
7244 temporary_channel_id: msg.common_fields.temporary_channel_id,
7245 counterparty_node_id: *counterparty_node_id,
7246 channel_value_satoshis: value,
7248 user_channel_id: user_id,
7253 fn internal_funding_created(&self, counterparty_node_id: &PublicKey, msg: &msgs::FundingCreated) -> Result<(), MsgHandleErrInternal> {
7254 let best_block = *self.best_block.read().unwrap();
7256 let per_peer_state = self.per_peer_state.read().unwrap();
7257 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7259 debug_assert!(false);
7260 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.temporary_channel_id)
7263 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7264 let peer_state = &mut *peer_state_lock;
7265 let (mut chan, funding_msg_opt, monitor) =
7266 match peer_state.channel_by_id.remove(&msg.temporary_channel_id) {
7267 Some(ChannelPhase::UnfundedInboundV1(inbound_chan)) => {
7268 let logger = WithChannelContext::from(&self.logger, &inbound_chan.context);
7269 match inbound_chan.funding_created(msg, best_block, &self.signer_provider, &&logger) {
7271 Err((inbound_chan, err)) => {
7272 // We've already removed this inbound channel from the map in `PeerState`
7273 // above so at this point we just need to clean up any lingering entries
7274 // concerning this channel as it is safe to do so.
7275 debug_assert!(matches!(err, ChannelError::Close(_)));
7276 // Really we should be returning the channel_id the peer expects based
7277 // on their funding info here, but they're horribly confused anyway, so
7278 // there's not a lot we can do to save them.
7279 return Err(convert_chan_phase_err!(self, err, &mut ChannelPhase::UnfundedInboundV1(inbound_chan), &msg.temporary_channel_id).1);
7283 Some(mut phase) => {
7284 let err_msg = format!("Got an unexpected funding_created message from peer with counterparty_node_id {}", counterparty_node_id);
7285 let err = ChannelError::Close(err_msg);
7286 return Err(convert_chan_phase_err!(self, err, &mut phase, &msg.temporary_channel_id).1);
7288 None => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.temporary_channel_id))
7291 let funded_channel_id = chan.context.channel_id();
7293 macro_rules! fail_chan { ($err: expr) => { {
7294 // Note that at this point we've filled in the funding outpoint on our
7295 // channel, but its actually in conflict with another channel. Thus, if
7296 // we call `convert_chan_phase_err` immediately (thus calling
7297 // `update_maps_on_chan_removal`), we'll remove the existing channel
7298 // from `outpoint_to_peer`. Thus, we must first unset the funding outpoint
7300 let err = ChannelError::Close($err.to_owned());
7301 chan.unset_funding_info(msg.temporary_channel_id);
7302 return Err(convert_chan_phase_err!(self, err, chan, &funded_channel_id, UNFUNDED_CHANNEL).1);
7305 match peer_state.channel_by_id.entry(funded_channel_id) {
7306 hash_map::Entry::Occupied(_) => {
7307 fail_chan!("Already had channel with the new channel_id");
7309 hash_map::Entry::Vacant(e) => {
7310 let mut outpoint_to_peer_lock = self.outpoint_to_peer.lock().unwrap();
7311 match outpoint_to_peer_lock.entry(monitor.get_funding_txo().0) {
7312 hash_map::Entry::Occupied(_) => {
7313 fail_chan!("The funding_created message had the same funding_txid as an existing channel - funding is not possible");
7315 hash_map::Entry::Vacant(i_e) => {
7316 let monitor_res = self.chain_monitor.watch_channel(monitor.get_funding_txo().0, monitor);
7317 if let Ok(persist_state) = monitor_res {
7318 i_e.insert(chan.context.get_counterparty_node_id());
7319 mem::drop(outpoint_to_peer_lock);
7321 // There's no problem signing a counterparty's funding transaction if our monitor
7322 // hasn't persisted to disk yet - we can't lose money on a transaction that we haven't
7323 // accepted payment from yet. We do, however, need to wait to send our channel_ready
7324 // until we have persisted our monitor.
7325 if let Some(msg) = funding_msg_opt {
7326 peer_state.pending_msg_events.push(events::MessageSendEvent::SendFundingSigned {
7327 node_id: counterparty_node_id.clone(),
7332 if let ChannelPhase::Funded(chan) = e.insert(ChannelPhase::Funded(chan)) {
7333 handle_new_monitor_update!(self, persist_state, peer_state_lock, peer_state,
7334 per_peer_state, chan, INITIAL_MONITOR);
7336 unreachable!("This must be a funded channel as we just inserted it.");
7340 let logger = WithChannelContext::from(&self.logger, &chan.context);
7341 log_error!(logger, "Persisting initial ChannelMonitor failed, implying the funding outpoint was duplicated");
7342 fail_chan!("Duplicate funding outpoint");
7350 fn internal_funding_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::FundingSigned) -> Result<(), MsgHandleErrInternal> {
7351 let best_block = *self.best_block.read().unwrap();
7352 let per_peer_state = self.per_peer_state.read().unwrap();
7353 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7355 debug_assert!(false);
7356 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
7359 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7360 let peer_state = &mut *peer_state_lock;
7361 match peer_state.channel_by_id.entry(msg.channel_id) {
7362 hash_map::Entry::Occupied(chan_phase_entry) => {
7363 if matches!(chan_phase_entry.get(), ChannelPhase::UnfundedOutboundV1(_)) {
7364 let chan = if let ChannelPhase::UnfundedOutboundV1(chan) = chan_phase_entry.remove() { chan } else { unreachable!() };
7365 let logger = WithContext::from(
7367 Some(chan.context.get_counterparty_node_id()),
7368 Some(chan.context.channel_id())
7371 chan.funding_signed(&msg, best_block, &self.signer_provider, &&logger);
7373 Ok((mut chan, monitor)) => {
7374 if let Ok(persist_status) = self.chain_monitor.watch_channel(chan.context.get_funding_txo().unwrap(), monitor) {
7375 // We really should be able to insert here without doing a second
7376 // lookup, but sadly rust stdlib doesn't currently allow keeping
7377 // the original Entry around with the value removed.
7378 let mut chan = peer_state.channel_by_id.entry(msg.channel_id).or_insert(ChannelPhase::Funded(chan));
7379 if let ChannelPhase::Funded(ref mut chan) = &mut chan {
7380 handle_new_monitor_update!(self, persist_status, peer_state_lock, peer_state, per_peer_state, chan, INITIAL_MONITOR);
7381 } else { unreachable!(); }
7384 let e = ChannelError::Close("Channel funding outpoint was a duplicate".to_owned());
7385 // We weren't able to watch the channel to begin with, so no
7386 // updates should be made on it. Previously, full_stack_target
7387 // found an (unreachable) panic when the monitor update contained
7388 // within `shutdown_finish` was applied.
7389 chan.unset_funding_info(msg.channel_id);
7390 return Err(convert_chan_phase_err!(self, e, &mut ChannelPhase::Funded(chan), &msg.channel_id).1);
7394 debug_assert!(matches!(e, ChannelError::Close(_)),
7395 "We don't have a channel anymore, so the error better have expected close");
7396 // We've already removed this outbound channel from the map in
7397 // `PeerState` above so at this point we just need to clean up any
7398 // lingering entries concerning this channel as it is safe to do so.
7399 return Err(convert_chan_phase_err!(self, e, &mut ChannelPhase::UnfundedOutboundV1(chan), &msg.channel_id).1);
7403 return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id));
7406 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
7410 fn internal_channel_ready(&self, counterparty_node_id: &PublicKey, msg: &msgs::ChannelReady) -> Result<(), MsgHandleErrInternal> {
7411 // Note that the ChannelManager is NOT re-persisted on disk after this (unless we error
7412 // closing a channel), so any changes are likely to be lost on restart!
7413 let per_peer_state = self.per_peer_state.read().unwrap();
7414 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7416 debug_assert!(false);
7417 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
7419 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7420 let peer_state = &mut *peer_state_lock;
7421 match peer_state.channel_by_id.entry(msg.channel_id) {
7422 hash_map::Entry::Occupied(mut chan_phase_entry) => {
7423 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
7424 let logger = WithChannelContext::from(&self.logger, &chan.context);
7425 let announcement_sigs_opt = try_chan_phase_entry!(self, chan.channel_ready(&msg, &self.node_signer,
7426 self.chain_hash, &self.default_configuration, &self.best_block.read().unwrap(), &&logger), chan_phase_entry);
7427 if let Some(announcement_sigs) = announcement_sigs_opt {
7428 log_trace!(logger, "Sending announcement_signatures for channel {}", chan.context.channel_id());
7429 peer_state.pending_msg_events.push(events::MessageSendEvent::SendAnnouncementSignatures {
7430 node_id: counterparty_node_id.clone(),
7431 msg: announcement_sigs,
7433 } else if chan.context.is_usable() {
7434 // If we're sending an announcement_signatures, we'll send the (public)
7435 // channel_update after sending a channel_announcement when we receive our
7436 // counterparty's announcement_signatures. Thus, we only bother to send a
7437 // channel_update here if the channel is not public, i.e. we're not sending an
7438 // announcement_signatures.
7439 log_trace!(logger, "Sending private initial channel_update for our counterparty on channel {}", chan.context.channel_id());
7440 if let Ok(msg) = self.get_channel_update_for_unicast(chan) {
7441 peer_state.pending_msg_events.push(events::MessageSendEvent::SendChannelUpdate {
7442 node_id: counterparty_node_id.clone(),
7449 let mut pending_events = self.pending_events.lock().unwrap();
7450 emit_channel_ready_event!(pending_events, chan);
7455 try_chan_phase_entry!(self, Err(ChannelError::Close(
7456 "Got a channel_ready message for an unfunded channel!".into())), chan_phase_entry)
7459 hash_map::Entry::Vacant(_) => {
7460 Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
7465 fn internal_shutdown(&self, counterparty_node_id: &PublicKey, msg: &msgs::Shutdown) -> Result<(), MsgHandleErrInternal> {
7466 let mut dropped_htlcs: Vec<(HTLCSource, PaymentHash)> = Vec::new();
7467 let mut finish_shutdown = None;
7469 let per_peer_state = self.per_peer_state.read().unwrap();
7470 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7472 debug_assert!(false);
7473 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
7475 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7476 let peer_state = &mut *peer_state_lock;
7477 if let hash_map::Entry::Occupied(mut chan_phase_entry) = peer_state.channel_by_id.entry(msg.channel_id.clone()) {
7478 let phase = chan_phase_entry.get_mut();
7480 ChannelPhase::Funded(chan) => {
7481 if !chan.received_shutdown() {
7482 let logger = WithChannelContext::from(&self.logger, &chan.context);
7483 log_info!(logger, "Received a shutdown message from our counterparty for channel {}{}.",
7485 if chan.sent_shutdown() { " after we initiated shutdown" } else { "" });
7488 let funding_txo_opt = chan.context.get_funding_txo();
7489 let (shutdown, monitor_update_opt, htlcs) = try_chan_phase_entry!(self,
7490 chan.shutdown(&self.signer_provider, &peer_state.latest_features, &msg), chan_phase_entry);
7491 dropped_htlcs = htlcs;
7493 if let Some(msg) = shutdown {
7494 // We can send the `shutdown` message before updating the `ChannelMonitor`
7495 // here as we don't need the monitor update to complete until we send a
7496 // `shutdown_signed`, which we'll delay if we're pending a monitor update.
7497 peer_state.pending_msg_events.push(events::MessageSendEvent::SendShutdown {
7498 node_id: *counterparty_node_id,
7502 // Update the monitor with the shutdown script if necessary.
7503 if let Some(monitor_update) = monitor_update_opt {
7504 handle_new_monitor_update!(self, funding_txo_opt.unwrap(), monitor_update,
7505 peer_state_lock, peer_state, per_peer_state, chan);
7508 ChannelPhase::UnfundedInboundV1(_) | ChannelPhase::UnfundedOutboundV1(_) => {
7509 let context = phase.context_mut();
7510 let logger = WithChannelContext::from(&self.logger, context);
7511 log_error!(logger, "Immediately closing unfunded channel {} as peer asked to cooperatively shut it down (which is unnecessary)", &msg.channel_id);
7512 let mut chan = remove_channel_phase!(self, chan_phase_entry);
7513 finish_shutdown = Some(chan.context_mut().force_shutdown(false, ClosureReason::CounterpartyCoopClosedUnfundedChannel));
7515 // TODO(dual_funding): Combine this match arm with above.
7516 #[cfg(any(dual_funding, splicing))]
7517 ChannelPhase::UnfundedInboundV2(_) | ChannelPhase::UnfundedOutboundV2(_) => {
7518 let context = phase.context_mut();
7519 log_error!(self.logger, "Immediately closing unfunded channel {} as peer asked to cooperatively shut it down (which is unnecessary)", &msg.channel_id);
7520 let mut chan = remove_channel_phase!(self, chan_phase_entry);
7521 finish_shutdown = Some(chan.context_mut().force_shutdown(false, ClosureReason::CounterpartyCoopClosedUnfundedChannel));
7525 return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
7528 for htlc_source in dropped_htlcs.drain(..) {
7529 let receiver = HTLCDestination::NextHopChannel { node_id: Some(counterparty_node_id.clone()), channel_id: msg.channel_id };
7530 let reason = HTLCFailReason::from_failure_code(0x4000 | 8);
7531 self.fail_htlc_backwards_internal(&htlc_source.0, &htlc_source.1, &reason, receiver);
7533 if let Some(shutdown_res) = finish_shutdown {
7534 self.finish_close_channel(shutdown_res);
7540 fn internal_closing_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::ClosingSigned) -> Result<(), MsgHandleErrInternal> {
7541 let per_peer_state = self.per_peer_state.read().unwrap();
7542 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7544 debug_assert!(false);
7545 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
7547 let (tx, chan_option, shutdown_result) = {
7548 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7549 let peer_state = &mut *peer_state_lock;
7550 match peer_state.channel_by_id.entry(msg.channel_id.clone()) {
7551 hash_map::Entry::Occupied(mut chan_phase_entry) => {
7552 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
7553 let (closing_signed, tx, shutdown_result) = try_chan_phase_entry!(self, chan.closing_signed(&self.fee_estimator, &msg), chan_phase_entry);
7554 debug_assert_eq!(shutdown_result.is_some(), chan.is_shutdown());
7555 if let Some(msg) = closing_signed {
7556 peer_state.pending_msg_events.push(events::MessageSendEvent::SendClosingSigned {
7557 node_id: counterparty_node_id.clone(),
7562 // We're done with this channel, we've got a signed closing transaction and
7563 // will send the closing_signed back to the remote peer upon return. This
7564 // also implies there are no pending HTLCs left on the channel, so we can
7565 // fully delete it from tracking (the channel monitor is still around to
7566 // watch for old state broadcasts)!
7567 (tx, Some(remove_channel_phase!(self, chan_phase_entry)), shutdown_result)
7568 } else { (tx, None, shutdown_result) }
7570 return try_chan_phase_entry!(self, Err(ChannelError::Close(
7571 "Got a closing_signed message for an unfunded channel!".into())), chan_phase_entry);
7574 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
7577 if let Some(broadcast_tx) = tx {
7578 let channel_id = chan_option.as_ref().map(|channel| channel.context().channel_id());
7579 log_info!(WithContext::from(&self.logger, Some(*counterparty_node_id), channel_id), "Broadcasting {}", log_tx!(broadcast_tx));
7580 self.tx_broadcaster.broadcast_transactions(&[&broadcast_tx]);
7582 if let Some(ChannelPhase::Funded(chan)) = chan_option {
7583 if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
7584 let mut pending_broadcast_messages = self.pending_broadcast_messages.lock().unwrap();
7585 pending_broadcast_messages.push(events::MessageSendEvent::BroadcastChannelUpdate {
7590 mem::drop(per_peer_state);
7591 if let Some(shutdown_result) = shutdown_result {
7592 self.finish_close_channel(shutdown_result);
7597 fn internal_update_add_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateAddHTLC) -> Result<(), MsgHandleErrInternal> {
7598 //TODO: BOLT 4 points out a specific attack where a peer may re-send an onion packet and
7599 //determine the state of the payment based on our response/if we forward anything/the time
7600 //we take to respond. We should take care to avoid allowing such an attack.
7602 //TODO: There exists a further attack where a node may garble the onion data, forward it to
7603 //us repeatedly garbled in different ways, and compare our error messages, which are
7604 //encrypted with the same key. It's not immediately obvious how to usefully exploit that,
7605 //but we should prevent it anyway.
7607 // Note that the ChannelManager is NOT re-persisted on disk after this (unless we error
7608 // closing a channel), so any changes are likely to be lost on restart!
7610 let decoded_hop_res = self.decode_update_add_htlc_onion(msg, counterparty_node_id);
7611 let per_peer_state = self.per_peer_state.read().unwrap();
7612 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7614 debug_assert!(false);
7615 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
7617 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7618 let peer_state = &mut *peer_state_lock;
7619 match peer_state.channel_by_id.entry(msg.channel_id) {
7620 hash_map::Entry::Occupied(mut chan_phase_entry) => {
7621 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
7622 let mut pending_forward_info = match decoded_hop_res {
7623 Ok((next_hop, shared_secret, next_packet_pk_opt)) =>
7624 self.construct_pending_htlc_status(
7625 msg, counterparty_node_id, shared_secret, next_hop,
7626 chan.context.config().accept_underpaying_htlcs, next_packet_pk_opt,
7628 Err(e) => PendingHTLCStatus::Fail(e)
7630 let logger = WithChannelContext::from(&self.logger, &chan.context);
7631 // If the update_add is completely bogus, the call will Err and we will close,
7632 // but if we've sent a shutdown and they haven't acknowledged it yet, we just
7633 // want to reject the new HTLC and fail it backwards instead of forwarding.
7634 if let Err((_, error_code)) = chan.can_accept_incoming_htlc(&msg, &self.fee_estimator, &logger) {
7635 if msg.blinding_point.is_some() {
7636 pending_forward_info = PendingHTLCStatus::Fail(HTLCFailureMsg::Malformed(
7637 msgs::UpdateFailMalformedHTLC {
7638 channel_id: msg.channel_id,
7639 htlc_id: msg.htlc_id,
7640 sha256_of_onion: [0; 32],
7641 failure_code: INVALID_ONION_BLINDING,
7645 match pending_forward_info {
7646 PendingHTLCStatus::Forward(PendingHTLCInfo {
7647 ref incoming_shared_secret, ref routing, ..
7649 let reason = if routing.blinded_failure().is_some() {
7650 HTLCFailReason::reason(INVALID_ONION_BLINDING, vec![0; 32])
7651 } else if (error_code & 0x1000) != 0 {
7652 let (real_code, error_data) = self.get_htlc_inbound_temp_fail_err_and_data(error_code, chan);
7653 HTLCFailReason::reason(real_code, error_data)
7655 HTLCFailReason::from_failure_code(error_code)
7656 }.get_encrypted_failure_packet(incoming_shared_secret, &None);
7657 let msg = msgs::UpdateFailHTLC {
7658 channel_id: msg.channel_id,
7659 htlc_id: msg.htlc_id,
7662 pending_forward_info = PendingHTLCStatus::Fail(HTLCFailureMsg::Relay(msg));
7668 try_chan_phase_entry!(self, chan.update_add_htlc(&msg, pending_forward_info), chan_phase_entry);
7670 return try_chan_phase_entry!(self, Err(ChannelError::Close(
7671 "Got an update_add_htlc message for an unfunded channel!".into())), chan_phase_entry);
7674 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
7679 fn internal_update_fulfill_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFulfillHTLC) -> Result<(), MsgHandleErrInternal> {
7681 let next_user_channel_id;
7682 let (htlc_source, forwarded_htlc_value, skimmed_fee_msat) = {
7683 let per_peer_state = self.per_peer_state.read().unwrap();
7684 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7686 debug_assert!(false);
7687 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
7689 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7690 let peer_state = &mut *peer_state_lock;
7691 match peer_state.channel_by_id.entry(msg.channel_id) {
7692 hash_map::Entry::Occupied(mut chan_phase_entry) => {
7693 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
7694 let res = try_chan_phase_entry!(self, chan.update_fulfill_htlc(&msg), chan_phase_entry);
7695 if let HTLCSource::PreviousHopData(prev_hop) = &res.0 {
7696 let logger = WithChannelContext::from(&self.logger, &chan.context);
7698 "Holding the next revoke_and_ack from {} until the preimage is durably persisted in the inbound edge's ChannelMonitor",
7700 peer_state.actions_blocking_raa_monitor_updates.entry(msg.channel_id)
7701 .or_insert_with(Vec::new)
7702 .push(RAAMonitorUpdateBlockingAction::from_prev_hop_data(&prev_hop));
7704 // Note that we do not need to push an `actions_blocking_raa_monitor_updates`
7705 // entry here, even though we *do* need to block the next RAA monitor update.
7706 // We do this instead in the `claim_funds_internal` by attaching a
7707 // `ReleaseRAAChannelMonitorUpdate` action to the event generated when the
7708 // outbound HTLC is claimed. This is guaranteed to all complete before we
7709 // process the RAA as messages are processed from single peers serially.
7710 funding_txo = chan.context.get_funding_txo().expect("We won't accept a fulfill until funded");
7711 next_user_channel_id = chan.context.get_user_id();
7714 return try_chan_phase_entry!(self, Err(ChannelError::Close(
7715 "Got an update_fulfill_htlc message for an unfunded channel!".into())), chan_phase_entry);
7718 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
7721 self.claim_funds_internal(htlc_source, msg.payment_preimage.clone(),
7722 Some(forwarded_htlc_value), skimmed_fee_msat, false, false, Some(*counterparty_node_id),
7723 funding_txo, msg.channel_id, Some(next_user_channel_id),
7729 fn internal_update_fail_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFailHTLC) -> Result<(), MsgHandleErrInternal> {
7730 // Note that the ChannelManager is NOT re-persisted on disk after this (unless we error
7731 // closing a channel), so any changes are likely to be lost on restart!
7732 let per_peer_state = self.per_peer_state.read().unwrap();
7733 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7735 debug_assert!(false);
7736 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
7738 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7739 let peer_state = &mut *peer_state_lock;
7740 match peer_state.channel_by_id.entry(msg.channel_id) {
7741 hash_map::Entry::Occupied(mut chan_phase_entry) => {
7742 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
7743 try_chan_phase_entry!(self, chan.update_fail_htlc(&msg, HTLCFailReason::from_msg(msg)), chan_phase_entry);
7745 return try_chan_phase_entry!(self, Err(ChannelError::Close(
7746 "Got an update_fail_htlc message for an unfunded channel!".into())), chan_phase_entry);
7749 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
7754 fn internal_update_fail_malformed_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFailMalformedHTLC) -> Result<(), MsgHandleErrInternal> {
7755 // Note that the ChannelManager is NOT re-persisted on disk after this (unless we error
7756 // closing a channel), so any changes are likely to be lost on restart!
7757 let per_peer_state = self.per_peer_state.read().unwrap();
7758 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7760 debug_assert!(false);
7761 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
7763 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7764 let peer_state = &mut *peer_state_lock;
7765 match peer_state.channel_by_id.entry(msg.channel_id) {
7766 hash_map::Entry::Occupied(mut chan_phase_entry) => {
7767 if (msg.failure_code & 0x8000) == 0 {
7768 let chan_err: ChannelError = ChannelError::Close("Got update_fail_malformed_htlc with BADONION not set".to_owned());
7769 try_chan_phase_entry!(self, Err(chan_err), chan_phase_entry);
7771 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
7772 try_chan_phase_entry!(self, chan.update_fail_malformed_htlc(&msg, HTLCFailReason::reason(msg.failure_code, msg.sha256_of_onion.to_vec())), chan_phase_entry);
7774 return try_chan_phase_entry!(self, Err(ChannelError::Close(
7775 "Got an update_fail_malformed_htlc message for an unfunded channel!".into())), chan_phase_entry);
7779 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
7783 fn internal_commitment_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::CommitmentSigned) -> Result<(), MsgHandleErrInternal> {
7784 let per_peer_state = self.per_peer_state.read().unwrap();
7785 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
7787 debug_assert!(false);
7788 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
7790 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
7791 let peer_state = &mut *peer_state_lock;
7792 match peer_state.channel_by_id.entry(msg.channel_id) {
7793 hash_map::Entry::Occupied(mut chan_phase_entry) => {
7794 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
7795 let logger = WithChannelContext::from(&self.logger, &chan.context);
7796 let funding_txo = chan.context.get_funding_txo();
7797 let monitor_update_opt = try_chan_phase_entry!(self, chan.commitment_signed(&msg, &&logger), chan_phase_entry);
7798 if let Some(monitor_update) = monitor_update_opt {
7799 handle_new_monitor_update!(self, funding_txo.unwrap(), monitor_update, peer_state_lock,
7800 peer_state, per_peer_state, chan);
7804 return try_chan_phase_entry!(self, Err(ChannelError::Close(
7805 "Got a commitment_signed message for an unfunded channel!".into())), chan_phase_entry);
7808 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
7812 fn push_decode_update_add_htlcs(&self, mut update_add_htlcs: (u64, Vec<msgs::UpdateAddHTLC>)) {
7813 let mut push_forward_event = self.forward_htlcs.lock().unwrap().is_empty();
7814 let mut decode_update_add_htlcs = self.decode_update_add_htlcs.lock().unwrap();
7815 push_forward_event &= decode_update_add_htlcs.is_empty();
7816 let scid = update_add_htlcs.0;
7817 match decode_update_add_htlcs.entry(scid) {
7818 hash_map::Entry::Occupied(mut e) => { e.get_mut().append(&mut update_add_htlcs.1); },
7819 hash_map::Entry::Vacant(e) => { e.insert(update_add_htlcs.1); },
7821 if push_forward_event { self.push_pending_forwards_ev(); }
7825 fn forward_htlcs(&self, per_source_pending_forwards: &mut [(u64, OutPoint, ChannelId, u128, Vec<(PendingHTLCInfo, u64)>)]) {
7826 let push_forward_event = self.forward_htlcs_without_forward_event(per_source_pending_forwards);
7827 if push_forward_event { self.push_pending_forwards_ev() }
7831 fn forward_htlcs_without_forward_event(&self, per_source_pending_forwards: &mut [(u64, OutPoint, ChannelId, u128, Vec<(PendingHTLCInfo, u64)>)]) -> bool {
7832 let mut push_forward_event = false;
7833 for &mut (prev_short_channel_id, prev_funding_outpoint, prev_channel_id, prev_user_channel_id, ref mut pending_forwards) in per_source_pending_forwards {
7834 let mut new_intercept_events = VecDeque::new();
7835 let mut failed_intercept_forwards = Vec::new();
7836 if !pending_forwards.is_empty() {
7837 for (forward_info, prev_htlc_id) in pending_forwards.drain(..) {
7838 let scid = match forward_info.routing {
7839 PendingHTLCRouting::Forward { short_channel_id, .. } => short_channel_id,
7840 PendingHTLCRouting::Receive { .. } => 0,
7841 PendingHTLCRouting::ReceiveKeysend { .. } => 0,
7843 // Pull this now to avoid introducing a lock order with `forward_htlcs`.
7844 let is_our_scid = self.short_to_chan_info.read().unwrap().contains_key(&scid);
7846 let decode_update_add_htlcs_empty = self.decode_update_add_htlcs.lock().unwrap().is_empty();
7847 let mut forward_htlcs = self.forward_htlcs.lock().unwrap();
7848 let forward_htlcs_empty = forward_htlcs.is_empty();
7849 match forward_htlcs.entry(scid) {
7850 hash_map::Entry::Occupied(mut entry) => {
7851 entry.get_mut().push(HTLCForwardInfo::AddHTLC(PendingAddHTLCInfo {
7852 prev_short_channel_id, prev_funding_outpoint, prev_channel_id, prev_htlc_id, prev_user_channel_id, forward_info }));
7854 hash_map::Entry::Vacant(entry) => {
7855 if !is_our_scid && forward_info.incoming_amt_msat.is_some() &&
7856 fake_scid::is_valid_intercept(&self.fake_scid_rand_bytes, scid, &self.chain_hash)
7858 let intercept_id = InterceptId(Sha256::hash(&forward_info.incoming_shared_secret).to_byte_array());
7859 let mut pending_intercepts = self.pending_intercepted_htlcs.lock().unwrap();
7860 match pending_intercepts.entry(intercept_id) {
7861 hash_map::Entry::Vacant(entry) => {
7862 new_intercept_events.push_back((events::Event::HTLCIntercepted {
7863 requested_next_hop_scid: scid,
7864 payment_hash: forward_info.payment_hash,
7865 inbound_amount_msat: forward_info.incoming_amt_msat.unwrap(),
7866 expected_outbound_amount_msat: forward_info.outgoing_amt_msat,
7869 entry.insert(PendingAddHTLCInfo {
7870 prev_short_channel_id, prev_funding_outpoint, prev_channel_id, prev_htlc_id, prev_user_channel_id, forward_info });
7872 hash_map::Entry::Occupied(_) => {
7873 let logger = WithContext::from(&self.logger, None, Some(prev_channel_id));
7874 log_info!(logger, "Failed to forward incoming HTLC: detected duplicate intercepted payment over short channel id {}", scid);
7875 let htlc_source = HTLCSource::PreviousHopData(HTLCPreviousHopData {
7876 short_channel_id: prev_short_channel_id,
7877 user_channel_id: Some(prev_user_channel_id),
7878 outpoint: prev_funding_outpoint,
7879 channel_id: prev_channel_id,
7880 htlc_id: prev_htlc_id,
7881 incoming_packet_shared_secret: forward_info.incoming_shared_secret,
7882 phantom_shared_secret: None,
7883 blinded_failure: forward_info.routing.blinded_failure(),
7886 failed_intercept_forwards.push((htlc_source, forward_info.payment_hash,
7887 HTLCFailReason::from_failure_code(0x4000 | 10),
7888 HTLCDestination::InvalidForward { requested_forward_scid: scid },
7893 // We don't want to generate a PendingHTLCsForwardable event if only intercepted
7894 // payments are being processed.
7895 push_forward_event |= forward_htlcs_empty && decode_update_add_htlcs_empty;
7896 entry.insert(vec!(HTLCForwardInfo::AddHTLC(PendingAddHTLCInfo {
7897 prev_short_channel_id, prev_funding_outpoint, prev_channel_id, prev_htlc_id, prev_user_channel_id, forward_info })));
7904 for (htlc_source, payment_hash, failure_reason, destination) in failed_intercept_forwards.drain(..) {
7905 push_forward_event |= self.fail_htlc_backwards_internal_without_forward_event(&htlc_source, &payment_hash, &failure_reason, destination);
7908 if !new_intercept_events.is_empty() {
7909 let mut events = self.pending_events.lock().unwrap();
7910 events.append(&mut new_intercept_events);
7916 fn push_pending_forwards_ev(&self) {
7917 let mut pending_events = self.pending_events.lock().unwrap();
7918 let is_processing_events = self.pending_events_processor.load(Ordering::Acquire);
7919 let num_forward_events = pending_events.iter().filter(|(ev, _)|
7920 if let events::Event::PendingHTLCsForwardable { .. } = ev { true } else { false }
7922 // We only want to push a PendingHTLCsForwardable event if no others are queued. Processing
7923 // events is done in batches and they are not removed until we're done processing each
7924 // batch. Since handling a `PendingHTLCsForwardable` event will call back into the
7925 // `ChannelManager`, we'll still see the original forwarding event not removed. Phantom
7926 // payments will need an additional forwarding event before being claimed to make them look
7927 // real by taking more time.
7928 if (is_processing_events && num_forward_events <= 1) || num_forward_events < 1 {
7929 pending_events.push_back((Event::PendingHTLCsForwardable {
7930 time_forwardable: Duration::from_millis(MIN_HTLC_RELAY_HOLDING_CELL_MILLIS),
7935 /// Checks whether [`ChannelMonitorUpdate`]s generated by the receipt of a remote
7936 /// [`msgs::RevokeAndACK`] should be held for the given channel until some other action
7937 /// completes. Note that this needs to happen in the same [`PeerState`] mutex as any release of
7938 /// the [`ChannelMonitorUpdate`] in question.
7939 fn raa_monitor_updates_held(&self,
7940 actions_blocking_raa_monitor_updates: &BTreeMap<ChannelId, Vec<RAAMonitorUpdateBlockingAction>>,
7941 channel_funding_outpoint: OutPoint, channel_id: ChannelId, counterparty_node_id: PublicKey
7943 actions_blocking_raa_monitor_updates
7944 .get(&channel_id).map(|v| !v.is_empty()).unwrap_or(false)
7945 || self.pending_events.lock().unwrap().iter().any(|(_, action)| {
7946 action == &Some(EventCompletionAction::ReleaseRAAChannelMonitorUpdate {
7947 channel_funding_outpoint,
7949 counterparty_node_id,
7954 #[cfg(any(test, feature = "_test_utils"))]
7955 pub(crate) fn test_raa_monitor_updates_held(&self,
7956 counterparty_node_id: PublicKey, channel_id: ChannelId
7958 let per_peer_state = self.per_peer_state.read().unwrap();
7959 if let Some(peer_state_mtx) = per_peer_state.get(&counterparty_node_id) {
7960 let mut peer_state_lck = peer_state_mtx.lock().unwrap();
7961 let peer_state = &mut *peer_state_lck;
7963 if let Some(chan) = peer_state.channel_by_id.get(&channel_id) {
7964 return self.raa_monitor_updates_held(&peer_state.actions_blocking_raa_monitor_updates,
7965 chan.context().get_funding_txo().unwrap(), channel_id, counterparty_node_id);
7971 fn internal_revoke_and_ack(&self, counterparty_node_id: &PublicKey, msg: &msgs::RevokeAndACK) -> Result<(), MsgHandleErrInternal> {
7972 let htlcs_to_fail = {
7973 let per_peer_state = self.per_peer_state.read().unwrap();
7974 let mut peer_state_lock = per_peer_state.get(counterparty_node_id)
7976 debug_assert!(false);
7977 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
7978 }).map(|mtx| mtx.lock().unwrap())?;
7979 let peer_state = &mut *peer_state_lock;
7980 match peer_state.channel_by_id.entry(msg.channel_id) {
7981 hash_map::Entry::Occupied(mut chan_phase_entry) => {
7982 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
7983 let logger = WithChannelContext::from(&self.logger, &chan.context);
7984 let funding_txo_opt = chan.context.get_funding_txo();
7985 let mon_update_blocked = if let Some(funding_txo) = funding_txo_opt {
7986 self.raa_monitor_updates_held(
7987 &peer_state.actions_blocking_raa_monitor_updates, funding_txo, msg.channel_id,
7988 *counterparty_node_id)
7990 let (htlcs_to_fail, monitor_update_opt) = try_chan_phase_entry!(self,
7991 chan.revoke_and_ack(&msg, &self.fee_estimator, &&logger, mon_update_blocked), chan_phase_entry);
7992 if let Some(monitor_update) = monitor_update_opt {
7993 let funding_txo = funding_txo_opt
7994 .expect("Funding outpoint must have been set for RAA handling to succeed");
7995 handle_new_monitor_update!(self, funding_txo, monitor_update,
7996 peer_state_lock, peer_state, per_peer_state, chan);
8000 return try_chan_phase_entry!(self, Err(ChannelError::Close(
8001 "Got a revoke_and_ack message for an unfunded channel!".into())), chan_phase_entry);
8004 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
8007 self.fail_holding_cell_htlcs(htlcs_to_fail, msg.channel_id, counterparty_node_id);
8011 fn internal_update_fee(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFee) -> Result<(), MsgHandleErrInternal> {
8012 let per_peer_state = self.per_peer_state.read().unwrap();
8013 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
8015 debug_assert!(false);
8016 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
8018 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
8019 let peer_state = &mut *peer_state_lock;
8020 match peer_state.channel_by_id.entry(msg.channel_id) {
8021 hash_map::Entry::Occupied(mut chan_phase_entry) => {
8022 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
8023 let logger = WithChannelContext::from(&self.logger, &chan.context);
8024 try_chan_phase_entry!(self, chan.update_fee(&self.fee_estimator, &msg, &&logger), chan_phase_entry);
8026 return try_chan_phase_entry!(self, Err(ChannelError::Close(
8027 "Got an update_fee message for an unfunded channel!".into())), chan_phase_entry);
8030 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
8035 fn internal_announcement_signatures(&self, counterparty_node_id: &PublicKey, msg: &msgs::AnnouncementSignatures) -> Result<(), MsgHandleErrInternal> {
8036 let per_peer_state = self.per_peer_state.read().unwrap();
8037 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
8039 debug_assert!(false);
8040 MsgHandleErrInternal::send_err_msg_no_close(format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id), msg.channel_id)
8042 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
8043 let peer_state = &mut *peer_state_lock;
8044 match peer_state.channel_by_id.entry(msg.channel_id) {
8045 hash_map::Entry::Occupied(mut chan_phase_entry) => {
8046 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
8047 if !chan.context.is_usable() {
8048 return Err(MsgHandleErrInternal::from_no_close(LightningError{err: "Got an announcement_signatures before we were ready for it".to_owned(), action: msgs::ErrorAction::IgnoreError}));
8051 peer_state.pending_msg_events.push(events::MessageSendEvent::BroadcastChannelAnnouncement {
8052 msg: try_chan_phase_entry!(self, chan.announcement_signatures(
8053 &self.node_signer, self.chain_hash, self.best_block.read().unwrap().height,
8054 msg, &self.default_configuration
8055 ), chan_phase_entry),
8056 // Note that announcement_signatures fails if the channel cannot be announced,
8057 // so get_channel_update_for_broadcast will never fail by the time we get here.
8058 update_msg: Some(self.get_channel_update_for_broadcast(chan).unwrap()),
8061 return try_chan_phase_entry!(self, Err(ChannelError::Close(
8062 "Got an announcement_signatures message for an unfunded channel!".into())), chan_phase_entry);
8065 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close(format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}", counterparty_node_id), msg.channel_id))
8070 /// Returns DoPersist if anything changed, otherwise either SkipPersistNoEvents or an Err.
8071 fn internal_channel_update(&self, counterparty_node_id: &PublicKey, msg: &msgs::ChannelUpdate) -> Result<NotifyOption, MsgHandleErrInternal> {
8072 let (chan_counterparty_node_id, chan_id) = match self.short_to_chan_info.read().unwrap().get(&msg.contents.short_channel_id) {
8073 Some((cp_id, chan_id)) => (cp_id.clone(), chan_id.clone()),
8075 // It's not a local channel
8076 return Ok(NotifyOption::SkipPersistNoEvents)
8079 let per_peer_state = self.per_peer_state.read().unwrap();
8080 let peer_state_mutex_opt = per_peer_state.get(&chan_counterparty_node_id);
8081 if peer_state_mutex_opt.is_none() {
8082 return Ok(NotifyOption::SkipPersistNoEvents)
8084 let mut peer_state_lock = peer_state_mutex_opt.unwrap().lock().unwrap();
8085 let peer_state = &mut *peer_state_lock;
8086 match peer_state.channel_by_id.entry(chan_id) {
8087 hash_map::Entry::Occupied(mut chan_phase_entry) => {
8088 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
8089 if chan.context.get_counterparty_node_id() != *counterparty_node_id {
8090 if chan.context.should_announce() {
8091 // If the announcement is about a channel of ours which is public, some
8092 // other peer may simply be forwarding all its gossip to us. Don't provide
8093 // a scary-looking error message and return Ok instead.
8094 return Ok(NotifyOption::SkipPersistNoEvents);
8096 return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a channel_update for a channel from the wrong node - it shouldn't know about our private channels!".to_owned(), chan_id));
8098 let were_node_one = self.get_our_node_id().serialize()[..] < chan.context.get_counterparty_node_id().serialize()[..];
8099 let msg_from_node_one = msg.contents.flags & 1 == 0;
8100 if were_node_one == msg_from_node_one {
8101 return Ok(NotifyOption::SkipPersistNoEvents);
8103 let logger = WithChannelContext::from(&self.logger, &chan.context);
8104 log_debug!(logger, "Received channel_update {:?} for channel {}.", msg, chan_id);
8105 let did_change = try_chan_phase_entry!(self, chan.channel_update(&msg), chan_phase_entry);
8106 // If nothing changed after applying their update, we don't need to bother
8109 return Ok(NotifyOption::SkipPersistNoEvents);
8113 return try_chan_phase_entry!(self, Err(ChannelError::Close(
8114 "Got a channel_update for an unfunded channel!".into())), chan_phase_entry);
8117 hash_map::Entry::Vacant(_) => return Ok(NotifyOption::SkipPersistNoEvents)
8119 Ok(NotifyOption::DoPersist)
8122 fn internal_channel_reestablish(&self, counterparty_node_id: &PublicKey, msg: &msgs::ChannelReestablish) -> Result<NotifyOption, MsgHandleErrInternal> {
8123 let need_lnd_workaround = {
8124 let per_peer_state = self.per_peer_state.read().unwrap();
8126 let peer_state_mutex = per_peer_state.get(counterparty_node_id)
8128 debug_assert!(false);
8129 MsgHandleErrInternal::send_err_msg_no_close(
8130 format!("Can't find a peer matching the passed counterparty node_id {}", counterparty_node_id),
8134 let logger = WithContext::from(&self.logger, Some(*counterparty_node_id), Some(msg.channel_id));
8135 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
8136 let peer_state = &mut *peer_state_lock;
8137 match peer_state.channel_by_id.entry(msg.channel_id) {
8138 hash_map::Entry::Occupied(mut chan_phase_entry) => {
8139 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
8140 // Currently, we expect all holding cell update_adds to be dropped on peer
8141 // disconnect, so Channel's reestablish will never hand us any holding cell
8142 // freed HTLCs to fail backwards. If in the future we no longer drop pending
8143 // add-HTLCs on disconnect, we may be handed HTLCs to fail backwards here.
8144 let responses = try_chan_phase_entry!(self, chan.channel_reestablish(
8145 msg, &&logger, &self.node_signer, self.chain_hash,
8146 &self.default_configuration, &*self.best_block.read().unwrap()), chan_phase_entry);
8147 let mut channel_update = None;
8148 if let Some(msg) = responses.shutdown_msg {
8149 peer_state.pending_msg_events.push(events::MessageSendEvent::SendShutdown {
8150 node_id: counterparty_node_id.clone(),
8153 } else if chan.context.is_usable() {
8154 // If the channel is in a usable state (ie the channel is not being shut
8155 // down), send a unicast channel_update to our counterparty to make sure
8156 // they have the latest channel parameters.
8157 if let Ok(msg) = self.get_channel_update_for_unicast(chan) {
8158 channel_update = Some(events::MessageSendEvent::SendChannelUpdate {
8159 node_id: chan.context.get_counterparty_node_id(),
8164 let need_lnd_workaround = chan.context.workaround_lnd_bug_4006.take();
8165 let (htlc_forwards, decode_update_add_htlcs) = self.handle_channel_resumption(
8166 &mut peer_state.pending_msg_events, chan, responses.raa, responses.commitment_update, responses.order,
8167 Vec::new(), Vec::new(), None, responses.channel_ready, responses.announcement_sigs);
8168 debug_assert!(htlc_forwards.is_none());
8169 debug_assert!(decode_update_add_htlcs.is_none());
8170 if let Some(upd) = channel_update {
8171 peer_state.pending_msg_events.push(upd);
8175 return try_chan_phase_entry!(self, Err(ChannelError::Close(
8176 "Got a channel_reestablish message for an unfunded channel!".into())), chan_phase_entry);
8179 hash_map::Entry::Vacant(_) => {
8180 log_debug!(logger, "Sending bogus ChannelReestablish for unknown channel {} to force channel closure",
8182 // Unfortunately, lnd doesn't force close on errors
8183 // (https://github.com/lightningnetwork/lnd/blob/abb1e3463f3a83bbb843d5c399869dbe930ad94f/htlcswitch/link.go#L2119).
8184 // One of the few ways to get an lnd counterparty to force close is by
8185 // replicating what they do when restoring static channel backups (SCBs). They
8186 // send an invalid `ChannelReestablish` with `0` commitment numbers and an
8187 // invalid `your_last_per_commitment_secret`.
8189 // Since we received a `ChannelReestablish` for a channel that doesn't exist, we
8190 // can assume it's likely the channel closed from our point of view, but it
8191 // remains open on the counterparty's side. By sending this bogus
8192 // `ChannelReestablish` message now as a response to theirs, we trigger them to
8193 // force close broadcasting their latest state. If the closing transaction from
8194 // our point of view remains unconfirmed, it'll enter a race with the
8195 // counterparty's to-be-broadcast latest commitment transaction.
8196 peer_state.pending_msg_events.push(MessageSendEvent::SendChannelReestablish {
8197 node_id: *counterparty_node_id,
8198 msg: msgs::ChannelReestablish {
8199 channel_id: msg.channel_id,
8200 next_local_commitment_number: 0,
8201 next_remote_commitment_number: 0,
8202 your_last_per_commitment_secret: [1u8; 32],
8203 my_current_per_commitment_point: PublicKey::from_slice(&[2u8; 33]).unwrap(),
8204 next_funding_txid: None,
8207 return Err(MsgHandleErrInternal::send_err_msg_no_close(
8208 format!("Got a message for a channel from the wrong node! No such channel for the passed counterparty_node_id {}",
8209 counterparty_node_id), msg.channel_id)
8215 if let Some(channel_ready_msg) = need_lnd_workaround {
8216 self.internal_channel_ready(counterparty_node_id, &channel_ready_msg)?;
8218 Ok(NotifyOption::SkipPersistHandleEvents)
8221 /// Process pending events from the [`chain::Watch`], returning whether any events were processed.
8222 fn process_pending_monitor_events(&self) -> bool {
8223 debug_assert!(self.total_consistency_lock.try_write().is_err()); // Caller holds read lock
8225 let mut failed_channels = Vec::new();
8226 let mut pending_monitor_events = self.chain_monitor.release_pending_monitor_events();
8227 let has_pending_monitor_events = !pending_monitor_events.is_empty();
8228 for (funding_outpoint, channel_id, mut monitor_events, counterparty_node_id) in pending_monitor_events.drain(..) {
8229 for monitor_event in monitor_events.drain(..) {
8230 match monitor_event {
8231 MonitorEvent::HTLCEvent(htlc_update) => {
8232 let logger = WithContext::from(&self.logger, counterparty_node_id, Some(channel_id));
8233 if let Some(preimage) = htlc_update.payment_preimage {
8234 log_trace!(logger, "Claiming HTLC with preimage {} from our monitor", preimage);
8235 self.claim_funds_internal(htlc_update.source, preimage,
8236 htlc_update.htlc_value_satoshis.map(|v| v * 1000), None, true,
8237 false, counterparty_node_id, funding_outpoint, channel_id, None);
8239 log_trace!(logger, "Failing HTLC with hash {} from our monitor", &htlc_update.payment_hash);
8240 let receiver = HTLCDestination::NextHopChannel { node_id: counterparty_node_id, channel_id };
8241 let reason = HTLCFailReason::from_failure_code(0x4000 | 8);
8242 self.fail_htlc_backwards_internal(&htlc_update.source, &htlc_update.payment_hash, &reason, receiver);
8245 MonitorEvent::HolderForceClosed(_) | MonitorEvent::HolderForceClosedWithInfo { .. } => {
8246 let counterparty_node_id_opt = match counterparty_node_id {
8247 Some(cp_id) => Some(cp_id),
8249 // TODO: Once we can rely on the counterparty_node_id from the
8250 // monitor event, this and the outpoint_to_peer map should be removed.
8251 let outpoint_to_peer = self.outpoint_to_peer.lock().unwrap();
8252 outpoint_to_peer.get(&funding_outpoint).cloned()
8255 if let Some(counterparty_node_id) = counterparty_node_id_opt {
8256 let per_peer_state = self.per_peer_state.read().unwrap();
8257 if let Some(peer_state_mutex) = per_peer_state.get(&counterparty_node_id) {
8258 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
8259 let peer_state = &mut *peer_state_lock;
8260 let pending_msg_events = &mut peer_state.pending_msg_events;
8261 if let hash_map::Entry::Occupied(chan_phase_entry) = peer_state.channel_by_id.entry(channel_id) {
8262 if let ChannelPhase::Funded(mut chan) = remove_channel_phase!(self, chan_phase_entry) {
8263 let reason = if let MonitorEvent::HolderForceClosedWithInfo { reason, .. } = monitor_event {
8266 ClosureReason::HolderForceClosed
8268 failed_channels.push(chan.context.force_shutdown(false, reason.clone()));
8269 if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
8270 let mut pending_broadcast_messages = self.pending_broadcast_messages.lock().unwrap();
8271 pending_broadcast_messages.push(events::MessageSendEvent::BroadcastChannelUpdate {
8275 pending_msg_events.push(events::MessageSendEvent::HandleError {
8276 node_id: chan.context.get_counterparty_node_id(),
8277 action: msgs::ErrorAction::DisconnectPeer {
8278 msg: Some(msgs::ErrorMessage { channel_id: chan.context.channel_id(), data: reason.to_string() })
8286 MonitorEvent::Completed { funding_txo, channel_id, monitor_update_id } => {
8287 self.channel_monitor_updated(&funding_txo, &channel_id, monitor_update_id, counterparty_node_id.as_ref());
8293 for failure in failed_channels.drain(..) {
8294 self.finish_close_channel(failure);
8297 has_pending_monitor_events
8300 /// In chanmon_consistency_target, we'd like to be able to restore monitor updating without
8301 /// handling all pending events (i.e. not PendingHTLCsForwardable). Thus, we expose monitor
8302 /// update events as a separate process method here.
8304 pub fn process_monitor_events(&self) {
8305 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
8306 self.process_pending_monitor_events();
8309 /// Check the holding cell in each channel and free any pending HTLCs in them if possible.
8310 /// Returns whether there were any updates such as if pending HTLCs were freed or a monitor
8311 /// update was applied.
8312 fn check_free_holding_cells(&self) -> bool {
8313 let mut has_monitor_update = false;
8314 let mut failed_htlcs = Vec::new();
8316 // Walk our list of channels and find any that need to update. Note that when we do find an
8317 // update, if it includes actions that must be taken afterwards, we have to drop the
8318 // per-peer state lock as well as the top level per_peer_state lock. Thus, we loop until we
8319 // manage to go through all our peers without finding a single channel to update.
8321 let per_peer_state = self.per_peer_state.read().unwrap();
8322 for (_cp_id, peer_state_mutex) in per_peer_state.iter() {
8324 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
8325 let peer_state: &mut PeerState<_> = &mut *peer_state_lock;
8326 for (channel_id, chan) in peer_state.channel_by_id.iter_mut().filter_map(
8327 |(chan_id, phase)| if let ChannelPhase::Funded(chan) = phase { Some((chan_id, chan)) } else { None }
8329 let counterparty_node_id = chan.context.get_counterparty_node_id();
8330 let funding_txo = chan.context.get_funding_txo();
8331 let (monitor_opt, holding_cell_failed_htlcs) =
8332 chan.maybe_free_holding_cell_htlcs(&self.fee_estimator, &&WithChannelContext::from(&self.logger, &chan.context));
8333 if !holding_cell_failed_htlcs.is_empty() {
8334 failed_htlcs.push((holding_cell_failed_htlcs, *channel_id, counterparty_node_id));
8336 if let Some(monitor_update) = monitor_opt {
8337 has_monitor_update = true;
8339 handle_new_monitor_update!(self, funding_txo.unwrap(), monitor_update,
8340 peer_state_lock, peer_state, per_peer_state, chan);
8341 continue 'peer_loop;
8350 let has_update = has_monitor_update || !failed_htlcs.is_empty();
8351 for (failures, channel_id, counterparty_node_id) in failed_htlcs.drain(..) {
8352 self.fail_holding_cell_htlcs(failures, channel_id, &counterparty_node_id);
8358 /// When a call to a [`ChannelSigner`] method returns an error, this indicates that the signer
8359 /// is (temporarily) unavailable, and the operation should be retried later.
8361 /// This method allows for that retry - either checking for any signer-pending messages to be
8362 /// attempted in every channel, or in the specifically provided channel.
8364 /// [`ChannelSigner`]: crate::sign::ChannelSigner
8365 #[cfg(async_signing)]
8366 pub fn signer_unblocked(&self, channel_opt: Option<(PublicKey, ChannelId)>) {
8367 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
8369 let unblock_chan = |phase: &mut ChannelPhase<SP>, pending_msg_events: &mut Vec<MessageSendEvent>| {
8370 let node_id = phase.context().get_counterparty_node_id();
8372 ChannelPhase::Funded(chan) => {
8373 let msgs = chan.signer_maybe_unblocked(&self.logger);
8374 if let Some(updates) = msgs.commitment_update {
8375 pending_msg_events.push(events::MessageSendEvent::UpdateHTLCs {
8380 if let Some(msg) = msgs.funding_signed {
8381 pending_msg_events.push(events::MessageSendEvent::SendFundingSigned {
8386 if let Some(msg) = msgs.channel_ready {
8387 send_channel_ready!(self, pending_msg_events, chan, msg);
8390 ChannelPhase::UnfundedOutboundV1(chan) => {
8391 if let Some(msg) = chan.signer_maybe_unblocked(&self.logger) {
8392 pending_msg_events.push(events::MessageSendEvent::SendFundingCreated {
8398 ChannelPhase::UnfundedInboundV1(_) => {},
8402 let per_peer_state = self.per_peer_state.read().unwrap();
8403 if let Some((counterparty_node_id, channel_id)) = channel_opt {
8404 if let Some(peer_state_mutex) = per_peer_state.get(&counterparty_node_id) {
8405 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
8406 let peer_state = &mut *peer_state_lock;
8407 if let Some(chan) = peer_state.channel_by_id.get_mut(&channel_id) {
8408 unblock_chan(chan, &mut peer_state.pending_msg_events);
8412 for (_cp_id, peer_state_mutex) in per_peer_state.iter() {
8413 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
8414 let peer_state = &mut *peer_state_lock;
8415 for (_, chan) in peer_state.channel_by_id.iter_mut() {
8416 unblock_chan(chan, &mut peer_state.pending_msg_events);
8422 /// Check whether any channels have finished removing all pending updates after a shutdown
8423 /// exchange and can now send a closing_signed.
8424 /// Returns whether any closing_signed messages were generated.
8425 fn maybe_generate_initial_closing_signed(&self) -> bool {
8426 let mut handle_errors: Vec<(PublicKey, Result<(), _>)> = Vec::new();
8427 let mut has_update = false;
8428 let mut shutdown_results = Vec::new();
8430 let per_peer_state = self.per_peer_state.read().unwrap();
8432 for (_cp_id, peer_state_mutex) in per_peer_state.iter() {
8433 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
8434 let peer_state = &mut *peer_state_lock;
8435 let pending_msg_events = &mut peer_state.pending_msg_events;
8436 peer_state.channel_by_id.retain(|channel_id, phase| {
8438 ChannelPhase::Funded(chan) => {
8439 let logger = WithChannelContext::from(&self.logger, &chan.context);
8440 match chan.maybe_propose_closing_signed(&self.fee_estimator, &&logger) {
8441 Ok((msg_opt, tx_opt, shutdown_result_opt)) => {
8442 if let Some(msg) = msg_opt {
8444 pending_msg_events.push(events::MessageSendEvent::SendClosingSigned {
8445 node_id: chan.context.get_counterparty_node_id(), msg,
8448 debug_assert_eq!(shutdown_result_opt.is_some(), chan.is_shutdown());
8449 if let Some(shutdown_result) = shutdown_result_opt {
8450 shutdown_results.push(shutdown_result);
8452 if let Some(tx) = tx_opt {
8453 // We're done with this channel. We got a closing_signed and sent back
8454 // a closing_signed with a closing transaction to broadcast.
8455 if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
8456 let mut pending_broadcast_messages = self.pending_broadcast_messages.lock().unwrap();
8457 pending_broadcast_messages.push(events::MessageSendEvent::BroadcastChannelUpdate {
8462 log_info!(logger, "Broadcasting {}", log_tx!(tx));
8463 self.tx_broadcaster.broadcast_transactions(&[&tx]);
8464 update_maps_on_chan_removal!(self, &chan.context);
8470 let (close_channel, res) = convert_chan_phase_err!(self, e, chan, channel_id, FUNDED_CHANNEL);
8471 handle_errors.push((chan.context.get_counterparty_node_id(), Err(res)));
8476 _ => true, // Retain unfunded channels if present.
8482 for (counterparty_node_id, err) in handle_errors.drain(..) {
8483 let _ = handle_error!(self, err, counterparty_node_id);
8486 for shutdown_result in shutdown_results.drain(..) {
8487 self.finish_close_channel(shutdown_result);
8493 /// Handle a list of channel failures during a block_connected or block_disconnected call,
8494 /// pushing the channel monitor update (if any) to the background events queue and removing the
8496 fn handle_init_event_channel_failures(&self, mut failed_channels: Vec<ShutdownResult>) {
8497 for mut failure in failed_channels.drain(..) {
8498 // Either a commitment transactions has been confirmed on-chain or
8499 // Channel::block_disconnected detected that the funding transaction has been
8500 // reorganized out of the main chain.
8501 // We cannot broadcast our latest local state via monitor update (as
8502 // Channel::force_shutdown tries to make us do) as we may still be in initialization,
8503 // so we track the update internally and handle it when the user next calls
8504 // timer_tick_occurred, guaranteeing we're running normally.
8505 if let Some((counterparty_node_id, funding_txo, channel_id, update)) = failure.monitor_update.take() {
8506 assert_eq!(update.updates.len(), 1);
8507 if let ChannelMonitorUpdateStep::ChannelForceClosed { should_broadcast } = update.updates[0] {
8508 assert!(should_broadcast);
8509 } else { unreachable!(); }
8510 self.pending_background_events.lock().unwrap().push(
8511 BackgroundEvent::MonitorUpdateRegeneratedOnStartup {
8512 counterparty_node_id, funding_txo, update, channel_id,
8515 self.finish_close_channel(failure);
8520 macro_rules! create_offer_builder { ($self: ident, $builder: ty) => {
8521 /// Creates an [`OfferBuilder`] such that the [`Offer`] it builds is recognized by the
8522 /// [`ChannelManager`] when handling [`InvoiceRequest`] messages for the offer. The offer will
8523 /// not have an expiration unless otherwise set on the builder.
8527 /// Uses [`MessageRouter::create_blinded_paths`] to construct a [`BlindedPath`] for the offer.
8528 /// However, if one is not found, uses a one-hop [`BlindedPath`] with
8529 /// [`ChannelManager::get_our_node_id`] as the introduction node instead. In the latter case,
8530 /// the node must be announced, otherwise, there is no way to find a path to the introduction in
8531 /// order to send the [`InvoiceRequest`].
8533 /// Also, uses a derived signing pubkey in the offer for recipient privacy.
8537 /// Requires a direct connection to the introduction node in the responding [`InvoiceRequest`]'s
8542 /// Errors if the parameterized [`Router`] is unable to create a blinded path for the offer.
8544 /// This is not exported to bindings users as builder patterns don't map outside of move semantics.
8546 /// [`Offer`]: crate::offers::offer::Offer
8547 /// [`InvoiceRequest`]: crate::offers::invoice_request::InvoiceRequest
8548 pub fn create_offer_builder(
8549 &$self, description: String
8550 ) -> Result<$builder, Bolt12SemanticError> {
8551 let node_id = $self.get_our_node_id();
8552 let expanded_key = &$self.inbound_payment_key;
8553 let entropy = &*$self.entropy_source;
8554 let secp_ctx = &$self.secp_ctx;
8556 let path = $self.create_blinded_path().map_err(|_| Bolt12SemanticError::MissingPaths)?;
8557 let builder = OfferBuilder::deriving_signing_pubkey(
8558 description, node_id, expanded_key, entropy, secp_ctx
8560 .chain_hash($self.chain_hash)
8567 macro_rules! create_refund_builder { ($self: ident, $builder: ty) => {
8568 /// Creates a [`RefundBuilder`] such that the [`Refund`] it builds is recognized by the
8569 /// [`ChannelManager`] when handling [`Bolt12Invoice`] messages for the refund.
8573 /// The provided `payment_id` is used to ensure that only one invoice is paid for the refund.
8574 /// See [Avoiding Duplicate Payments] for other requirements once the payment has been sent.
8576 /// The builder will have the provided expiration set. Any changes to the expiration on the
8577 /// returned builder will not be honored by [`ChannelManager`]. For `no-std`, the highest seen
8578 /// block time minus two hours is used for the current time when determining if the refund has
8581 /// To revoke the refund, use [`ChannelManager::abandon_payment`] prior to receiving the
8582 /// invoice. If abandoned, or an invoice isn't received before expiration, the payment will fail
8583 /// with an [`Event::InvoiceRequestFailed`].
8585 /// If `max_total_routing_fee_msat` is not specified, The default from
8586 /// [`RouteParameters::from_payment_params_and_value`] is applied.
8590 /// Uses [`MessageRouter::create_blinded_paths`] to construct a [`BlindedPath`] for the refund.
8591 /// However, if one is not found, uses a one-hop [`BlindedPath`] with
8592 /// [`ChannelManager::get_our_node_id`] as the introduction node instead. In the latter case,
8593 /// the node must be announced, otherwise, there is no way to find a path to the introduction in
8594 /// order to send the [`Bolt12Invoice`].
8596 /// Also, uses a derived payer id in the refund for payer privacy.
8600 /// Requires a direct connection to an introduction node in the responding
8601 /// [`Bolt12Invoice::payment_paths`].
8606 /// - a duplicate `payment_id` is provided given the caveats in the aforementioned link,
8607 /// - `amount_msats` is invalid, or
8608 /// - the parameterized [`Router`] is unable to create a blinded path for the refund.
8610 /// This is not exported to bindings users as builder patterns don't map outside of move semantics.
8612 /// [`Refund`]: crate::offers::refund::Refund
8613 /// [`Bolt12Invoice`]: crate::offers::invoice::Bolt12Invoice
8614 /// [`Bolt12Invoice::payment_paths`]: crate::offers::invoice::Bolt12Invoice::payment_paths
8615 /// [Avoiding Duplicate Payments]: #avoiding-duplicate-payments
8616 pub fn create_refund_builder(
8617 &$self, description: String, amount_msats: u64, absolute_expiry: Duration,
8618 payment_id: PaymentId, retry_strategy: Retry, max_total_routing_fee_msat: Option<u64>
8619 ) -> Result<$builder, Bolt12SemanticError> {
8620 let node_id = $self.get_our_node_id();
8621 let expanded_key = &$self.inbound_payment_key;
8622 let entropy = &*$self.entropy_source;
8623 let secp_ctx = &$self.secp_ctx;
8625 let path = $self.create_blinded_path().map_err(|_| Bolt12SemanticError::MissingPaths)?;
8626 let builder = RefundBuilder::deriving_payer_id(
8627 description, node_id, expanded_key, entropy, secp_ctx, amount_msats, payment_id
8629 .chain_hash($self.chain_hash)
8630 .absolute_expiry(absolute_expiry)
8633 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop($self);
8635 let expiration = StaleExpiration::AbsoluteTimeout(absolute_expiry);
8636 $self.pending_outbound_payments
8637 .add_new_awaiting_invoice(
8638 payment_id, expiration, retry_strategy, max_total_routing_fee_msat,
8640 .map_err(|_| Bolt12SemanticError::DuplicatePaymentId)?;
8646 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref> ChannelManager<M, T, ES, NS, SP, F, R, L>
8648 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
8649 T::Target: BroadcasterInterface,
8650 ES::Target: EntropySource,
8651 NS::Target: NodeSigner,
8652 SP::Target: SignerProvider,
8653 F::Target: FeeEstimator,
8657 #[cfg(not(c_bindings))]
8658 create_offer_builder!(self, OfferBuilder<DerivedMetadata, secp256k1::All>);
8659 #[cfg(not(c_bindings))]
8660 create_refund_builder!(self, RefundBuilder<secp256k1::All>);
8663 create_offer_builder!(self, OfferWithDerivedMetadataBuilder);
8665 create_refund_builder!(self, RefundMaybeWithDerivedMetadataBuilder);
8667 /// Pays for an [`Offer`] using the given parameters by creating an [`InvoiceRequest`] and
8668 /// enqueuing it to be sent via an onion message. [`ChannelManager`] will pay the actual
8669 /// [`Bolt12Invoice`] once it is received.
8671 /// Uses [`InvoiceRequestBuilder`] such that the [`InvoiceRequest`] it builds is recognized by
8672 /// the [`ChannelManager`] when handling a [`Bolt12Invoice`] message in response to the request.
8673 /// The optional parameters are used in the builder, if `Some`:
8674 /// - `quantity` for [`InvoiceRequest::quantity`] which must be set if
8675 /// [`Offer::expects_quantity`] is `true`.
8676 /// - `amount_msats` if overpaying what is required for the given `quantity` is desired, and
8677 /// - `payer_note` for [`InvoiceRequest::payer_note`].
8679 /// If `max_total_routing_fee_msat` is not specified, The default from
8680 /// [`RouteParameters::from_payment_params_and_value`] is applied.
8684 /// The provided `payment_id` is used to ensure that only one invoice is paid for the request
8685 /// when received. See [Avoiding Duplicate Payments] for other requirements once the payment has
8688 /// To revoke the request, use [`ChannelManager::abandon_payment`] prior to receiving the
8689 /// invoice. If abandoned, or an invoice isn't received in a reasonable amount of time, the
8690 /// payment will fail with an [`Event::InvoiceRequestFailed`].
8694 /// Uses a one-hop [`BlindedPath`] for the reply path with [`ChannelManager::get_our_node_id`]
8695 /// as the introduction node and a derived payer id for payer privacy. As such, currently, the
8696 /// node must be announced. Otherwise, there is no way to find a path to the introduction node
8697 /// in order to send the [`Bolt12Invoice`].
8701 /// Requires a direct connection to an introduction node in [`Offer::paths`] or to
8702 /// [`Offer::signing_pubkey`], if empty. A similar restriction applies to the responding
8703 /// [`Bolt12Invoice::payment_paths`].
8708 /// - a duplicate `payment_id` is provided given the caveats in the aforementioned link,
8709 /// - the provided parameters are invalid for the offer,
8710 /// - the offer is for an unsupported chain, or
8711 /// - the parameterized [`Router`] is unable to create a blinded reply path for the invoice
8714 /// [`InvoiceRequest`]: crate::offers::invoice_request::InvoiceRequest
8715 /// [`InvoiceRequest::quantity`]: crate::offers::invoice_request::InvoiceRequest::quantity
8716 /// [`InvoiceRequest::payer_note`]: crate::offers::invoice_request::InvoiceRequest::payer_note
8717 /// [`InvoiceRequestBuilder`]: crate::offers::invoice_request::InvoiceRequestBuilder
8718 /// [`Bolt12Invoice`]: crate::offers::invoice::Bolt12Invoice
8719 /// [`Bolt12Invoice::payment_paths`]: crate::offers::invoice::Bolt12Invoice::payment_paths
8720 /// [Avoiding Duplicate Payments]: #avoiding-duplicate-payments
8721 pub fn pay_for_offer(
8722 &self, offer: &Offer, quantity: Option<u64>, amount_msats: Option<u64>,
8723 payer_note: Option<String>, payment_id: PaymentId, retry_strategy: Retry,
8724 max_total_routing_fee_msat: Option<u64>
8725 ) -> Result<(), Bolt12SemanticError> {
8726 let expanded_key = &self.inbound_payment_key;
8727 let entropy = &*self.entropy_source;
8728 let secp_ctx = &self.secp_ctx;
8730 let builder: InvoiceRequestBuilder<DerivedPayerId, secp256k1::All> = offer
8731 .request_invoice_deriving_payer_id(expanded_key, entropy, secp_ctx, payment_id)?
8733 let builder = builder.chain_hash(self.chain_hash)?;
8735 let builder = match quantity {
8737 Some(quantity) => builder.quantity(quantity)?,
8739 let builder = match amount_msats {
8741 Some(amount_msats) => builder.amount_msats(amount_msats)?,
8743 let builder = match payer_note {
8745 Some(payer_note) => builder.payer_note(payer_note),
8747 let invoice_request = builder.build_and_sign()?;
8748 let reply_path = self.create_blinded_path().map_err(|_| Bolt12SemanticError::MissingPaths)?;
8750 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
8752 let expiration = StaleExpiration::TimerTicks(1);
8753 self.pending_outbound_payments
8754 .add_new_awaiting_invoice(
8755 payment_id, expiration, retry_strategy, max_total_routing_fee_msat
8757 .map_err(|_| Bolt12SemanticError::DuplicatePaymentId)?;
8759 let mut pending_offers_messages = self.pending_offers_messages.lock().unwrap();
8760 if offer.paths().is_empty() {
8761 let message = new_pending_onion_message(
8762 OffersMessage::InvoiceRequest(invoice_request),
8763 Destination::Node(offer.signing_pubkey()),
8766 pending_offers_messages.push(message);
8768 // Send as many invoice requests as there are paths in the offer (with an upper bound).
8769 // Using only one path could result in a failure if the path no longer exists. But only
8770 // one invoice for a given payment id will be paid, even if more than one is received.
8771 const REQUEST_LIMIT: usize = 10;
8772 for path in offer.paths().into_iter().take(REQUEST_LIMIT) {
8773 let message = new_pending_onion_message(
8774 OffersMessage::InvoiceRequest(invoice_request.clone()),
8775 Destination::BlindedPath(path.clone()),
8776 Some(reply_path.clone()),
8778 pending_offers_messages.push(message);
8785 /// Creates a [`Bolt12Invoice`] for a [`Refund`] and enqueues it to be sent via an onion
8788 /// The resulting invoice uses a [`PaymentHash`] recognized by the [`ChannelManager`] and a
8789 /// [`BlindedPath`] containing the [`PaymentSecret`] needed to reconstruct the corresponding
8790 /// [`PaymentPreimage`]. It is returned purely for informational purposes.
8794 /// Requires a direct connection to an introduction node in [`Refund::paths`] or to
8795 /// [`Refund::payer_id`], if empty. This request is best effort; an invoice will be sent to each
8796 /// node meeting the aforementioned criteria, but there's no guarantee that they will be
8797 /// received and no retries will be made.
8802 /// - the refund is for an unsupported chain, or
8803 /// - the parameterized [`Router`] is unable to create a blinded payment path or reply path for
8806 /// [`Bolt12Invoice`]: crate::offers::invoice::Bolt12Invoice
8807 pub fn request_refund_payment(
8808 &self, refund: &Refund
8809 ) -> Result<Bolt12Invoice, Bolt12SemanticError> {
8810 let expanded_key = &self.inbound_payment_key;
8811 let entropy = &*self.entropy_source;
8812 let secp_ctx = &self.secp_ctx;
8814 let amount_msats = refund.amount_msats();
8815 let relative_expiry = DEFAULT_RELATIVE_EXPIRY.as_secs() as u32;
8817 if refund.chain() != self.chain_hash {
8818 return Err(Bolt12SemanticError::UnsupportedChain);
8821 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
8823 match self.create_inbound_payment(Some(amount_msats), relative_expiry, None) {
8824 Ok((payment_hash, payment_secret)) => {
8825 let payment_context = PaymentContext::Bolt12Refund(Bolt12RefundContext {});
8826 let payment_paths = self.create_blinded_payment_paths(
8827 amount_msats, payment_secret, payment_context
8829 .map_err(|_| Bolt12SemanticError::MissingPaths)?;
8831 #[cfg(feature = "std")]
8832 let builder = refund.respond_using_derived_keys(
8833 payment_paths, payment_hash, expanded_key, entropy
8835 #[cfg(not(feature = "std"))]
8836 let created_at = Duration::from_secs(
8837 self.highest_seen_timestamp.load(Ordering::Acquire) as u64
8839 #[cfg(not(feature = "std"))]
8840 let builder = refund.respond_using_derived_keys_no_std(
8841 payment_paths, payment_hash, created_at, expanded_key, entropy
8843 let builder: InvoiceBuilder<DerivedSigningPubkey> = builder.into();
8844 let invoice = builder.allow_mpp().build_and_sign(secp_ctx)?;
8845 let reply_path = self.create_blinded_path()
8846 .map_err(|_| Bolt12SemanticError::MissingPaths)?;
8848 let mut pending_offers_messages = self.pending_offers_messages.lock().unwrap();
8849 if refund.paths().is_empty() {
8850 let message = new_pending_onion_message(
8851 OffersMessage::Invoice(invoice.clone()),
8852 Destination::Node(refund.payer_id()),
8855 pending_offers_messages.push(message);
8857 for path in refund.paths() {
8858 let message = new_pending_onion_message(
8859 OffersMessage::Invoice(invoice.clone()),
8860 Destination::BlindedPath(path.clone()),
8861 Some(reply_path.clone()),
8863 pending_offers_messages.push(message);
8869 Err(()) => Err(Bolt12SemanticError::InvalidAmount),
8873 /// Gets a payment secret and payment hash for use in an invoice given to a third party wishing
8876 /// This differs from [`create_inbound_payment_for_hash`] only in that it generates the
8877 /// [`PaymentHash`] and [`PaymentPreimage`] for you.
8879 /// The [`PaymentPreimage`] will ultimately be returned to you in the [`PaymentClaimable`] event, which
8880 /// will have the [`PaymentClaimable::purpose`] return `Some` for [`PaymentPurpose::preimage`]. That
8881 /// should then be passed directly to [`claim_funds`].
8883 /// See [`create_inbound_payment_for_hash`] for detailed documentation on behavior and requirements.
8885 /// Note that a malicious eavesdropper can intuit whether an inbound payment was created by
8886 /// `create_inbound_payment` or `create_inbound_payment_for_hash` based on runtime.
8890 /// If you register an inbound payment with this method, then serialize the `ChannelManager`, then
8891 /// deserialize it with a node running 0.0.103 and earlier, the payment will fail to be received.
8893 /// Errors if `min_value_msat` is greater than total bitcoin supply.
8895 /// If `min_final_cltv_expiry_delta` is set to some value, then the payment will not be receivable
8896 /// on versions of LDK prior to 0.0.114.
8898 /// [`claim_funds`]: Self::claim_funds
8899 /// [`PaymentClaimable`]: events::Event::PaymentClaimable
8900 /// [`PaymentClaimable::purpose`]: events::Event::PaymentClaimable::purpose
8901 /// [`PaymentPurpose::preimage`]: events::PaymentPurpose::preimage
8902 /// [`create_inbound_payment_for_hash`]: Self::create_inbound_payment_for_hash
8903 pub fn create_inbound_payment(&self, min_value_msat: Option<u64>, invoice_expiry_delta_secs: u32,
8904 min_final_cltv_expiry_delta: Option<u16>) -> Result<(PaymentHash, PaymentSecret), ()> {
8905 inbound_payment::create(&self.inbound_payment_key, min_value_msat, invoice_expiry_delta_secs,
8906 &self.entropy_source, self.highest_seen_timestamp.load(Ordering::Acquire) as u64,
8907 min_final_cltv_expiry_delta)
8910 /// Gets a [`PaymentSecret`] for a given [`PaymentHash`], for which the payment preimage is
8911 /// stored external to LDK.
8913 /// A [`PaymentClaimable`] event will only be generated if the [`PaymentSecret`] matches a
8914 /// payment secret fetched via this method or [`create_inbound_payment`], and which is at least
8915 /// the `min_value_msat` provided here, if one is provided.
8917 /// The [`PaymentHash`] (and corresponding [`PaymentPreimage`]) should be globally unique, though
8918 /// note that LDK will not stop you from registering duplicate payment hashes for inbound
8921 /// `min_value_msat` should be set if the invoice being generated contains a value. Any payment
8922 /// received for the returned [`PaymentHash`] will be required to be at least `min_value_msat`
8923 /// before a [`PaymentClaimable`] event will be generated, ensuring that we do not provide the
8924 /// sender "proof-of-payment" unless they have paid the required amount.
8926 /// `invoice_expiry_delta_secs` describes the number of seconds that the invoice is valid for
8927 /// in excess of the current time. This should roughly match the expiry time set in the invoice.
8928 /// After this many seconds, we will remove the inbound payment, resulting in any attempts to
8929 /// pay the invoice failing. The BOLT spec suggests 3,600 secs as a default validity time for
8930 /// invoices when no timeout is set.
8932 /// Note that we use block header time to time-out pending inbound payments (with some margin
8933 /// to compensate for the inaccuracy of block header timestamps). Thus, in practice we will
8934 /// accept a payment and generate a [`PaymentClaimable`] event for some time after the expiry.
8935 /// If you need exact expiry semantics, you should enforce them upon receipt of
8936 /// [`PaymentClaimable`].
8938 /// Note that invoices generated for inbound payments should have their `min_final_cltv_expiry_delta`
8939 /// set to at least [`MIN_FINAL_CLTV_EXPIRY_DELTA`].
8941 /// Note that a malicious eavesdropper can intuit whether an inbound payment was created by
8942 /// `create_inbound_payment` or `create_inbound_payment_for_hash` based on runtime.
8946 /// If you register an inbound payment with this method, then serialize the `ChannelManager`, then
8947 /// deserialize it with a node running 0.0.103 and earlier, the payment will fail to be received.
8949 /// Errors if `min_value_msat` is greater than total bitcoin supply.
8951 /// If `min_final_cltv_expiry_delta` is set to some value, then the payment will not be receivable
8952 /// on versions of LDK prior to 0.0.114.
8954 /// [`create_inbound_payment`]: Self::create_inbound_payment
8955 /// [`PaymentClaimable`]: events::Event::PaymentClaimable
8956 pub fn create_inbound_payment_for_hash(&self, payment_hash: PaymentHash, min_value_msat: Option<u64>,
8957 invoice_expiry_delta_secs: u32, min_final_cltv_expiry: Option<u16>) -> Result<PaymentSecret, ()> {
8958 inbound_payment::create_from_hash(&self.inbound_payment_key, min_value_msat, payment_hash,
8959 invoice_expiry_delta_secs, self.highest_seen_timestamp.load(Ordering::Acquire) as u64,
8960 min_final_cltv_expiry)
8963 /// Gets an LDK-generated payment preimage from a payment hash and payment secret that were
8964 /// previously returned from [`create_inbound_payment`].
8966 /// [`create_inbound_payment`]: Self::create_inbound_payment
8967 pub fn get_payment_preimage(&self, payment_hash: PaymentHash, payment_secret: PaymentSecret) -> Result<PaymentPreimage, APIError> {
8968 inbound_payment::get_payment_preimage(payment_hash, payment_secret, &self.inbound_payment_key)
8971 /// Creates a blinded path by delegating to [`MessageRouter::create_blinded_paths`].
8973 /// Errors if the `MessageRouter` errors or returns an empty `Vec`.
8974 fn create_blinded_path(&self) -> Result<BlindedPath, ()> {
8975 let recipient = self.get_our_node_id();
8976 let secp_ctx = &self.secp_ctx;
8978 let peers = self.per_peer_state.read().unwrap()
8980 .filter(|(_, peer)| peer.lock().unwrap().latest_features.supports_onion_messages())
8981 .map(|(node_id, _)| *node_id)
8982 .collect::<Vec<_>>();
8985 .create_blinded_paths(recipient, peers, secp_ctx)
8986 .and_then(|paths| paths.into_iter().next().ok_or(()))
8989 /// Creates multi-hop blinded payment paths for the given `amount_msats` by delegating to
8990 /// [`Router::create_blinded_payment_paths`].
8991 fn create_blinded_payment_paths(
8992 &self, amount_msats: u64, payment_secret: PaymentSecret, payment_context: PaymentContext
8993 ) -> Result<Vec<(BlindedPayInfo, BlindedPath)>, ()> {
8994 let secp_ctx = &self.secp_ctx;
8996 let first_hops = self.list_usable_channels();
8997 let payee_node_id = self.get_our_node_id();
8998 let max_cltv_expiry = self.best_block.read().unwrap().height + CLTV_FAR_FAR_AWAY
8999 + LATENCY_GRACE_PERIOD_BLOCKS;
9000 let payee_tlvs = ReceiveTlvs {
9002 payment_constraints: PaymentConstraints {
9004 htlc_minimum_msat: 1,
9008 self.router.create_blinded_payment_paths(
9009 payee_node_id, first_hops, payee_tlvs, amount_msats, secp_ctx
9013 /// Gets a fake short channel id for use in receiving [phantom node payments]. These fake scids
9014 /// are used when constructing the phantom invoice's route hints.
9016 /// [phantom node payments]: crate::sign::PhantomKeysManager
9017 pub fn get_phantom_scid(&self) -> u64 {
9018 let best_block_height = self.best_block.read().unwrap().height;
9019 let short_to_chan_info = self.short_to_chan_info.read().unwrap();
9021 let scid_candidate = fake_scid::Namespace::Phantom.get_fake_scid(best_block_height, &self.chain_hash, &self.fake_scid_rand_bytes, &self.entropy_source);
9022 // Ensure the generated scid doesn't conflict with a real channel.
9023 match short_to_chan_info.get(&scid_candidate) {
9024 Some(_) => continue,
9025 None => return scid_candidate
9030 /// Gets route hints for use in receiving [phantom node payments].
9032 /// [phantom node payments]: crate::sign::PhantomKeysManager
9033 pub fn get_phantom_route_hints(&self) -> PhantomRouteHints {
9035 channels: self.list_usable_channels(),
9036 phantom_scid: self.get_phantom_scid(),
9037 real_node_pubkey: self.get_our_node_id(),
9041 /// Gets a fake short channel id for use in receiving intercepted payments. These fake scids are
9042 /// used when constructing the route hints for HTLCs intended to be intercepted. See
9043 /// [`ChannelManager::forward_intercepted_htlc`].
9045 /// Note that this method is not guaranteed to return unique values, you may need to call it a few
9046 /// times to get a unique scid.
9047 pub fn get_intercept_scid(&self) -> u64 {
9048 let best_block_height = self.best_block.read().unwrap().height;
9049 let short_to_chan_info = self.short_to_chan_info.read().unwrap();
9051 let scid_candidate = fake_scid::Namespace::Intercept.get_fake_scid(best_block_height, &self.chain_hash, &self.fake_scid_rand_bytes, &self.entropy_source);
9052 // Ensure the generated scid doesn't conflict with a real channel.
9053 if short_to_chan_info.contains_key(&scid_candidate) { continue }
9054 return scid_candidate
9058 /// Gets inflight HTLC information by processing pending outbound payments that are in
9059 /// our channels. May be used during pathfinding to account for in-use channel liquidity.
9060 pub fn compute_inflight_htlcs(&self) -> InFlightHtlcs {
9061 let mut inflight_htlcs = InFlightHtlcs::new();
9063 let per_peer_state = self.per_peer_state.read().unwrap();
9064 for (_cp_id, peer_state_mutex) in per_peer_state.iter() {
9065 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
9066 let peer_state = &mut *peer_state_lock;
9067 for chan in peer_state.channel_by_id.values().filter_map(
9068 |phase| if let ChannelPhase::Funded(chan) = phase { Some(chan) } else { None }
9070 for (htlc_source, _) in chan.inflight_htlc_sources() {
9071 if let HTLCSource::OutboundRoute { path, .. } = htlc_source {
9072 inflight_htlcs.process_path(path, self.get_our_node_id());
9081 #[cfg(any(test, feature = "_test_utils"))]
9082 pub fn get_and_clear_pending_events(&self) -> Vec<events::Event> {
9083 let events = core::cell::RefCell::new(Vec::new());
9084 let event_handler = |event: events::Event| events.borrow_mut().push(event);
9085 self.process_pending_events(&event_handler);
9089 #[cfg(feature = "_test_utils")]
9090 pub fn push_pending_event(&self, event: events::Event) {
9091 let mut events = self.pending_events.lock().unwrap();
9092 events.push_back((event, None));
9096 pub fn pop_pending_event(&self) -> Option<events::Event> {
9097 let mut events = self.pending_events.lock().unwrap();
9098 events.pop_front().map(|(e, _)| e)
9102 pub fn has_pending_payments(&self) -> bool {
9103 self.pending_outbound_payments.has_pending_payments()
9107 pub fn clear_pending_payments(&self) {
9108 self.pending_outbound_payments.clear_pending_payments()
9111 /// When something which was blocking a channel from updating its [`ChannelMonitor`] (e.g. an
9112 /// [`Event`] being handled) completes, this should be called to restore the channel to normal
9113 /// operation. It will double-check that nothing *else* is also blocking the same channel from
9114 /// making progress and then let any blocked [`ChannelMonitorUpdate`]s fly.
9115 fn handle_monitor_update_release(&self, counterparty_node_id: PublicKey,
9116 channel_funding_outpoint: OutPoint, channel_id: ChannelId,
9117 mut completed_blocker: Option<RAAMonitorUpdateBlockingAction>) {
9119 let logger = WithContext::from(
9120 &self.logger, Some(counterparty_node_id), Some(channel_id),
9123 let per_peer_state = self.per_peer_state.read().unwrap();
9124 if let Some(peer_state_mtx) = per_peer_state.get(&counterparty_node_id) {
9125 let mut peer_state_lck = peer_state_mtx.lock().unwrap();
9126 let peer_state = &mut *peer_state_lck;
9127 if let Some(blocker) = completed_blocker.take() {
9128 // Only do this on the first iteration of the loop.
9129 if let Some(blockers) = peer_state.actions_blocking_raa_monitor_updates
9130 .get_mut(&channel_id)
9132 blockers.retain(|iter| iter != &blocker);
9136 if self.raa_monitor_updates_held(&peer_state.actions_blocking_raa_monitor_updates,
9137 channel_funding_outpoint, channel_id, counterparty_node_id) {
9138 // Check that, while holding the peer lock, we don't have anything else
9139 // blocking monitor updates for this channel. If we do, release the monitor
9140 // update(s) when those blockers complete.
9141 log_trace!(logger, "Delaying monitor unlock for channel {} as another channel's mon update needs to complete first",
9146 if let hash_map::Entry::Occupied(mut chan_phase_entry) = peer_state.channel_by_id.entry(
9148 if let ChannelPhase::Funded(chan) = chan_phase_entry.get_mut() {
9149 debug_assert_eq!(chan.context.get_funding_txo().unwrap(), channel_funding_outpoint);
9150 if let Some((monitor_update, further_update_exists)) = chan.unblock_next_blocked_monitor_update() {
9151 log_debug!(logger, "Unlocking monitor updating for channel {} and updating monitor",
9153 handle_new_monitor_update!(self, channel_funding_outpoint, monitor_update,
9154 peer_state_lck, peer_state, per_peer_state, chan);
9155 if further_update_exists {
9156 // If there are more `ChannelMonitorUpdate`s to process, restart at the
9161 log_trace!(logger, "Unlocked monitor updating for channel {} without monitors to update",
9168 "Got a release post-RAA monitor update for peer {} but the channel is gone",
9169 log_pubkey!(counterparty_node_id));
9175 fn handle_post_event_actions(&self, actions: Vec<EventCompletionAction>) {
9176 for action in actions {
9178 EventCompletionAction::ReleaseRAAChannelMonitorUpdate {
9179 channel_funding_outpoint, channel_id, counterparty_node_id
9181 self.handle_monitor_update_release(counterparty_node_id, channel_funding_outpoint, channel_id, None);
9187 /// Processes any events asynchronously in the order they were generated since the last call
9188 /// using the given event handler.
9190 /// See the trait-level documentation of [`EventsProvider`] for requirements.
9191 pub async fn process_pending_events_async<Future: core::future::Future, H: Fn(Event) -> Future>(
9195 process_events_body!(self, ev, { handler(ev).await });
9199 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref> MessageSendEventsProvider for ChannelManager<M, T, ES, NS, SP, F, R, L>
9201 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
9202 T::Target: BroadcasterInterface,
9203 ES::Target: EntropySource,
9204 NS::Target: NodeSigner,
9205 SP::Target: SignerProvider,
9206 F::Target: FeeEstimator,
9210 /// Returns `MessageSendEvent`s strictly ordered per-peer, in the order they were generated.
9211 /// The returned array will contain `MessageSendEvent`s for different peers if
9212 /// `MessageSendEvent`s to more than one peer exists, but `MessageSendEvent`s to the same peer
9213 /// is always placed next to each other.
9215 /// Note that that while `MessageSendEvent`s are strictly ordered per-peer, the peer order for
9216 /// the chunks of `MessageSendEvent`s for different peers is random. I.e. if the array contains
9217 /// `MessageSendEvent`s for both `node_a` and `node_b`, the `MessageSendEvent`s for `node_a`
9218 /// will randomly be placed first or last in the returned array.
9220 /// Note that even though `BroadcastChannelAnnouncement` and `BroadcastChannelUpdate`
9221 /// `MessageSendEvent`s are intended to be broadcasted to all peers, they will be placed among
9222 /// the `MessageSendEvent`s to the specific peer they were generated under.
9223 fn get_and_clear_pending_msg_events(&self) -> Vec<MessageSendEvent> {
9224 let events = RefCell::new(Vec::new());
9225 PersistenceNotifierGuard::optionally_notify(self, || {
9226 let mut result = NotifyOption::SkipPersistNoEvents;
9228 // TODO: This behavior should be documented. It's unintuitive that we query
9229 // ChannelMonitors when clearing other events.
9230 if self.process_pending_monitor_events() {
9231 result = NotifyOption::DoPersist;
9234 if self.check_free_holding_cells() {
9235 result = NotifyOption::DoPersist;
9237 if self.maybe_generate_initial_closing_signed() {
9238 result = NotifyOption::DoPersist;
9241 let mut is_any_peer_connected = false;
9242 let mut pending_events = Vec::new();
9243 let per_peer_state = self.per_peer_state.read().unwrap();
9244 for (_cp_id, peer_state_mutex) in per_peer_state.iter() {
9245 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
9246 let peer_state = &mut *peer_state_lock;
9247 if peer_state.pending_msg_events.len() > 0 {
9248 pending_events.append(&mut peer_state.pending_msg_events);
9250 if peer_state.is_connected {
9251 is_any_peer_connected = true
9255 // Ensure that we are connected to some peers before getting broadcast messages.
9256 if is_any_peer_connected {
9257 let mut broadcast_msgs = self.pending_broadcast_messages.lock().unwrap();
9258 pending_events.append(&mut broadcast_msgs);
9261 if !pending_events.is_empty() {
9262 events.replace(pending_events);
9271 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref> EventsProvider for ChannelManager<M, T, ES, NS, SP, F, R, L>
9273 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
9274 T::Target: BroadcasterInterface,
9275 ES::Target: EntropySource,
9276 NS::Target: NodeSigner,
9277 SP::Target: SignerProvider,
9278 F::Target: FeeEstimator,
9282 /// Processes events that must be periodically handled.
9284 /// An [`EventHandler`] may safely call back to the provider in order to handle an event.
9285 /// However, it must not call [`Writeable::write`] as doing so would result in a deadlock.
9286 fn process_pending_events<H: Deref>(&self, handler: H) where H::Target: EventHandler {
9288 process_events_body!(self, ev, handler.handle_event(ev));
9292 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref> chain::Listen for ChannelManager<M, T, ES, NS, SP, F, R, L>
9294 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
9295 T::Target: BroadcasterInterface,
9296 ES::Target: EntropySource,
9297 NS::Target: NodeSigner,
9298 SP::Target: SignerProvider,
9299 F::Target: FeeEstimator,
9303 fn filtered_block_connected(&self, header: &Header, txdata: &TransactionData, height: u32) {
9305 let best_block = self.best_block.read().unwrap();
9306 assert_eq!(best_block.block_hash, header.prev_blockhash,
9307 "Blocks must be connected in chain-order - the connected header must build on the last connected header");
9308 assert_eq!(best_block.height, height - 1,
9309 "Blocks must be connected in chain-order - the connected block height must be one greater than the previous height");
9312 self.transactions_confirmed(header, txdata, height);
9313 self.best_block_updated(header, height);
9316 fn block_disconnected(&self, header: &Header, height: u32) {
9317 let _persistence_guard =
9318 PersistenceNotifierGuard::optionally_notify_skipping_background_events(
9319 self, || -> NotifyOption { NotifyOption::DoPersist });
9320 let new_height = height - 1;
9322 let mut best_block = self.best_block.write().unwrap();
9323 assert_eq!(best_block.block_hash, header.block_hash(),
9324 "Blocks must be disconnected in chain-order - the disconnected header must be the last connected header");
9325 assert_eq!(best_block.height, height,
9326 "Blocks must be disconnected in chain-order - the disconnected block must have the correct height");
9327 *best_block = BestBlock::new(header.prev_blockhash, new_height)
9330 self.do_chain_event(Some(new_height), |channel| channel.best_block_updated(new_height, header.time, self.chain_hash, &self.node_signer, &self.default_configuration, &&WithChannelContext::from(&self.logger, &channel.context)));
9334 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref> chain::Confirm for ChannelManager<M, T, ES, NS, SP, F, R, L>
9336 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
9337 T::Target: BroadcasterInterface,
9338 ES::Target: EntropySource,
9339 NS::Target: NodeSigner,
9340 SP::Target: SignerProvider,
9341 F::Target: FeeEstimator,
9345 fn transactions_confirmed(&self, header: &Header, txdata: &TransactionData, height: u32) {
9346 // Note that we MUST NOT end up calling methods on self.chain_monitor here - we're called
9347 // during initialization prior to the chain_monitor being fully configured in some cases.
9348 // See the docs for `ChannelManagerReadArgs` for more.
9350 let block_hash = header.block_hash();
9351 log_trace!(self.logger, "{} transactions included in block {} at height {} provided", txdata.len(), block_hash, height);
9353 let _persistence_guard =
9354 PersistenceNotifierGuard::optionally_notify_skipping_background_events(
9355 self, || -> NotifyOption { NotifyOption::DoPersist });
9356 self.do_chain_event(Some(height), |channel| channel.transactions_confirmed(&block_hash, height, txdata, self.chain_hash, &self.node_signer, &self.default_configuration, &&WithChannelContext::from(&self.logger, &channel.context))
9357 .map(|(a, b)| (a, Vec::new(), b)));
9359 let last_best_block_height = self.best_block.read().unwrap().height;
9360 if height < last_best_block_height {
9361 let timestamp = self.highest_seen_timestamp.load(Ordering::Acquire);
9362 self.do_chain_event(Some(last_best_block_height), |channel| channel.best_block_updated(last_best_block_height, timestamp as u32, self.chain_hash, &self.node_signer, &self.default_configuration, &&WithChannelContext::from(&self.logger, &channel.context)));
9366 fn best_block_updated(&self, header: &Header, height: u32) {
9367 // Note that we MUST NOT end up calling methods on self.chain_monitor here - we're called
9368 // during initialization prior to the chain_monitor being fully configured in some cases.
9369 // See the docs for `ChannelManagerReadArgs` for more.
9371 let block_hash = header.block_hash();
9372 log_trace!(self.logger, "New best block: {} at height {}", block_hash, height);
9374 let _persistence_guard =
9375 PersistenceNotifierGuard::optionally_notify_skipping_background_events(
9376 self, || -> NotifyOption { NotifyOption::DoPersist });
9377 *self.best_block.write().unwrap() = BestBlock::new(block_hash, height);
9379 self.do_chain_event(Some(height), |channel| channel.best_block_updated(height, header.time, self.chain_hash, &self.node_signer, &self.default_configuration, &&WithChannelContext::from(&self.logger, &channel.context)));
9381 macro_rules! max_time {
9382 ($timestamp: expr) => {
9384 // Update $timestamp to be the max of its current value and the block
9385 // timestamp. This should keep us close to the current time without relying on
9386 // having an explicit local time source.
9387 // Just in case we end up in a race, we loop until we either successfully
9388 // update $timestamp or decide we don't need to.
9389 let old_serial = $timestamp.load(Ordering::Acquire);
9390 if old_serial >= header.time as usize { break; }
9391 if $timestamp.compare_exchange(old_serial, header.time as usize, Ordering::AcqRel, Ordering::Relaxed).is_ok() {
9397 max_time!(self.highest_seen_timestamp);
9398 let mut payment_secrets = self.pending_inbound_payments.lock().unwrap();
9399 payment_secrets.retain(|_, inbound_payment| {
9400 inbound_payment.expiry_time > header.time as u64
9404 fn get_relevant_txids(&self) -> Vec<(Txid, u32, Option<BlockHash>)> {
9405 let mut res = Vec::with_capacity(self.short_to_chan_info.read().unwrap().len());
9406 for (_cp_id, peer_state_mutex) in self.per_peer_state.read().unwrap().iter() {
9407 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
9408 let peer_state = &mut *peer_state_lock;
9409 for chan in peer_state.channel_by_id.values().filter_map(|phase| if let ChannelPhase::Funded(chan) = phase { Some(chan) } else { None }) {
9410 let txid_opt = chan.context.get_funding_txo();
9411 let height_opt = chan.context.get_funding_tx_confirmation_height();
9412 let hash_opt = chan.context.get_funding_tx_confirmed_in();
9413 if let (Some(funding_txo), Some(conf_height), Some(block_hash)) = (txid_opt, height_opt, hash_opt) {
9414 res.push((funding_txo.txid, conf_height, Some(block_hash)));
9421 fn transaction_unconfirmed(&self, txid: &Txid) {
9422 let _persistence_guard =
9423 PersistenceNotifierGuard::optionally_notify_skipping_background_events(
9424 self, || -> NotifyOption { NotifyOption::DoPersist });
9425 self.do_chain_event(None, |channel| {
9426 if let Some(funding_txo) = channel.context.get_funding_txo() {
9427 if funding_txo.txid == *txid {
9428 channel.funding_transaction_unconfirmed(&&WithChannelContext::from(&self.logger, &channel.context)).map(|()| (None, Vec::new(), None))
9429 } else { Ok((None, Vec::new(), None)) }
9430 } else { Ok((None, Vec::new(), None)) }
9435 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref> ChannelManager<M, T, ES, NS, SP, F, R, L>
9437 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
9438 T::Target: BroadcasterInterface,
9439 ES::Target: EntropySource,
9440 NS::Target: NodeSigner,
9441 SP::Target: SignerProvider,
9442 F::Target: FeeEstimator,
9446 /// Calls a function which handles an on-chain event (blocks dis/connected, transactions
9447 /// un/confirmed, etc) on each channel, handling any resulting errors or messages generated by
9449 fn do_chain_event<FN: Fn(&mut Channel<SP>) -> Result<(Option<msgs::ChannelReady>, Vec<(HTLCSource, PaymentHash)>, Option<msgs::AnnouncementSignatures>), ClosureReason>>
9450 (&self, height_opt: Option<u32>, f: FN) {
9451 // Note that we MUST NOT end up calling methods on self.chain_monitor here - we're called
9452 // during initialization prior to the chain_monitor being fully configured in some cases.
9453 // See the docs for `ChannelManagerReadArgs` for more.
9455 let mut failed_channels = Vec::new();
9456 let mut timed_out_htlcs = Vec::new();
9458 let per_peer_state = self.per_peer_state.read().unwrap();
9459 for (_cp_id, peer_state_mutex) in per_peer_state.iter() {
9460 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
9461 let peer_state = &mut *peer_state_lock;
9462 let pending_msg_events = &mut peer_state.pending_msg_events;
9464 peer_state.channel_by_id.retain(|_, phase| {
9466 // Retain unfunded channels.
9467 ChannelPhase::UnfundedOutboundV1(_) | ChannelPhase::UnfundedInboundV1(_) => true,
9468 // TODO(dual_funding): Combine this match arm with above.
9469 #[cfg(any(dual_funding, splicing))]
9470 ChannelPhase::UnfundedOutboundV2(_) | ChannelPhase::UnfundedInboundV2(_) => true,
9471 ChannelPhase::Funded(channel) => {
9472 let res = f(channel);
9473 if let Ok((channel_ready_opt, mut timed_out_pending_htlcs, announcement_sigs)) = res {
9474 for (source, payment_hash) in timed_out_pending_htlcs.drain(..) {
9475 let (failure_code, data) = self.get_htlc_inbound_temp_fail_err_and_data(0x1000|14 /* expiry_too_soon */, &channel);
9476 timed_out_htlcs.push((source, payment_hash, HTLCFailReason::reason(failure_code, data),
9477 HTLCDestination::NextHopChannel { node_id: Some(channel.context.get_counterparty_node_id()), channel_id: channel.context.channel_id() }));
9479 let logger = WithChannelContext::from(&self.logger, &channel.context);
9480 if let Some(channel_ready) = channel_ready_opt {
9481 send_channel_ready!(self, pending_msg_events, channel, channel_ready);
9482 if channel.context.is_usable() {
9483 log_trace!(logger, "Sending channel_ready with private initial channel_update for our counterparty on channel {}", channel.context.channel_id());
9484 if let Ok(msg) = self.get_channel_update_for_unicast(channel) {
9485 pending_msg_events.push(events::MessageSendEvent::SendChannelUpdate {
9486 node_id: channel.context.get_counterparty_node_id(),
9491 log_trace!(logger, "Sending channel_ready WITHOUT channel_update for {}", channel.context.channel_id());
9496 let mut pending_events = self.pending_events.lock().unwrap();
9497 emit_channel_ready_event!(pending_events, channel);
9500 if let Some(announcement_sigs) = announcement_sigs {
9501 log_trace!(logger, "Sending announcement_signatures for channel {}", channel.context.channel_id());
9502 pending_msg_events.push(events::MessageSendEvent::SendAnnouncementSignatures {
9503 node_id: channel.context.get_counterparty_node_id(),
9504 msg: announcement_sigs,
9506 if let Some(height) = height_opt {
9507 if let Some(announcement) = channel.get_signed_channel_announcement(&self.node_signer, self.chain_hash, height, &self.default_configuration) {
9508 pending_msg_events.push(events::MessageSendEvent::BroadcastChannelAnnouncement {
9510 // Note that announcement_signatures fails if the channel cannot be announced,
9511 // so get_channel_update_for_broadcast will never fail by the time we get here.
9512 update_msg: Some(self.get_channel_update_for_broadcast(channel).unwrap()),
9517 if channel.is_our_channel_ready() {
9518 if let Some(real_scid) = channel.context.get_short_channel_id() {
9519 // If we sent a 0conf channel_ready, and now have an SCID, we add it
9520 // to the short_to_chan_info map here. Note that we check whether we
9521 // can relay using the real SCID at relay-time (i.e.
9522 // enforce option_scid_alias then), and if the funding tx is ever
9523 // un-confirmed we force-close the channel, ensuring short_to_chan_info
9524 // is always consistent.
9525 let mut short_to_chan_info = self.short_to_chan_info.write().unwrap();
9526 let scid_insert = short_to_chan_info.insert(real_scid, (channel.context.get_counterparty_node_id(), channel.context.channel_id()));
9527 assert!(scid_insert.is_none() || scid_insert.unwrap() == (channel.context.get_counterparty_node_id(), channel.context.channel_id()),
9528 "SCIDs should never collide - ensure you weren't behind by a full {} blocks when creating channels",
9529 fake_scid::MAX_SCID_BLOCKS_FROM_NOW);
9532 } else if let Err(reason) = res {
9533 update_maps_on_chan_removal!(self, &channel.context);
9534 // It looks like our counterparty went on-chain or funding transaction was
9535 // reorged out of the main chain. Close the channel.
9536 let reason_message = format!("{}", reason);
9537 failed_channels.push(channel.context.force_shutdown(true, reason));
9538 if let Ok(update) = self.get_channel_update_for_broadcast(&channel) {
9539 let mut pending_broadcast_messages = self.pending_broadcast_messages.lock().unwrap();
9540 pending_broadcast_messages.push(events::MessageSendEvent::BroadcastChannelUpdate {
9544 pending_msg_events.push(events::MessageSendEvent::HandleError {
9545 node_id: channel.context.get_counterparty_node_id(),
9546 action: msgs::ErrorAction::DisconnectPeer {
9547 msg: Some(msgs::ErrorMessage {
9548 channel_id: channel.context.channel_id(),
9549 data: reason_message,
9562 if let Some(height) = height_opt {
9563 self.claimable_payments.lock().unwrap().claimable_payments.retain(|payment_hash, payment| {
9564 payment.htlcs.retain(|htlc| {
9565 // If height is approaching the number of blocks we think it takes us to get
9566 // our commitment transaction confirmed before the HTLC expires, plus the
9567 // number of blocks we generally consider it to take to do a commitment update,
9568 // just give up on it and fail the HTLC.
9569 if height >= htlc.cltv_expiry - HTLC_FAIL_BACK_BUFFER {
9570 let mut htlc_msat_height_data = htlc.value.to_be_bytes().to_vec();
9571 htlc_msat_height_data.extend_from_slice(&height.to_be_bytes());
9573 timed_out_htlcs.push((HTLCSource::PreviousHopData(htlc.prev_hop.clone()), payment_hash.clone(),
9574 HTLCFailReason::reason(0x4000 | 15, htlc_msat_height_data),
9575 HTLCDestination::FailedPayment { payment_hash: payment_hash.clone() }));
9579 !payment.htlcs.is_empty() // Only retain this entry if htlcs has at least one entry.
9582 let mut intercepted_htlcs = self.pending_intercepted_htlcs.lock().unwrap();
9583 intercepted_htlcs.retain(|_, htlc| {
9584 if height >= htlc.forward_info.outgoing_cltv_value - HTLC_FAIL_BACK_BUFFER {
9585 let prev_hop_data = HTLCSource::PreviousHopData(HTLCPreviousHopData {
9586 short_channel_id: htlc.prev_short_channel_id,
9587 user_channel_id: Some(htlc.prev_user_channel_id),
9588 htlc_id: htlc.prev_htlc_id,
9589 incoming_packet_shared_secret: htlc.forward_info.incoming_shared_secret,
9590 phantom_shared_secret: None,
9591 outpoint: htlc.prev_funding_outpoint,
9592 channel_id: htlc.prev_channel_id,
9593 blinded_failure: htlc.forward_info.routing.blinded_failure(),
9596 let requested_forward_scid /* intercept scid */ = match htlc.forward_info.routing {
9597 PendingHTLCRouting::Forward { short_channel_id, .. } => short_channel_id,
9598 _ => unreachable!(),
9600 timed_out_htlcs.push((prev_hop_data, htlc.forward_info.payment_hash,
9601 HTLCFailReason::from_failure_code(0x2000 | 2),
9602 HTLCDestination::InvalidForward { requested_forward_scid }));
9603 let logger = WithContext::from(
9604 &self.logger, None, Some(htlc.prev_channel_id)
9606 log_trace!(logger, "Timing out intercepted HTLC with requested forward scid {}", requested_forward_scid);
9612 self.handle_init_event_channel_failures(failed_channels);
9614 for (source, payment_hash, reason, destination) in timed_out_htlcs.drain(..) {
9615 self.fail_htlc_backwards_internal(&source, &payment_hash, &reason, destination);
9619 /// Gets a [`Future`] that completes when this [`ChannelManager`] may need to be persisted or
9620 /// may have events that need processing.
9622 /// In order to check if this [`ChannelManager`] needs persisting, call
9623 /// [`Self::get_and_clear_needs_persistence`].
9625 /// Note that callbacks registered on the [`Future`] MUST NOT call back into this
9626 /// [`ChannelManager`] and should instead register actions to be taken later.
9627 pub fn get_event_or_persistence_needed_future(&self) -> Future {
9628 self.event_persist_notifier.get_future()
9631 /// Returns true if this [`ChannelManager`] needs to be persisted.
9633 /// See [`Self::get_event_or_persistence_needed_future`] for retrieving a [`Future`] that
9634 /// indicates this should be checked.
9635 pub fn get_and_clear_needs_persistence(&self) -> bool {
9636 self.needs_persist_flag.swap(false, Ordering::AcqRel)
9639 #[cfg(any(test, feature = "_test_utils"))]
9640 pub fn get_event_or_persist_condvar_value(&self) -> bool {
9641 self.event_persist_notifier.notify_pending()
9644 /// Gets the latest best block which was connected either via the [`chain::Listen`] or
9645 /// [`chain::Confirm`] interfaces.
9646 pub fn current_best_block(&self) -> BestBlock {
9647 self.best_block.read().unwrap().clone()
9650 /// Fetches the set of [`NodeFeatures`] flags that are provided by or required by
9651 /// [`ChannelManager`].
9652 pub fn node_features(&self) -> NodeFeatures {
9653 provided_node_features(&self.default_configuration)
9656 /// Fetches the set of [`Bolt11InvoiceFeatures`] flags that are provided by or required by
9657 /// [`ChannelManager`].
9659 /// Note that the invoice feature flags can vary depending on if the invoice is a "phantom invoice"
9660 /// or not. Thus, this method is not public.
9661 #[cfg(any(feature = "_test_utils", test))]
9662 pub fn bolt11_invoice_features(&self) -> Bolt11InvoiceFeatures {
9663 provided_bolt11_invoice_features(&self.default_configuration)
9666 /// Fetches the set of [`Bolt12InvoiceFeatures`] flags that are provided by or required by
9667 /// [`ChannelManager`].
9668 fn bolt12_invoice_features(&self) -> Bolt12InvoiceFeatures {
9669 provided_bolt12_invoice_features(&self.default_configuration)
9672 /// Fetches the set of [`ChannelFeatures`] flags that are provided by or required by
9673 /// [`ChannelManager`].
9674 pub fn channel_features(&self) -> ChannelFeatures {
9675 provided_channel_features(&self.default_configuration)
9678 /// Fetches the set of [`ChannelTypeFeatures`] flags that are provided by or required by
9679 /// [`ChannelManager`].
9680 pub fn channel_type_features(&self) -> ChannelTypeFeatures {
9681 provided_channel_type_features(&self.default_configuration)
9684 /// Fetches the set of [`InitFeatures`] flags that are provided by or required by
9685 /// [`ChannelManager`].
9686 pub fn init_features(&self) -> InitFeatures {
9687 provided_init_features(&self.default_configuration)
9691 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref>
9692 ChannelMessageHandler for ChannelManager<M, T, ES, NS, SP, F, R, L>
9694 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
9695 T::Target: BroadcasterInterface,
9696 ES::Target: EntropySource,
9697 NS::Target: NodeSigner,
9698 SP::Target: SignerProvider,
9699 F::Target: FeeEstimator,
9703 fn handle_open_channel(&self, counterparty_node_id: &PublicKey, msg: &msgs::OpenChannel) {
9704 // Note that we never need to persist the updated ChannelManager for an inbound
9705 // open_channel message - pre-funded channels are never written so there should be no
9706 // change to the contents.
9707 let _persistence_guard = PersistenceNotifierGuard::optionally_notify(self, || {
9708 let res = self.internal_open_channel(counterparty_node_id, msg);
9709 let persist = match &res {
9710 Err(e) if e.closes_channel() => {
9711 debug_assert!(false, "We shouldn't close a new channel");
9712 NotifyOption::DoPersist
9714 _ => NotifyOption::SkipPersistHandleEvents,
9716 let _ = handle_error!(self, res, *counterparty_node_id);
9721 fn handle_open_channel_v2(&self, counterparty_node_id: &PublicKey, msg: &msgs::OpenChannelV2) {
9722 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
9723 "Dual-funded channels not supported".to_owned(),
9724 msg.common_fields.temporary_channel_id.clone())), *counterparty_node_id);
9727 fn handle_accept_channel(&self, counterparty_node_id: &PublicKey, msg: &msgs::AcceptChannel) {
9728 // Note that we never need to persist the updated ChannelManager for an inbound
9729 // accept_channel message - pre-funded channels are never written so there should be no
9730 // change to the contents.
9731 let _persistence_guard = PersistenceNotifierGuard::optionally_notify(self, || {
9732 let _ = handle_error!(self, self.internal_accept_channel(counterparty_node_id, msg), *counterparty_node_id);
9733 NotifyOption::SkipPersistHandleEvents
9737 fn handle_accept_channel_v2(&self, counterparty_node_id: &PublicKey, msg: &msgs::AcceptChannelV2) {
9738 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
9739 "Dual-funded channels not supported".to_owned(),
9740 msg.common_fields.temporary_channel_id.clone())), *counterparty_node_id);
9743 fn handle_funding_created(&self, counterparty_node_id: &PublicKey, msg: &msgs::FundingCreated) {
9744 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
9745 let _ = handle_error!(self, self.internal_funding_created(counterparty_node_id, msg), *counterparty_node_id);
9748 fn handle_funding_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::FundingSigned) {
9749 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
9750 let _ = handle_error!(self, self.internal_funding_signed(counterparty_node_id, msg), *counterparty_node_id);
9753 fn handle_channel_ready(&self, counterparty_node_id: &PublicKey, msg: &msgs::ChannelReady) {
9754 // Note that we never need to persist the updated ChannelManager for an inbound
9755 // channel_ready message - while the channel's state will change, any channel_ready message
9756 // will ultimately be re-sent on startup and the `ChannelMonitor` won't be updated so we
9757 // will not force-close the channel on startup.
9758 let _persistence_guard = PersistenceNotifierGuard::optionally_notify(self, || {
9759 let res = self.internal_channel_ready(counterparty_node_id, msg);
9760 let persist = match &res {
9761 Err(e) if e.closes_channel() => NotifyOption::DoPersist,
9762 _ => NotifyOption::SkipPersistHandleEvents,
9764 let _ = handle_error!(self, res, *counterparty_node_id);
9769 fn handle_stfu(&self, counterparty_node_id: &PublicKey, msg: &msgs::Stfu) {
9770 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
9771 "Quiescence not supported".to_owned(),
9772 msg.channel_id.clone())), *counterparty_node_id);
9776 fn handle_splice(&self, counterparty_node_id: &PublicKey, msg: &msgs::Splice) {
9777 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
9778 "Splicing not supported".to_owned(),
9779 msg.channel_id.clone())), *counterparty_node_id);
9783 fn handle_splice_ack(&self, counterparty_node_id: &PublicKey, msg: &msgs::SpliceAck) {
9784 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
9785 "Splicing not supported (splice_ack)".to_owned(),
9786 msg.channel_id.clone())), *counterparty_node_id);
9790 fn handle_splice_locked(&self, counterparty_node_id: &PublicKey, msg: &msgs::SpliceLocked) {
9791 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
9792 "Splicing not supported (splice_locked)".to_owned(),
9793 msg.channel_id.clone())), *counterparty_node_id);
9796 fn handle_shutdown(&self, counterparty_node_id: &PublicKey, msg: &msgs::Shutdown) {
9797 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
9798 let _ = handle_error!(self, self.internal_shutdown(counterparty_node_id, msg), *counterparty_node_id);
9801 fn handle_closing_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::ClosingSigned) {
9802 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
9803 let _ = handle_error!(self, self.internal_closing_signed(counterparty_node_id, msg), *counterparty_node_id);
9806 fn handle_update_add_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateAddHTLC) {
9807 // Note that we never need to persist the updated ChannelManager for an inbound
9808 // update_add_htlc message - the message itself doesn't change our channel state only the
9809 // `commitment_signed` message afterwards will.
9810 let _persistence_guard = PersistenceNotifierGuard::optionally_notify(self, || {
9811 let res = self.internal_update_add_htlc(counterparty_node_id, msg);
9812 let persist = match &res {
9813 Err(e) if e.closes_channel() => NotifyOption::DoPersist,
9814 Err(_) => NotifyOption::SkipPersistHandleEvents,
9815 Ok(()) => NotifyOption::SkipPersistNoEvents,
9817 let _ = handle_error!(self, res, *counterparty_node_id);
9822 fn handle_update_fulfill_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFulfillHTLC) {
9823 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
9824 let _ = handle_error!(self, self.internal_update_fulfill_htlc(counterparty_node_id, msg), *counterparty_node_id);
9827 fn handle_update_fail_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFailHTLC) {
9828 // Note that we never need to persist the updated ChannelManager for an inbound
9829 // update_fail_htlc message - the message itself doesn't change our channel state only the
9830 // `commitment_signed` message afterwards will.
9831 let _persistence_guard = PersistenceNotifierGuard::optionally_notify(self, || {
9832 let res = self.internal_update_fail_htlc(counterparty_node_id, msg);
9833 let persist = match &res {
9834 Err(e) if e.closes_channel() => NotifyOption::DoPersist,
9835 Err(_) => NotifyOption::SkipPersistHandleEvents,
9836 Ok(()) => NotifyOption::SkipPersistNoEvents,
9838 let _ = handle_error!(self, res, *counterparty_node_id);
9843 fn handle_update_fail_malformed_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFailMalformedHTLC) {
9844 // Note that we never need to persist the updated ChannelManager for an inbound
9845 // update_fail_malformed_htlc message - the message itself doesn't change our channel state
9846 // only the `commitment_signed` message afterwards will.
9847 let _persistence_guard = PersistenceNotifierGuard::optionally_notify(self, || {
9848 let res = self.internal_update_fail_malformed_htlc(counterparty_node_id, msg);
9849 let persist = match &res {
9850 Err(e) if e.closes_channel() => NotifyOption::DoPersist,
9851 Err(_) => NotifyOption::SkipPersistHandleEvents,
9852 Ok(()) => NotifyOption::SkipPersistNoEvents,
9854 let _ = handle_error!(self, res, *counterparty_node_id);
9859 fn handle_commitment_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::CommitmentSigned) {
9860 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
9861 let _ = handle_error!(self, self.internal_commitment_signed(counterparty_node_id, msg), *counterparty_node_id);
9864 fn handle_revoke_and_ack(&self, counterparty_node_id: &PublicKey, msg: &msgs::RevokeAndACK) {
9865 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
9866 let _ = handle_error!(self, self.internal_revoke_and_ack(counterparty_node_id, msg), *counterparty_node_id);
9869 fn handle_update_fee(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFee) {
9870 // Note that we never need to persist the updated ChannelManager for an inbound
9871 // update_fee message - the message itself doesn't change our channel state only the
9872 // `commitment_signed` message afterwards will.
9873 let _persistence_guard = PersistenceNotifierGuard::optionally_notify(self, || {
9874 let res = self.internal_update_fee(counterparty_node_id, msg);
9875 let persist = match &res {
9876 Err(e) if e.closes_channel() => NotifyOption::DoPersist,
9877 Err(_) => NotifyOption::SkipPersistHandleEvents,
9878 Ok(()) => NotifyOption::SkipPersistNoEvents,
9880 let _ = handle_error!(self, res, *counterparty_node_id);
9885 fn handle_announcement_signatures(&self, counterparty_node_id: &PublicKey, msg: &msgs::AnnouncementSignatures) {
9886 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
9887 let _ = handle_error!(self, self.internal_announcement_signatures(counterparty_node_id, msg), *counterparty_node_id);
9890 fn handle_channel_update(&self, counterparty_node_id: &PublicKey, msg: &msgs::ChannelUpdate) {
9891 PersistenceNotifierGuard::optionally_notify(self, || {
9892 if let Ok(persist) = handle_error!(self, self.internal_channel_update(counterparty_node_id, msg), *counterparty_node_id) {
9895 NotifyOption::DoPersist
9900 fn handle_channel_reestablish(&self, counterparty_node_id: &PublicKey, msg: &msgs::ChannelReestablish) {
9901 let _persistence_guard = PersistenceNotifierGuard::optionally_notify(self, || {
9902 let res = self.internal_channel_reestablish(counterparty_node_id, msg);
9903 let persist = match &res {
9904 Err(e) if e.closes_channel() => NotifyOption::DoPersist,
9905 Err(_) => NotifyOption::SkipPersistHandleEvents,
9906 Ok(persist) => *persist,
9908 let _ = handle_error!(self, res, *counterparty_node_id);
9913 fn peer_disconnected(&self, counterparty_node_id: &PublicKey) {
9914 let _persistence_guard = PersistenceNotifierGuard::optionally_notify(
9915 self, || NotifyOption::SkipPersistHandleEvents);
9916 let mut failed_channels = Vec::new();
9917 let mut per_peer_state = self.per_peer_state.write().unwrap();
9920 WithContext::from(&self.logger, Some(*counterparty_node_id), None),
9921 "Marking channels with {} disconnected and generating channel_updates.",
9922 log_pubkey!(counterparty_node_id)
9924 if let Some(peer_state_mutex) = per_peer_state.get(counterparty_node_id) {
9925 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
9926 let peer_state = &mut *peer_state_lock;
9927 let pending_msg_events = &mut peer_state.pending_msg_events;
9928 peer_state.channel_by_id.retain(|_, phase| {
9929 let context = match phase {
9930 ChannelPhase::Funded(chan) => {
9931 let logger = WithChannelContext::from(&self.logger, &chan.context);
9932 if chan.remove_uncommitted_htlcs_and_mark_paused(&&logger).is_ok() {
9933 // We only retain funded channels that are not shutdown.
9938 // We retain UnfundedOutboundV1 channel for some time in case
9939 // peer unexpectedly disconnects, and intends to reconnect again.
9940 ChannelPhase::UnfundedOutboundV1(_) => {
9943 // Unfunded inbound channels will always be removed.
9944 ChannelPhase::UnfundedInboundV1(chan) => {
9947 #[cfg(any(dual_funding, splicing))]
9948 ChannelPhase::UnfundedOutboundV2(chan) => {
9951 #[cfg(any(dual_funding, splicing))]
9952 ChannelPhase::UnfundedInboundV2(chan) => {
9956 // Clean up for removal.
9957 update_maps_on_chan_removal!(self, &context);
9958 failed_channels.push(context.force_shutdown(false, ClosureReason::DisconnectedPeer));
9961 // Note that we don't bother generating any events for pre-accept channels -
9962 // they're not considered "channels" yet from the PoV of our events interface.
9963 peer_state.inbound_channel_request_by_id.clear();
9964 pending_msg_events.retain(|msg| {
9966 // V1 Channel Establishment
9967 &events::MessageSendEvent::SendAcceptChannel { .. } => false,
9968 &events::MessageSendEvent::SendOpenChannel { .. } => false,
9969 &events::MessageSendEvent::SendFundingCreated { .. } => false,
9970 &events::MessageSendEvent::SendFundingSigned { .. } => false,
9971 // V2 Channel Establishment
9972 &events::MessageSendEvent::SendAcceptChannelV2 { .. } => false,
9973 &events::MessageSendEvent::SendOpenChannelV2 { .. } => false,
9974 // Common Channel Establishment
9975 &events::MessageSendEvent::SendChannelReady { .. } => false,
9976 &events::MessageSendEvent::SendAnnouncementSignatures { .. } => false,
9978 &events::MessageSendEvent::SendStfu { .. } => false,
9980 &events::MessageSendEvent::SendSplice { .. } => false,
9981 &events::MessageSendEvent::SendSpliceAck { .. } => false,
9982 &events::MessageSendEvent::SendSpliceLocked { .. } => false,
9983 // Interactive Transaction Construction
9984 &events::MessageSendEvent::SendTxAddInput { .. } => false,
9985 &events::MessageSendEvent::SendTxAddOutput { .. } => false,
9986 &events::MessageSendEvent::SendTxRemoveInput { .. } => false,
9987 &events::MessageSendEvent::SendTxRemoveOutput { .. } => false,
9988 &events::MessageSendEvent::SendTxComplete { .. } => false,
9989 &events::MessageSendEvent::SendTxSignatures { .. } => false,
9990 &events::MessageSendEvent::SendTxInitRbf { .. } => false,
9991 &events::MessageSendEvent::SendTxAckRbf { .. } => false,
9992 &events::MessageSendEvent::SendTxAbort { .. } => false,
9993 // Channel Operations
9994 &events::MessageSendEvent::UpdateHTLCs { .. } => false,
9995 &events::MessageSendEvent::SendRevokeAndACK { .. } => false,
9996 &events::MessageSendEvent::SendClosingSigned { .. } => false,
9997 &events::MessageSendEvent::SendShutdown { .. } => false,
9998 &events::MessageSendEvent::SendChannelReestablish { .. } => false,
9999 &events::MessageSendEvent::HandleError { .. } => false,
10001 &events::MessageSendEvent::SendChannelAnnouncement { .. } => false,
10002 &events::MessageSendEvent::BroadcastChannelAnnouncement { .. } => true,
10003 // [`ChannelManager::pending_broadcast_events`] holds the [`BroadcastChannelUpdate`]
10004 // This check here is to ensure exhaustivity.
10005 &events::MessageSendEvent::BroadcastChannelUpdate { .. } => {
10006 debug_assert!(false, "This event shouldn't have been here");
10009 &events::MessageSendEvent::BroadcastNodeAnnouncement { .. } => true,
10010 &events::MessageSendEvent::SendChannelUpdate { .. } => false,
10011 &events::MessageSendEvent::SendChannelRangeQuery { .. } => false,
10012 &events::MessageSendEvent::SendShortIdsQuery { .. } => false,
10013 &events::MessageSendEvent::SendReplyChannelRange { .. } => false,
10014 &events::MessageSendEvent::SendGossipTimestampFilter { .. } => false,
10017 debug_assert!(peer_state.is_connected, "A disconnected peer cannot disconnect");
10018 peer_state.is_connected = false;
10019 peer_state.ok_to_remove(true)
10020 } else { debug_assert!(false, "Unconnected peer disconnected"); true }
10023 per_peer_state.remove(counterparty_node_id);
10025 mem::drop(per_peer_state);
10027 for failure in failed_channels.drain(..) {
10028 self.finish_close_channel(failure);
10032 fn peer_connected(&self, counterparty_node_id: &PublicKey, init_msg: &msgs::Init, inbound: bool) -> Result<(), ()> {
10033 let logger = WithContext::from(&self.logger, Some(*counterparty_node_id), None);
10034 if !init_msg.features.supports_static_remote_key() {
10035 log_debug!(logger, "Peer {} does not support static remote key, disconnecting", log_pubkey!(counterparty_node_id));
10039 let mut res = Ok(());
10041 PersistenceNotifierGuard::optionally_notify(self, || {
10042 // If we have too many peers connected which don't have funded channels, disconnect the
10043 // peer immediately (as long as it doesn't have funded channels). If we have a bunch of
10044 // unfunded channels taking up space in memory for disconnected peers, we still let new
10045 // peers connect, but we'll reject new channels from them.
10046 let connected_peers_without_funded_channels = self.peers_without_funded_channels(|node| node.is_connected);
10047 let inbound_peer_limited = inbound && connected_peers_without_funded_channels >= MAX_NO_CHANNEL_PEERS;
10050 let mut peer_state_lock = self.per_peer_state.write().unwrap();
10051 match peer_state_lock.entry(counterparty_node_id.clone()) {
10052 hash_map::Entry::Vacant(e) => {
10053 if inbound_peer_limited {
10055 return NotifyOption::SkipPersistNoEvents;
10057 e.insert(Mutex::new(PeerState {
10058 channel_by_id: new_hash_map(),
10059 inbound_channel_request_by_id: new_hash_map(),
10060 latest_features: init_msg.features.clone(),
10061 pending_msg_events: Vec::new(),
10062 in_flight_monitor_updates: BTreeMap::new(),
10063 monitor_update_blocked_actions: BTreeMap::new(),
10064 actions_blocking_raa_monitor_updates: BTreeMap::new(),
10065 is_connected: true,
10068 hash_map::Entry::Occupied(e) => {
10069 let mut peer_state = e.get().lock().unwrap();
10070 peer_state.latest_features = init_msg.features.clone();
10072 let best_block_height = self.best_block.read().unwrap().height;
10073 if inbound_peer_limited &&
10074 Self::unfunded_channel_count(&*peer_state, best_block_height) ==
10075 peer_state.channel_by_id.len()
10078 return NotifyOption::SkipPersistNoEvents;
10081 debug_assert!(!peer_state.is_connected, "A peer shouldn't be connected twice");
10082 peer_state.is_connected = true;
10087 log_debug!(logger, "Generating channel_reestablish events for {}", log_pubkey!(counterparty_node_id));
10089 let per_peer_state = self.per_peer_state.read().unwrap();
10090 if let Some(peer_state_mutex) = per_peer_state.get(counterparty_node_id) {
10091 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
10092 let peer_state = &mut *peer_state_lock;
10093 let pending_msg_events = &mut peer_state.pending_msg_events;
10095 for (_, phase) in peer_state.channel_by_id.iter_mut() {
10097 ChannelPhase::Funded(chan) => {
10098 let logger = WithChannelContext::from(&self.logger, &chan.context);
10099 pending_msg_events.push(events::MessageSendEvent::SendChannelReestablish {
10100 node_id: chan.context.get_counterparty_node_id(),
10101 msg: chan.get_channel_reestablish(&&logger),
10105 ChannelPhase::UnfundedOutboundV1(chan) => {
10106 pending_msg_events.push(events::MessageSendEvent::SendOpenChannel {
10107 node_id: chan.context.get_counterparty_node_id(),
10108 msg: chan.get_open_channel(self.chain_hash),
10112 // TODO(dual_funding): Combine this match arm with above once #[cfg(any(dual_funding, splicing))] is removed.
10113 #[cfg(any(dual_funding, splicing))]
10114 ChannelPhase::UnfundedOutboundV2(chan) => {
10115 pending_msg_events.push(events::MessageSendEvent::SendOpenChannelV2 {
10116 node_id: chan.context.get_counterparty_node_id(),
10117 msg: chan.get_open_channel_v2(self.chain_hash),
10121 ChannelPhase::UnfundedInboundV1(_) => {
10122 // Since unfunded inbound channel maps are cleared upon disconnecting a peer,
10123 // they are not persisted and won't be recovered after a crash.
10124 // Therefore, they shouldn't exist at this point.
10125 debug_assert!(false);
10128 // TODO(dual_funding): Combine this match arm with above once #[cfg(any(dual_funding, splicing))] is removed.
10129 #[cfg(any(dual_funding, splicing))]
10130 ChannelPhase::UnfundedInboundV2(channel) => {
10131 // Since unfunded inbound channel maps are cleared upon disconnecting a peer,
10132 // they are not persisted and won't be recovered after a crash.
10133 // Therefore, they shouldn't exist at this point.
10134 debug_assert!(false);
10140 return NotifyOption::SkipPersistHandleEvents;
10141 //TODO: Also re-broadcast announcement_signatures
10146 fn handle_error(&self, counterparty_node_id: &PublicKey, msg: &msgs::ErrorMessage) {
10147 match &msg.data as &str {
10148 "cannot co-op close channel w/ active htlcs"|
10149 "link failed to shutdown" =>
10151 // LND hasn't properly handled shutdown messages ever, and force-closes any time we
10152 // send one while HTLCs are still present. The issue is tracked at
10153 // https://github.com/lightningnetwork/lnd/issues/6039 and has had multiple patches
10154 // to fix it but none so far have managed to land upstream. The issue appears to be
10155 // very low priority for the LND team despite being marked "P1".
10156 // We're not going to bother handling this in a sensible way, instead simply
10157 // repeating the Shutdown message on repeat until morale improves.
10158 if !msg.channel_id.is_zero() {
10159 PersistenceNotifierGuard::optionally_notify(
10161 || -> NotifyOption {
10162 let per_peer_state = self.per_peer_state.read().unwrap();
10163 let peer_state_mutex_opt = per_peer_state.get(counterparty_node_id);
10164 if peer_state_mutex_opt.is_none() { return NotifyOption::SkipPersistNoEvents; }
10165 let mut peer_state = peer_state_mutex_opt.unwrap().lock().unwrap();
10166 if let Some(ChannelPhase::Funded(chan)) = peer_state.channel_by_id.get(&msg.channel_id) {
10167 if let Some(msg) = chan.get_outbound_shutdown() {
10168 peer_state.pending_msg_events.push(events::MessageSendEvent::SendShutdown {
10169 node_id: *counterparty_node_id,
10173 peer_state.pending_msg_events.push(events::MessageSendEvent::HandleError {
10174 node_id: *counterparty_node_id,
10175 action: msgs::ErrorAction::SendWarningMessage {
10176 msg: msgs::WarningMessage {
10177 channel_id: msg.channel_id,
10178 data: "You appear to be exhibiting LND bug 6039, we'll keep sending you shutdown messages until you handle them correctly".to_owned()
10180 log_level: Level::Trace,
10183 // This can happen in a fairly tight loop, so we absolutely cannot trigger
10184 // a `ChannelManager` write here.
10185 return NotifyOption::SkipPersistHandleEvents;
10187 NotifyOption::SkipPersistNoEvents
10196 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(self);
10198 if msg.channel_id.is_zero() {
10199 let channel_ids: Vec<ChannelId> = {
10200 let per_peer_state = self.per_peer_state.read().unwrap();
10201 let peer_state_mutex_opt = per_peer_state.get(counterparty_node_id);
10202 if peer_state_mutex_opt.is_none() { return; }
10203 let mut peer_state_lock = peer_state_mutex_opt.unwrap().lock().unwrap();
10204 let peer_state = &mut *peer_state_lock;
10205 // Note that we don't bother generating any events for pre-accept channels -
10206 // they're not considered "channels" yet from the PoV of our events interface.
10207 peer_state.inbound_channel_request_by_id.clear();
10208 peer_state.channel_by_id.keys().cloned().collect()
10210 for channel_id in channel_ids {
10211 // Untrusted messages from peer, we throw away the error if id points to a non-existent channel
10212 let _ = self.force_close_channel_with_peer(&channel_id, counterparty_node_id, Some(&msg.data), true);
10216 // First check if we can advance the channel type and try again.
10217 let per_peer_state = self.per_peer_state.read().unwrap();
10218 let peer_state_mutex_opt = per_peer_state.get(counterparty_node_id);
10219 if peer_state_mutex_opt.is_none() { return; }
10220 let mut peer_state_lock = peer_state_mutex_opt.unwrap().lock().unwrap();
10221 let peer_state = &mut *peer_state_lock;
10222 match peer_state.channel_by_id.get_mut(&msg.channel_id) {
10223 Some(ChannelPhase::UnfundedOutboundV1(ref mut chan)) => {
10224 if let Ok(msg) = chan.maybe_handle_error_without_close(self.chain_hash, &self.fee_estimator) {
10225 peer_state.pending_msg_events.push(events::MessageSendEvent::SendOpenChannel {
10226 node_id: *counterparty_node_id,
10232 #[cfg(any(dual_funding, splicing))]
10233 Some(ChannelPhase::UnfundedOutboundV2(ref mut chan)) => {
10234 if let Ok(msg) = chan.maybe_handle_error_without_close(self.chain_hash, &self.fee_estimator) {
10235 peer_state.pending_msg_events.push(events::MessageSendEvent::SendOpenChannelV2 {
10236 node_id: *counterparty_node_id,
10242 None | Some(ChannelPhase::UnfundedInboundV1(_) | ChannelPhase::Funded(_)) => (),
10243 #[cfg(any(dual_funding, splicing))]
10244 Some(ChannelPhase::UnfundedInboundV2(_)) => (),
10248 // Untrusted messages from peer, we throw away the error if id points to a non-existent channel
10249 let _ = self.force_close_channel_with_peer(&msg.channel_id, counterparty_node_id, Some(&msg.data), true);
10253 fn provided_node_features(&self) -> NodeFeatures {
10254 provided_node_features(&self.default_configuration)
10257 fn provided_init_features(&self, _their_init_features: &PublicKey) -> InitFeatures {
10258 provided_init_features(&self.default_configuration)
10261 fn get_chain_hashes(&self) -> Option<Vec<ChainHash>> {
10262 Some(vec![self.chain_hash])
10265 fn handle_tx_add_input(&self, counterparty_node_id: &PublicKey, msg: &msgs::TxAddInput) {
10266 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
10267 "Dual-funded channels not supported".to_owned(),
10268 msg.channel_id.clone())), *counterparty_node_id);
10271 fn handle_tx_add_output(&self, counterparty_node_id: &PublicKey, msg: &msgs::TxAddOutput) {
10272 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
10273 "Dual-funded channels not supported".to_owned(),
10274 msg.channel_id.clone())), *counterparty_node_id);
10277 fn handle_tx_remove_input(&self, counterparty_node_id: &PublicKey, msg: &msgs::TxRemoveInput) {
10278 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
10279 "Dual-funded channels not supported".to_owned(),
10280 msg.channel_id.clone())), *counterparty_node_id);
10283 fn handle_tx_remove_output(&self, counterparty_node_id: &PublicKey, msg: &msgs::TxRemoveOutput) {
10284 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
10285 "Dual-funded channels not supported".to_owned(),
10286 msg.channel_id.clone())), *counterparty_node_id);
10289 fn handle_tx_complete(&self, counterparty_node_id: &PublicKey, msg: &msgs::TxComplete) {
10290 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
10291 "Dual-funded channels not supported".to_owned(),
10292 msg.channel_id.clone())), *counterparty_node_id);
10295 fn handle_tx_signatures(&self, counterparty_node_id: &PublicKey, msg: &msgs::TxSignatures) {
10296 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
10297 "Dual-funded channels not supported".to_owned(),
10298 msg.channel_id.clone())), *counterparty_node_id);
10301 fn handle_tx_init_rbf(&self, counterparty_node_id: &PublicKey, msg: &msgs::TxInitRbf) {
10302 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
10303 "Dual-funded channels not supported".to_owned(),
10304 msg.channel_id.clone())), *counterparty_node_id);
10307 fn handle_tx_ack_rbf(&self, counterparty_node_id: &PublicKey, msg: &msgs::TxAckRbf) {
10308 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
10309 "Dual-funded channels not supported".to_owned(),
10310 msg.channel_id.clone())), *counterparty_node_id);
10313 fn handle_tx_abort(&self, counterparty_node_id: &PublicKey, msg: &msgs::TxAbort) {
10314 let _: Result<(), _> = handle_error!(self, Err(MsgHandleErrInternal::send_err_msg_no_close(
10315 "Dual-funded channels not supported".to_owned(),
10316 msg.channel_id.clone())), *counterparty_node_id);
10320 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref>
10321 OffersMessageHandler for ChannelManager<M, T, ES, NS, SP, F, R, L>
10323 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
10324 T::Target: BroadcasterInterface,
10325 ES::Target: EntropySource,
10326 NS::Target: NodeSigner,
10327 SP::Target: SignerProvider,
10328 F::Target: FeeEstimator,
10332 fn handle_message(&self, message: OffersMessage) -> Option<OffersMessage> {
10333 let secp_ctx = &self.secp_ctx;
10334 let expanded_key = &self.inbound_payment_key;
10337 OffersMessage::InvoiceRequest(invoice_request) => {
10338 let amount_msats = match InvoiceBuilder::<DerivedSigningPubkey>::amount_msats(
10341 Ok(amount_msats) => amount_msats,
10342 Err(error) => return Some(OffersMessage::InvoiceError(error.into())),
10344 let invoice_request = match invoice_request.verify(expanded_key, secp_ctx) {
10345 Ok(invoice_request) => invoice_request,
10347 let error = Bolt12SemanticError::InvalidMetadata;
10348 return Some(OffersMessage::InvoiceError(error.into()));
10352 let relative_expiry = DEFAULT_RELATIVE_EXPIRY.as_secs() as u32;
10353 let (payment_hash, payment_secret) = match self.create_inbound_payment(
10354 Some(amount_msats), relative_expiry, None
10356 Ok((payment_hash, payment_secret)) => (payment_hash, payment_secret),
10358 let error = Bolt12SemanticError::InvalidAmount;
10359 return Some(OffersMessage::InvoiceError(error.into()));
10363 let payment_context = PaymentContext::Bolt12Offer(Bolt12OfferContext {
10364 offer_id: invoice_request.offer_id,
10365 invoice_request: invoice_request.fields(),
10367 let payment_paths = match self.create_blinded_payment_paths(
10368 amount_msats, payment_secret, payment_context
10370 Ok(payment_paths) => payment_paths,
10372 let error = Bolt12SemanticError::MissingPaths;
10373 return Some(OffersMessage::InvoiceError(error.into()));
10377 #[cfg(not(feature = "std"))]
10378 let created_at = Duration::from_secs(
10379 self.highest_seen_timestamp.load(Ordering::Acquire) as u64
10382 let response = if invoice_request.keys.is_some() {
10383 #[cfg(feature = "std")]
10384 let builder = invoice_request.respond_using_derived_keys(
10385 payment_paths, payment_hash
10387 #[cfg(not(feature = "std"))]
10388 let builder = invoice_request.respond_using_derived_keys_no_std(
10389 payment_paths, payment_hash, created_at
10392 .map(InvoiceBuilder::<DerivedSigningPubkey>::from)
10393 .and_then(|builder| builder.allow_mpp().build_and_sign(secp_ctx))
10394 .map_err(InvoiceError::from)
10396 #[cfg(feature = "std")]
10397 let builder = invoice_request.respond_with(payment_paths, payment_hash);
10398 #[cfg(not(feature = "std"))]
10399 let builder = invoice_request.respond_with_no_std(
10400 payment_paths, payment_hash, created_at
10403 .map(InvoiceBuilder::<ExplicitSigningPubkey>::from)
10404 .and_then(|builder| builder.allow_mpp().build())
10405 .map_err(InvoiceError::from)
10406 .and_then(|invoice| {
10408 let mut invoice = invoice;
10410 .sign(|invoice: &UnsignedBolt12Invoice|
10411 self.node_signer.sign_bolt12_invoice(invoice)
10413 .map_err(InvoiceError::from)
10418 Ok(invoice) => Some(OffersMessage::Invoice(invoice)),
10419 Err(error) => Some(OffersMessage::InvoiceError(error.into())),
10422 OffersMessage::Invoice(invoice) => {
10423 let response = invoice
10424 .verify(expanded_key, secp_ctx)
10425 .map_err(|()| InvoiceError::from_string("Unrecognized invoice".to_owned()))
10426 .and_then(|payment_id| {
10427 let features = self.bolt12_invoice_features();
10428 if invoice.invoice_features().requires_unknown_bits_from(&features) {
10429 Err(InvoiceError::from(Bolt12SemanticError::UnknownRequiredFeatures))
10431 self.send_payment_for_bolt12_invoice(&invoice, payment_id)
10433 log_trace!(self.logger, "Failed paying invoice: {:?}", e);
10434 InvoiceError::from_string(format!("{:?}", e))
10441 Err(e) => Some(OffersMessage::InvoiceError(e)),
10444 OffersMessage::InvoiceError(invoice_error) => {
10445 log_trace!(self.logger, "Received invoice_error: {}", invoice_error);
10451 fn release_pending_messages(&self) -> Vec<PendingOnionMessage<OffersMessage>> {
10452 core::mem::take(&mut self.pending_offers_messages.lock().unwrap())
10456 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref>
10457 NodeIdLookUp for ChannelManager<M, T, ES, NS, SP, F, R, L>
10459 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
10460 T::Target: BroadcasterInterface,
10461 ES::Target: EntropySource,
10462 NS::Target: NodeSigner,
10463 SP::Target: SignerProvider,
10464 F::Target: FeeEstimator,
10468 fn next_node_id(&self, short_channel_id: u64) -> Option<PublicKey> {
10469 self.short_to_chan_info.read().unwrap().get(&short_channel_id).map(|(pubkey, _)| *pubkey)
10473 /// Fetches the set of [`NodeFeatures`] flags that are provided by or required by
10474 /// [`ChannelManager`].
10475 pub(crate) fn provided_node_features(config: &UserConfig) -> NodeFeatures {
10476 let mut node_features = provided_init_features(config).to_context();
10477 node_features.set_keysend_optional();
10481 /// Fetches the set of [`Bolt11InvoiceFeatures`] flags that are provided by or required by
10482 /// [`ChannelManager`].
10484 /// Note that the invoice feature flags can vary depending on if the invoice is a "phantom invoice"
10485 /// or not. Thus, this method is not public.
10486 #[cfg(any(feature = "_test_utils", test))]
10487 pub(crate) fn provided_bolt11_invoice_features(config: &UserConfig) -> Bolt11InvoiceFeatures {
10488 provided_init_features(config).to_context()
10491 /// Fetches the set of [`Bolt12InvoiceFeatures`] flags that are provided by or required by
10492 /// [`ChannelManager`].
10493 pub(crate) fn provided_bolt12_invoice_features(config: &UserConfig) -> Bolt12InvoiceFeatures {
10494 provided_init_features(config).to_context()
10497 /// Fetches the set of [`ChannelFeatures`] flags that are provided by or required by
10498 /// [`ChannelManager`].
10499 pub(crate) fn provided_channel_features(config: &UserConfig) -> ChannelFeatures {
10500 provided_init_features(config).to_context()
10503 /// Fetches the set of [`ChannelTypeFeatures`] flags that are provided by or required by
10504 /// [`ChannelManager`].
10505 pub(crate) fn provided_channel_type_features(config: &UserConfig) -> ChannelTypeFeatures {
10506 ChannelTypeFeatures::from_init(&provided_init_features(config))
10509 /// Fetches the set of [`InitFeatures`] flags that are provided by or required by
10510 /// [`ChannelManager`].
10511 pub fn provided_init_features(config: &UserConfig) -> InitFeatures {
10512 // Note that if new features are added here which other peers may (eventually) require, we
10513 // should also add the corresponding (optional) bit to the [`ChannelMessageHandler`] impl for
10514 // [`ErroringMessageHandler`].
10515 let mut features = InitFeatures::empty();
10516 features.set_data_loss_protect_required();
10517 features.set_upfront_shutdown_script_optional();
10518 features.set_variable_length_onion_required();
10519 features.set_static_remote_key_required();
10520 features.set_payment_secret_required();
10521 features.set_basic_mpp_optional();
10522 features.set_wumbo_optional();
10523 features.set_shutdown_any_segwit_optional();
10524 features.set_channel_type_optional();
10525 features.set_scid_privacy_optional();
10526 features.set_zero_conf_optional();
10527 features.set_route_blinding_optional();
10528 if config.channel_handshake_config.negotiate_anchors_zero_fee_htlc_tx {
10529 features.set_anchors_zero_fee_htlc_tx_optional();
10534 const SERIALIZATION_VERSION: u8 = 1;
10535 const MIN_SERIALIZATION_VERSION: u8 = 1;
10537 impl_writeable_tlv_based!(CounterpartyForwardingInfo, {
10538 (2, fee_base_msat, required),
10539 (4, fee_proportional_millionths, required),
10540 (6, cltv_expiry_delta, required),
10543 impl_writeable_tlv_based!(ChannelCounterparty, {
10544 (2, node_id, required),
10545 (4, features, required),
10546 (6, unspendable_punishment_reserve, required),
10547 (8, forwarding_info, option),
10548 (9, outbound_htlc_minimum_msat, option),
10549 (11, outbound_htlc_maximum_msat, option),
10552 impl Writeable for ChannelDetails {
10553 fn write<W: Writer>(&self, writer: &mut W) -> Result<(), io::Error> {
10554 // `user_channel_id` used to be a single u64 value. In order to remain backwards compatible with
10555 // versions prior to 0.0.113, the u128 is serialized as two separate u64 values.
10556 let user_channel_id_low = self.user_channel_id as u64;
10557 let user_channel_id_high_opt = Some((self.user_channel_id >> 64) as u64);
10558 write_tlv_fields!(writer, {
10559 (1, self.inbound_scid_alias, option),
10560 (2, self.channel_id, required),
10561 (3, self.channel_type, option),
10562 (4, self.counterparty, required),
10563 (5, self.outbound_scid_alias, option),
10564 (6, self.funding_txo, option),
10565 (7, self.config, option),
10566 (8, self.short_channel_id, option),
10567 (9, self.confirmations, option),
10568 (10, self.channel_value_satoshis, required),
10569 (12, self.unspendable_punishment_reserve, option),
10570 (14, user_channel_id_low, required),
10571 (16, self.balance_msat, required),
10572 (18, self.outbound_capacity_msat, required),
10573 (19, self.next_outbound_htlc_limit_msat, required),
10574 (20, self.inbound_capacity_msat, required),
10575 (21, self.next_outbound_htlc_minimum_msat, required),
10576 (22, self.confirmations_required, option),
10577 (24, self.force_close_spend_delay, option),
10578 (26, self.is_outbound, required),
10579 (28, self.is_channel_ready, required),
10580 (30, self.is_usable, required),
10581 (32, self.is_public, required),
10582 (33, self.inbound_htlc_minimum_msat, option),
10583 (35, self.inbound_htlc_maximum_msat, option),
10584 (37, user_channel_id_high_opt, option),
10585 (39, self.feerate_sat_per_1000_weight, option),
10586 (41, self.channel_shutdown_state, option),
10587 (43, self.pending_inbound_htlcs, optional_vec),
10588 (45, self.pending_outbound_htlcs, optional_vec),
10594 impl Readable for ChannelDetails {
10595 fn read<R: Read>(reader: &mut R) -> Result<Self, DecodeError> {
10596 _init_and_read_len_prefixed_tlv_fields!(reader, {
10597 (1, inbound_scid_alias, option),
10598 (2, channel_id, required),
10599 (3, channel_type, option),
10600 (4, counterparty, required),
10601 (5, outbound_scid_alias, option),
10602 (6, funding_txo, option),
10603 (7, config, option),
10604 (8, short_channel_id, option),
10605 (9, confirmations, option),
10606 (10, channel_value_satoshis, required),
10607 (12, unspendable_punishment_reserve, option),
10608 (14, user_channel_id_low, required),
10609 (16, balance_msat, required),
10610 (18, outbound_capacity_msat, required),
10611 // Note that by the time we get past the required read above, outbound_capacity_msat will be
10612 // filled in, so we can safely unwrap it here.
10613 (19, next_outbound_htlc_limit_msat, (default_value, outbound_capacity_msat.0.unwrap() as u64)),
10614 (20, inbound_capacity_msat, required),
10615 (21, next_outbound_htlc_minimum_msat, (default_value, 0)),
10616 (22, confirmations_required, option),
10617 (24, force_close_spend_delay, option),
10618 (26, is_outbound, required),
10619 (28, is_channel_ready, required),
10620 (30, is_usable, required),
10621 (32, is_public, required),
10622 (33, inbound_htlc_minimum_msat, option),
10623 (35, inbound_htlc_maximum_msat, option),
10624 (37, user_channel_id_high_opt, option),
10625 (39, feerate_sat_per_1000_weight, option),
10626 (41, channel_shutdown_state, option),
10627 (43, pending_inbound_htlcs, optional_vec),
10628 (45, pending_outbound_htlcs, optional_vec),
10631 // `user_channel_id` used to be a single u64 value. In order to remain backwards compatible with
10632 // versions prior to 0.0.113, the u128 is serialized as two separate u64 values.
10633 let user_channel_id_low: u64 = user_channel_id_low.0.unwrap();
10634 let user_channel_id = user_channel_id_low as u128 +
10635 ((user_channel_id_high_opt.unwrap_or(0 as u64) as u128) << 64);
10638 inbound_scid_alias,
10639 channel_id: channel_id.0.unwrap(),
10641 counterparty: counterparty.0.unwrap(),
10642 outbound_scid_alias,
10646 channel_value_satoshis: channel_value_satoshis.0.unwrap(),
10647 unspendable_punishment_reserve,
10649 balance_msat: balance_msat.0.unwrap(),
10650 outbound_capacity_msat: outbound_capacity_msat.0.unwrap(),
10651 next_outbound_htlc_limit_msat: next_outbound_htlc_limit_msat.0.unwrap(),
10652 next_outbound_htlc_minimum_msat: next_outbound_htlc_minimum_msat.0.unwrap(),
10653 inbound_capacity_msat: inbound_capacity_msat.0.unwrap(),
10654 confirmations_required,
10656 force_close_spend_delay,
10657 is_outbound: is_outbound.0.unwrap(),
10658 is_channel_ready: is_channel_ready.0.unwrap(),
10659 is_usable: is_usable.0.unwrap(),
10660 is_public: is_public.0.unwrap(),
10661 inbound_htlc_minimum_msat,
10662 inbound_htlc_maximum_msat,
10663 feerate_sat_per_1000_weight,
10664 channel_shutdown_state,
10665 pending_inbound_htlcs: pending_inbound_htlcs.unwrap_or(Vec::new()),
10666 pending_outbound_htlcs: pending_outbound_htlcs.unwrap_or(Vec::new()),
10671 impl_writeable_tlv_based!(PhantomRouteHints, {
10672 (2, channels, required_vec),
10673 (4, phantom_scid, required),
10674 (6, real_node_pubkey, required),
10677 impl_writeable_tlv_based!(BlindedForward, {
10678 (0, inbound_blinding_point, required),
10679 (1, failure, (default_value, BlindedFailure::FromIntroductionNode)),
10682 impl_writeable_tlv_based_enum!(PendingHTLCRouting,
10684 (0, onion_packet, required),
10685 (1, blinded, option),
10686 (2, short_channel_id, required),
10689 (0, payment_data, required),
10690 (1, phantom_shared_secret, option),
10691 (2, incoming_cltv_expiry, required),
10692 (3, payment_metadata, option),
10693 (5, custom_tlvs, optional_vec),
10694 (7, requires_blinded_error, (default_value, false)),
10695 (9, payment_context, option),
10697 (2, ReceiveKeysend) => {
10698 (0, payment_preimage, required),
10699 (1, requires_blinded_error, (default_value, false)),
10700 (2, incoming_cltv_expiry, required),
10701 (3, payment_metadata, option),
10702 (4, payment_data, option), // Added in 0.0.116
10703 (5, custom_tlvs, optional_vec),
10707 impl_writeable_tlv_based!(PendingHTLCInfo, {
10708 (0, routing, required),
10709 (2, incoming_shared_secret, required),
10710 (4, payment_hash, required),
10711 (6, outgoing_amt_msat, required),
10712 (8, outgoing_cltv_value, required),
10713 (9, incoming_amt_msat, option),
10714 (10, skimmed_fee_msat, option),
10718 impl Writeable for HTLCFailureMsg {
10719 fn write<W: Writer>(&self, writer: &mut W) -> Result<(), io::Error> {
10721 HTLCFailureMsg::Relay(msgs::UpdateFailHTLC { channel_id, htlc_id, reason }) => {
10722 0u8.write(writer)?;
10723 channel_id.write(writer)?;
10724 htlc_id.write(writer)?;
10725 reason.write(writer)?;
10727 HTLCFailureMsg::Malformed(msgs::UpdateFailMalformedHTLC {
10728 channel_id, htlc_id, sha256_of_onion, failure_code
10730 1u8.write(writer)?;
10731 channel_id.write(writer)?;
10732 htlc_id.write(writer)?;
10733 sha256_of_onion.write(writer)?;
10734 failure_code.write(writer)?;
10741 impl Readable for HTLCFailureMsg {
10742 fn read<R: Read>(reader: &mut R) -> Result<Self, DecodeError> {
10743 let id: u8 = Readable::read(reader)?;
10746 Ok(HTLCFailureMsg::Relay(msgs::UpdateFailHTLC {
10747 channel_id: Readable::read(reader)?,
10748 htlc_id: Readable::read(reader)?,
10749 reason: Readable::read(reader)?,
10753 Ok(HTLCFailureMsg::Malformed(msgs::UpdateFailMalformedHTLC {
10754 channel_id: Readable::read(reader)?,
10755 htlc_id: Readable::read(reader)?,
10756 sha256_of_onion: Readable::read(reader)?,
10757 failure_code: Readable::read(reader)?,
10760 // In versions prior to 0.0.101, HTLCFailureMsg objects were written with type 0 or 1 but
10761 // weren't length-prefixed and thus didn't support reading the TLV stream suffix of the network
10762 // messages contained in the variants.
10763 // In version 0.0.101, support for reading the variants with these types was added, and
10764 // we should migrate to writing these variants when UpdateFailHTLC or
10765 // UpdateFailMalformedHTLC get TLV fields.
10767 let length: BigSize = Readable::read(reader)?;
10768 let mut s = FixedLengthReader::new(reader, length.0);
10769 let res = Readable::read(&mut s)?;
10770 s.eat_remaining()?; // Return ShortRead if there's actually not enough bytes
10771 Ok(HTLCFailureMsg::Relay(res))
10774 let length: BigSize = Readable::read(reader)?;
10775 let mut s = FixedLengthReader::new(reader, length.0);
10776 let res = Readable::read(&mut s)?;
10777 s.eat_remaining()?; // Return ShortRead if there's actually not enough bytes
10778 Ok(HTLCFailureMsg::Malformed(res))
10780 _ => Err(DecodeError::UnknownRequiredFeature),
10785 impl_writeable_tlv_based_enum!(PendingHTLCStatus, ;
10790 impl_writeable_tlv_based_enum!(BlindedFailure,
10791 (0, FromIntroductionNode) => {},
10792 (2, FromBlindedNode) => {}, ;
10795 impl_writeable_tlv_based!(HTLCPreviousHopData, {
10796 (0, short_channel_id, required),
10797 (1, phantom_shared_secret, option),
10798 (2, outpoint, required),
10799 (3, blinded_failure, option),
10800 (4, htlc_id, required),
10801 (6, incoming_packet_shared_secret, required),
10802 (7, user_channel_id, option),
10803 // Note that by the time we get past the required read for type 2 above, outpoint will be
10804 // filled in, so we can safely unwrap it here.
10805 (9, channel_id, (default_value, ChannelId::v1_from_funding_outpoint(outpoint.0.unwrap()))),
10808 impl Writeable for ClaimableHTLC {
10809 fn write<W: Writer>(&self, writer: &mut W) -> Result<(), io::Error> {
10810 let (payment_data, keysend_preimage) = match &self.onion_payload {
10811 OnionPayload::Invoice { _legacy_hop_data } => {
10812 (_legacy_hop_data.as_ref(), None)
10814 OnionPayload::Spontaneous(preimage) => (None, Some(preimage)),
10816 write_tlv_fields!(writer, {
10817 (0, self.prev_hop, required),
10818 (1, self.total_msat, required),
10819 (2, self.value, required),
10820 (3, self.sender_intended_value, required),
10821 (4, payment_data, option),
10822 (5, self.total_value_received, option),
10823 (6, self.cltv_expiry, required),
10824 (8, keysend_preimage, option),
10825 (10, self.counterparty_skimmed_fee_msat, option),
10831 impl Readable for ClaimableHTLC {
10832 fn read<R: Read>(reader: &mut R) -> Result<Self, DecodeError> {
10833 _init_and_read_len_prefixed_tlv_fields!(reader, {
10834 (0, prev_hop, required),
10835 (1, total_msat, option),
10836 (2, value_ser, required),
10837 (3, sender_intended_value, option),
10838 (4, payment_data_opt, option),
10839 (5, total_value_received, option),
10840 (6, cltv_expiry, required),
10841 (8, keysend_preimage, option),
10842 (10, counterparty_skimmed_fee_msat, option),
10844 let payment_data: Option<msgs::FinalOnionHopData> = payment_data_opt;
10845 let value = value_ser.0.unwrap();
10846 let onion_payload = match keysend_preimage {
10848 if payment_data.is_some() {
10849 return Err(DecodeError::InvalidValue)
10851 if total_msat.is_none() {
10852 total_msat = Some(value);
10854 OnionPayload::Spontaneous(p)
10857 if total_msat.is_none() {
10858 if payment_data.is_none() {
10859 return Err(DecodeError::InvalidValue)
10861 total_msat = Some(payment_data.as_ref().unwrap().total_msat);
10863 OnionPayload::Invoice { _legacy_hop_data: payment_data }
10867 prev_hop: prev_hop.0.unwrap(),
10870 sender_intended_value: sender_intended_value.unwrap_or(value),
10871 total_value_received,
10872 total_msat: total_msat.unwrap(),
10874 cltv_expiry: cltv_expiry.0.unwrap(),
10875 counterparty_skimmed_fee_msat,
10880 impl Readable for HTLCSource {
10881 fn read<R: Read>(reader: &mut R) -> Result<Self, DecodeError> {
10882 let id: u8 = Readable::read(reader)?;
10885 let mut session_priv: crate::util::ser::RequiredWrapper<SecretKey> = crate::util::ser::RequiredWrapper(None);
10886 let mut first_hop_htlc_msat: u64 = 0;
10887 let mut path_hops = Vec::new();
10888 let mut payment_id = None;
10889 let mut payment_params: Option<PaymentParameters> = None;
10890 let mut blinded_tail: Option<BlindedTail> = None;
10891 read_tlv_fields!(reader, {
10892 (0, session_priv, required),
10893 (1, payment_id, option),
10894 (2, first_hop_htlc_msat, required),
10895 (4, path_hops, required_vec),
10896 (5, payment_params, (option: ReadableArgs, 0)),
10897 (6, blinded_tail, option),
10899 if payment_id.is_none() {
10900 // For backwards compat, if there was no payment_id written, use the session_priv bytes
10902 payment_id = Some(PaymentId(*session_priv.0.unwrap().as_ref()));
10904 let path = Path { hops: path_hops, blinded_tail };
10905 if path.hops.len() == 0 {
10906 return Err(DecodeError::InvalidValue);
10908 if let Some(params) = payment_params.as_mut() {
10909 if let Payee::Clear { ref mut final_cltv_expiry_delta, .. } = params.payee {
10910 if final_cltv_expiry_delta == &0 {
10911 *final_cltv_expiry_delta = path.final_cltv_expiry_delta().ok_or(DecodeError::InvalidValue)?;
10915 Ok(HTLCSource::OutboundRoute {
10916 session_priv: session_priv.0.unwrap(),
10917 first_hop_htlc_msat,
10919 payment_id: payment_id.unwrap(),
10922 1 => Ok(HTLCSource::PreviousHopData(Readable::read(reader)?)),
10923 _ => Err(DecodeError::UnknownRequiredFeature),
10928 impl Writeable for HTLCSource {
10929 fn write<W: Writer>(&self, writer: &mut W) -> Result<(), crate::io::Error> {
10931 HTLCSource::OutboundRoute { ref session_priv, ref first_hop_htlc_msat, ref path, payment_id } => {
10932 0u8.write(writer)?;
10933 let payment_id_opt = Some(payment_id);
10934 write_tlv_fields!(writer, {
10935 (0, session_priv, required),
10936 (1, payment_id_opt, option),
10937 (2, first_hop_htlc_msat, required),
10938 // 3 was previously used to write a PaymentSecret for the payment.
10939 (4, path.hops, required_vec),
10940 (5, None::<PaymentParameters>, option), // payment_params in LDK versions prior to 0.0.115
10941 (6, path.blinded_tail, option),
10944 HTLCSource::PreviousHopData(ref field) => {
10945 1u8.write(writer)?;
10946 field.write(writer)?;
10953 impl_writeable_tlv_based!(PendingAddHTLCInfo, {
10954 (0, forward_info, required),
10955 (1, prev_user_channel_id, (default_value, 0)),
10956 (2, prev_short_channel_id, required),
10957 (4, prev_htlc_id, required),
10958 (6, prev_funding_outpoint, required),
10959 // Note that by the time we get past the required read for type 6 above, prev_funding_outpoint will be
10960 // filled in, so we can safely unwrap it here.
10961 (7, prev_channel_id, (default_value, ChannelId::v1_from_funding_outpoint(prev_funding_outpoint.0.unwrap()))),
10964 impl Writeable for HTLCForwardInfo {
10965 fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
10966 const FAIL_HTLC_VARIANT_ID: u8 = 1;
10968 Self::AddHTLC(info) => {
10972 Self::FailHTLC { htlc_id, err_packet } => {
10973 FAIL_HTLC_VARIANT_ID.write(w)?;
10974 write_tlv_fields!(w, {
10975 (0, htlc_id, required),
10976 (2, err_packet, required),
10979 Self::FailMalformedHTLC { htlc_id, failure_code, sha256_of_onion } => {
10980 // Since this variant was added in 0.0.119, write this as `::FailHTLC` with an empty error
10981 // packet so older versions have something to fail back with, but serialize the real data as
10982 // optional TLVs for the benefit of newer versions.
10983 FAIL_HTLC_VARIANT_ID.write(w)?;
10984 let dummy_err_packet = msgs::OnionErrorPacket { data: Vec::new() };
10985 write_tlv_fields!(w, {
10986 (0, htlc_id, required),
10987 (1, failure_code, required),
10988 (2, dummy_err_packet, required),
10989 (3, sha256_of_onion, required),
10997 impl Readable for HTLCForwardInfo {
10998 fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
10999 let id: u8 = Readable::read(r)?;
11001 0 => Self::AddHTLC(Readable::read(r)?),
11003 _init_and_read_len_prefixed_tlv_fields!(r, {
11004 (0, htlc_id, required),
11005 (1, malformed_htlc_failure_code, option),
11006 (2, err_packet, required),
11007 (3, sha256_of_onion, option),
11009 if let Some(failure_code) = malformed_htlc_failure_code {
11010 Self::FailMalformedHTLC {
11011 htlc_id: _init_tlv_based_struct_field!(htlc_id, required),
11013 sha256_of_onion: sha256_of_onion.ok_or(DecodeError::InvalidValue)?,
11017 htlc_id: _init_tlv_based_struct_field!(htlc_id, required),
11018 err_packet: _init_tlv_based_struct_field!(err_packet, required),
11022 _ => return Err(DecodeError::InvalidValue),
11027 impl_writeable_tlv_based!(PendingInboundPayment, {
11028 (0, payment_secret, required),
11029 (2, expiry_time, required),
11030 (4, user_payment_id, required),
11031 (6, payment_preimage, required),
11032 (8, min_value_msat, required),
11035 impl<M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref> Writeable for ChannelManager<M, T, ES, NS, SP, F, R, L>
11037 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
11038 T::Target: BroadcasterInterface,
11039 ES::Target: EntropySource,
11040 NS::Target: NodeSigner,
11041 SP::Target: SignerProvider,
11042 F::Target: FeeEstimator,
11046 fn write<W: Writer>(&self, writer: &mut W) -> Result<(), io::Error> {
11047 let _consistency_lock = self.total_consistency_lock.write().unwrap();
11049 write_ver_prefix!(writer, SERIALIZATION_VERSION, MIN_SERIALIZATION_VERSION);
11051 self.chain_hash.write(writer)?;
11053 let best_block = self.best_block.read().unwrap();
11054 best_block.height.write(writer)?;
11055 best_block.block_hash.write(writer)?;
11058 let per_peer_state = self.per_peer_state.write().unwrap();
11060 let mut serializable_peer_count: u64 = 0;
11062 let mut number_of_funded_channels = 0;
11063 for (_, peer_state_mutex) in per_peer_state.iter() {
11064 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
11065 let peer_state = &mut *peer_state_lock;
11066 if !peer_state.ok_to_remove(false) {
11067 serializable_peer_count += 1;
11070 number_of_funded_channels += peer_state.channel_by_id.iter().filter(
11071 |(_, phase)| if let ChannelPhase::Funded(chan) = phase { chan.context.is_funding_broadcast() } else { false }
11075 (number_of_funded_channels as u64).write(writer)?;
11077 for (_, peer_state_mutex) in per_peer_state.iter() {
11078 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
11079 let peer_state = &mut *peer_state_lock;
11080 for channel in peer_state.channel_by_id.iter().filter_map(
11081 |(_, phase)| if let ChannelPhase::Funded(channel) = phase {
11082 if channel.context.is_funding_broadcast() { Some(channel) } else { None }
11085 channel.write(writer)?;
11091 let forward_htlcs = self.forward_htlcs.lock().unwrap();
11092 (forward_htlcs.len() as u64).write(writer)?;
11093 for (short_channel_id, pending_forwards) in forward_htlcs.iter() {
11094 short_channel_id.write(writer)?;
11095 (pending_forwards.len() as u64).write(writer)?;
11096 for forward in pending_forwards {
11097 forward.write(writer)?;
11102 let mut decode_update_add_htlcs_opt = None;
11103 let decode_update_add_htlcs = self.decode_update_add_htlcs.lock().unwrap();
11104 if !decode_update_add_htlcs.is_empty() {
11105 decode_update_add_htlcs_opt = Some(decode_update_add_htlcs);
11108 let pending_inbound_payments = self.pending_inbound_payments.lock().unwrap();
11109 let claimable_payments = self.claimable_payments.lock().unwrap();
11110 let pending_outbound_payments = self.pending_outbound_payments.pending_outbound_payments.lock().unwrap();
11112 let mut htlc_purposes: Vec<&events::PaymentPurpose> = Vec::new();
11113 let mut htlc_onion_fields: Vec<&_> = Vec::new();
11114 (claimable_payments.claimable_payments.len() as u64).write(writer)?;
11115 for (payment_hash, payment) in claimable_payments.claimable_payments.iter() {
11116 payment_hash.write(writer)?;
11117 (payment.htlcs.len() as u64).write(writer)?;
11118 for htlc in payment.htlcs.iter() {
11119 htlc.write(writer)?;
11121 htlc_purposes.push(&payment.purpose);
11122 htlc_onion_fields.push(&payment.onion_fields);
11125 let mut monitor_update_blocked_actions_per_peer = None;
11126 let mut peer_states = Vec::new();
11127 for (_, peer_state_mutex) in per_peer_state.iter() {
11128 // Because we're holding the owning `per_peer_state` write lock here there's no chance
11129 // of a lockorder violation deadlock - no other thread can be holding any
11130 // per_peer_state lock at all.
11131 peer_states.push(peer_state_mutex.unsafe_well_ordered_double_lock_self());
11134 (serializable_peer_count).write(writer)?;
11135 for ((peer_pubkey, _), peer_state) in per_peer_state.iter().zip(peer_states.iter()) {
11136 // Peers which we have no channels to should be dropped once disconnected. As we
11137 // disconnect all peers when shutting down and serializing the ChannelManager, we
11138 // consider all peers as disconnected here. There's therefore no need write peers with
11140 if !peer_state.ok_to_remove(false) {
11141 peer_pubkey.write(writer)?;
11142 peer_state.latest_features.write(writer)?;
11143 if !peer_state.monitor_update_blocked_actions.is_empty() {
11144 monitor_update_blocked_actions_per_peer
11145 .get_or_insert_with(Vec::new)
11146 .push((*peer_pubkey, &peer_state.monitor_update_blocked_actions));
11151 let events = self.pending_events.lock().unwrap();
11152 // LDK versions prior to 0.0.115 don't support post-event actions, thus if there's no
11153 // actions at all, skip writing the required TLV. Otherwise, pre-0.0.115 versions will
11154 // refuse to read the new ChannelManager.
11155 let events_not_backwards_compatible = events.iter().any(|(_, action)| action.is_some());
11156 if events_not_backwards_compatible {
11157 // If we're gonna write a even TLV that will overwrite our events anyway we might as
11158 // well save the space and not write any events here.
11159 0u64.write(writer)?;
11161 (events.len() as u64).write(writer)?;
11162 for (event, _) in events.iter() {
11163 event.write(writer)?;
11167 // LDK versions prior to 0.0.116 wrote the `pending_background_events`
11168 // `MonitorUpdateRegeneratedOnStartup`s here, however there was never a reason to do so -
11169 // the closing monitor updates were always effectively replayed on startup (either directly
11170 // by calling `broadcast_latest_holder_commitment_txn` on a `ChannelMonitor` during
11171 // deserialization or, in 0.0.115, by regenerating the monitor update itself).
11172 0u64.write(writer)?;
11174 // Prior to 0.0.111 we tracked node_announcement serials here, however that now happens in
11175 // `PeerManager`, and thus we simply write the `highest_seen_timestamp` twice, which is
11176 // likely to be identical.
11177 (self.highest_seen_timestamp.load(Ordering::Acquire) as u32).write(writer)?;
11178 (self.highest_seen_timestamp.load(Ordering::Acquire) as u32).write(writer)?;
11180 (pending_inbound_payments.len() as u64).write(writer)?;
11181 for (hash, pending_payment) in pending_inbound_payments.iter() {
11182 hash.write(writer)?;
11183 pending_payment.write(writer)?;
11186 // For backwards compat, write the session privs and their total length.
11187 let mut num_pending_outbounds_compat: u64 = 0;
11188 for (_, outbound) in pending_outbound_payments.iter() {
11189 if !outbound.is_fulfilled() && !outbound.abandoned() {
11190 num_pending_outbounds_compat += outbound.remaining_parts() as u64;
11193 num_pending_outbounds_compat.write(writer)?;
11194 for (_, outbound) in pending_outbound_payments.iter() {
11196 PendingOutboundPayment::Legacy { session_privs } |
11197 PendingOutboundPayment::Retryable { session_privs, .. } => {
11198 for session_priv in session_privs.iter() {
11199 session_priv.write(writer)?;
11202 PendingOutboundPayment::AwaitingInvoice { .. } => {},
11203 PendingOutboundPayment::InvoiceReceived { .. } => {},
11204 PendingOutboundPayment::Fulfilled { .. } => {},
11205 PendingOutboundPayment::Abandoned { .. } => {},
11209 // Encode without retry info for 0.0.101 compatibility.
11210 let mut pending_outbound_payments_no_retry: HashMap<PaymentId, HashSet<[u8; 32]>> = new_hash_map();
11211 for (id, outbound) in pending_outbound_payments.iter() {
11213 PendingOutboundPayment::Legacy { session_privs } |
11214 PendingOutboundPayment::Retryable { session_privs, .. } => {
11215 pending_outbound_payments_no_retry.insert(*id, session_privs.clone());
11221 let mut pending_intercepted_htlcs = None;
11222 let our_pending_intercepts = self.pending_intercepted_htlcs.lock().unwrap();
11223 if our_pending_intercepts.len() != 0 {
11224 pending_intercepted_htlcs = Some(our_pending_intercepts);
11227 let mut pending_claiming_payments = Some(&claimable_payments.pending_claiming_payments);
11228 if pending_claiming_payments.as_ref().unwrap().is_empty() {
11229 // LDK versions prior to 0.0.113 do not know how to read the pending claimed payments
11230 // map. Thus, if there are no entries we skip writing a TLV for it.
11231 pending_claiming_payments = None;
11234 let mut in_flight_monitor_updates: Option<HashMap<(&PublicKey, &OutPoint), &Vec<ChannelMonitorUpdate>>> = None;
11235 for ((counterparty_id, _), peer_state) in per_peer_state.iter().zip(peer_states.iter()) {
11236 for (funding_outpoint, updates) in peer_state.in_flight_monitor_updates.iter() {
11237 if !updates.is_empty() {
11238 if in_flight_monitor_updates.is_none() { in_flight_monitor_updates = Some(new_hash_map()); }
11239 in_flight_monitor_updates.as_mut().unwrap().insert((counterparty_id, funding_outpoint), updates);
11244 write_tlv_fields!(writer, {
11245 (1, pending_outbound_payments_no_retry, required),
11246 (2, pending_intercepted_htlcs, option),
11247 (3, pending_outbound_payments, required),
11248 (4, pending_claiming_payments, option),
11249 (5, self.our_network_pubkey, required),
11250 (6, monitor_update_blocked_actions_per_peer, option),
11251 (7, self.fake_scid_rand_bytes, required),
11252 (8, if events_not_backwards_compatible { Some(&*events) } else { None }, option),
11253 (9, htlc_purposes, required_vec),
11254 (10, in_flight_monitor_updates, option),
11255 (11, self.probing_cookie_secret, required),
11256 (13, htlc_onion_fields, optional_vec),
11257 (14, decode_update_add_htlcs_opt, option),
11264 impl Writeable for VecDeque<(Event, Option<EventCompletionAction>)> {
11265 fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
11266 (self.len() as u64).write(w)?;
11267 for (event, action) in self.iter() {
11270 #[cfg(debug_assertions)] {
11271 // Events are MaybeReadable, in some cases indicating that they shouldn't actually
11272 // be persisted and are regenerated on restart. However, if such an event has a
11273 // post-event-handling action we'll write nothing for the event and would have to
11274 // either forget the action or fail on deserialization (which we do below). Thus,
11275 // check that the event is sane here.
11276 let event_encoded = event.encode();
11277 let event_read: Option<Event> =
11278 MaybeReadable::read(&mut &event_encoded[..]).unwrap();
11279 if action.is_some() { assert!(event_read.is_some()); }
11285 impl Readable for VecDeque<(Event, Option<EventCompletionAction>)> {
11286 fn read<R: Read>(reader: &mut R) -> Result<Self, DecodeError> {
11287 let len: u64 = Readable::read(reader)?;
11288 const MAX_ALLOC_SIZE: u64 = 1024 * 16;
11289 let mut events: Self = VecDeque::with_capacity(cmp::min(
11290 MAX_ALLOC_SIZE/mem::size_of::<(events::Event, Option<EventCompletionAction>)>() as u64,
11293 let ev_opt = MaybeReadable::read(reader)?;
11294 let action = Readable::read(reader)?;
11295 if let Some(ev) = ev_opt {
11296 events.push_back((ev, action));
11297 } else if action.is_some() {
11298 return Err(DecodeError::InvalidValue);
11305 impl_writeable_tlv_based_enum!(ChannelShutdownState,
11306 (0, NotShuttingDown) => {},
11307 (2, ShutdownInitiated) => {},
11308 (4, ResolvingHTLCs) => {},
11309 (6, NegotiatingClosingFee) => {},
11310 (8, ShutdownComplete) => {}, ;
11313 /// Arguments for the creation of a ChannelManager that are not deserialized.
11315 /// At a high-level, the process for deserializing a ChannelManager and resuming normal operation
11317 /// 1) Deserialize all stored [`ChannelMonitor`]s.
11318 /// 2) Deserialize the [`ChannelManager`] by filling in this struct and calling:
11319 /// `<(BlockHash, ChannelManager)>::read(reader, args)`
11320 /// This may result in closing some channels if the [`ChannelMonitor`] is newer than the stored
11321 /// [`ChannelManager`] state to ensure no loss of funds. Thus, transactions may be broadcasted.
11322 /// 3) If you are not fetching full blocks, register all relevant [`ChannelMonitor`] outpoints the
11323 /// same way you would handle a [`chain::Filter`] call using
11324 /// [`ChannelMonitor::get_outputs_to_watch`] and [`ChannelMonitor::get_funding_txo`].
11325 /// 4) Reconnect blocks on your [`ChannelMonitor`]s.
11326 /// 5) Disconnect/connect blocks on the [`ChannelManager`].
11327 /// 6) Re-persist the [`ChannelMonitor`]s to ensure the latest state is on disk.
11328 /// Note that if you're using a [`ChainMonitor`] for your [`chain::Watch`] implementation, you
11329 /// will likely accomplish this as a side-effect of calling [`chain::Watch::watch_channel`] in
11331 /// 7) Move the [`ChannelMonitor`]s into your local [`chain::Watch`]. If you're using a
11332 /// [`ChainMonitor`], this is done by calling [`chain::Watch::watch_channel`].
11334 /// Note that the ordering of #4-7 is not of importance, however all four must occur before you
11335 /// call any other methods on the newly-deserialized [`ChannelManager`].
11337 /// Note that because some channels may be closed during deserialization, it is critical that you
11338 /// always deserialize only the latest version of a ChannelManager and ChannelMonitors available to
11339 /// you. If you deserialize an old ChannelManager (during which force-closure transactions may be
11340 /// broadcast), and then later deserialize a newer version of the same ChannelManager (which will
11341 /// not force-close the same channels but consider them live), you may end up revoking a state for
11342 /// which you've already broadcasted the transaction.
11344 /// [`ChainMonitor`]: crate::chain::chainmonitor::ChainMonitor
11345 pub struct ChannelManagerReadArgs<'a, M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref>
11347 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
11348 T::Target: BroadcasterInterface,
11349 ES::Target: EntropySource,
11350 NS::Target: NodeSigner,
11351 SP::Target: SignerProvider,
11352 F::Target: FeeEstimator,
11356 /// A cryptographically secure source of entropy.
11357 pub entropy_source: ES,
11359 /// A signer that is able to perform node-scoped cryptographic operations.
11360 pub node_signer: NS,
11362 /// The keys provider which will give us relevant keys. Some keys will be loaded during
11363 /// deserialization and KeysInterface::read_chan_signer will be used to read per-Channel
11365 pub signer_provider: SP,
11367 /// The fee_estimator for use in the ChannelManager in the future.
11369 /// No calls to the FeeEstimator will be made during deserialization.
11370 pub fee_estimator: F,
11371 /// The chain::Watch for use in the ChannelManager in the future.
11373 /// No calls to the chain::Watch will be made during deserialization. It is assumed that
11374 /// you have deserialized ChannelMonitors separately and will add them to your
11375 /// chain::Watch after deserializing this ChannelManager.
11376 pub chain_monitor: M,
11378 /// The BroadcasterInterface which will be used in the ChannelManager in the future and may be
11379 /// used to broadcast the latest local commitment transactions of channels which must be
11380 /// force-closed during deserialization.
11381 pub tx_broadcaster: T,
11382 /// The router which will be used in the ChannelManager in the future for finding routes
11383 /// on-the-fly for trampoline payments. Absent in private nodes that don't support forwarding.
11385 /// No calls to the router will be made during deserialization.
11387 /// The Logger for use in the ChannelManager and which may be used to log information during
11388 /// deserialization.
11390 /// Default settings used for new channels. Any existing channels will continue to use the
11391 /// runtime settings which were stored when the ChannelManager was serialized.
11392 pub default_config: UserConfig,
11394 /// A map from channel funding outpoints to ChannelMonitors for those channels (ie
11395 /// value.context.get_funding_txo() should be the key).
11397 /// If a monitor is inconsistent with the channel state during deserialization the channel will
11398 /// be force-closed using the data in the ChannelMonitor and the channel will be dropped. This
11399 /// is true for missing channels as well. If there is a monitor missing for which we find
11400 /// channel data Err(DecodeError::InvalidValue) will be returned.
11402 /// In such cases the latest local transactions will be sent to the tx_broadcaster included in
11405 /// This is not exported to bindings users because we have no HashMap bindings
11406 pub channel_monitors: HashMap<OutPoint, &'a mut ChannelMonitor<<SP::Target as SignerProvider>::EcdsaSigner>>,
11409 impl<'a, M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref>
11410 ChannelManagerReadArgs<'a, M, T, ES, NS, SP, F, R, L>
11412 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
11413 T::Target: BroadcasterInterface,
11414 ES::Target: EntropySource,
11415 NS::Target: NodeSigner,
11416 SP::Target: SignerProvider,
11417 F::Target: FeeEstimator,
11421 /// Simple utility function to create a ChannelManagerReadArgs which creates the monitor
11422 /// HashMap for you. This is primarily useful for C bindings where it is not practical to
11423 /// populate a HashMap directly from C.
11424 pub fn new(entropy_source: ES, node_signer: NS, signer_provider: SP, fee_estimator: F, chain_monitor: M, tx_broadcaster: T, router: R, logger: L, default_config: UserConfig,
11425 mut channel_monitors: Vec<&'a mut ChannelMonitor<<SP::Target as SignerProvider>::EcdsaSigner>>) -> Self {
11427 entropy_source, node_signer, signer_provider, fee_estimator, chain_monitor, tx_broadcaster, router, logger, default_config,
11428 channel_monitors: hash_map_from_iter(
11429 channel_monitors.drain(..).map(|monitor| { (monitor.get_funding_txo().0, monitor) })
11435 // Implement ReadableArgs for an Arc'd ChannelManager to make it a bit easier to work with the
11436 // SipmleArcChannelManager type:
11437 impl<'a, M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref>
11438 ReadableArgs<ChannelManagerReadArgs<'a, M, T, ES, NS, SP, F, R, L>> for (BlockHash, Arc<ChannelManager<M, T, ES, NS, SP, F, R, L>>)
11440 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
11441 T::Target: BroadcasterInterface,
11442 ES::Target: EntropySource,
11443 NS::Target: NodeSigner,
11444 SP::Target: SignerProvider,
11445 F::Target: FeeEstimator,
11449 fn read<Reader: io::Read>(reader: &mut Reader, args: ChannelManagerReadArgs<'a, M, T, ES, NS, SP, F, R, L>) -> Result<Self, DecodeError> {
11450 let (blockhash, chan_manager) = <(BlockHash, ChannelManager<M, T, ES, NS, SP, F, R, L>)>::read(reader, args)?;
11451 Ok((blockhash, Arc::new(chan_manager)))
11455 impl<'a, M: Deref, T: Deref, ES: Deref, NS: Deref, SP: Deref, F: Deref, R: Deref, L: Deref>
11456 ReadableArgs<ChannelManagerReadArgs<'a, M, T, ES, NS, SP, F, R, L>> for (BlockHash, ChannelManager<M, T, ES, NS, SP, F, R, L>)
11458 M::Target: chain::Watch<<SP::Target as SignerProvider>::EcdsaSigner>,
11459 T::Target: BroadcasterInterface,
11460 ES::Target: EntropySource,
11461 NS::Target: NodeSigner,
11462 SP::Target: SignerProvider,
11463 F::Target: FeeEstimator,
11467 fn read<Reader: io::Read>(reader: &mut Reader, mut args: ChannelManagerReadArgs<'a, M, T, ES, NS, SP, F, R, L>) -> Result<Self, DecodeError> {
11468 let _ver = read_ver_prefix!(reader, SERIALIZATION_VERSION);
11470 let chain_hash: ChainHash = Readable::read(reader)?;
11471 let best_block_height: u32 = Readable::read(reader)?;
11472 let best_block_hash: BlockHash = Readable::read(reader)?;
11474 let mut failed_htlcs = Vec::new();
11476 let channel_count: u64 = Readable::read(reader)?;
11477 let mut funding_txo_set = hash_set_with_capacity(cmp::min(channel_count as usize, 128));
11478 let mut funded_peer_channels: HashMap<PublicKey, HashMap<ChannelId, ChannelPhase<SP>>> = hash_map_with_capacity(cmp::min(channel_count as usize, 128));
11479 let mut outpoint_to_peer = hash_map_with_capacity(cmp::min(channel_count as usize, 128));
11480 let mut short_to_chan_info = hash_map_with_capacity(cmp::min(channel_count as usize, 128));
11481 let mut channel_closures = VecDeque::new();
11482 let mut close_background_events = Vec::new();
11483 let mut funding_txo_to_channel_id = hash_map_with_capacity(channel_count as usize);
11484 for _ in 0..channel_count {
11485 let mut channel: Channel<SP> = Channel::read(reader, (
11486 &args.entropy_source, &args.signer_provider, best_block_height, &provided_channel_type_features(&args.default_config)
11488 let logger = WithChannelContext::from(&args.logger, &channel.context);
11489 let funding_txo = channel.context.get_funding_txo().ok_or(DecodeError::InvalidValue)?;
11490 funding_txo_to_channel_id.insert(funding_txo, channel.context.channel_id());
11491 funding_txo_set.insert(funding_txo.clone());
11492 if let Some(ref mut monitor) = args.channel_monitors.get_mut(&funding_txo) {
11493 if channel.get_cur_holder_commitment_transaction_number() > monitor.get_cur_holder_commitment_number() ||
11494 channel.get_revoked_counterparty_commitment_transaction_number() > monitor.get_min_seen_secret() ||
11495 channel.get_cur_counterparty_commitment_transaction_number() > monitor.get_cur_counterparty_commitment_number() ||
11496 channel.context.get_latest_monitor_update_id() < monitor.get_latest_update_id() {
11497 // But if the channel is behind of the monitor, close the channel:
11498 log_error!(logger, "A ChannelManager is stale compared to the current ChannelMonitor!");
11499 log_error!(logger, " The channel will be force-closed and the latest commitment transaction from the ChannelMonitor broadcast.");
11500 if channel.context.get_latest_monitor_update_id() < monitor.get_latest_update_id() {
11501 log_error!(logger, " The ChannelMonitor for channel {} is at update_id {} but the ChannelManager is at update_id {}.",
11502 &channel.context.channel_id(), monitor.get_latest_update_id(), channel.context.get_latest_monitor_update_id());
11504 if channel.get_cur_holder_commitment_transaction_number() > monitor.get_cur_holder_commitment_number() {
11505 log_error!(logger, " The ChannelMonitor for channel {} is at holder commitment number {} but the ChannelManager is at holder commitment number {}.",
11506 &channel.context.channel_id(), monitor.get_cur_holder_commitment_number(), channel.get_cur_holder_commitment_transaction_number());
11508 if channel.get_revoked_counterparty_commitment_transaction_number() > monitor.get_min_seen_secret() {
11509 log_error!(logger, " The ChannelMonitor for channel {} is at revoked counterparty transaction number {} but the ChannelManager is at revoked counterparty transaction number {}.",
11510 &channel.context.channel_id(), monitor.get_min_seen_secret(), channel.get_revoked_counterparty_commitment_transaction_number());
11512 if channel.get_cur_counterparty_commitment_transaction_number() > monitor.get_cur_counterparty_commitment_number() {
11513 log_error!(logger, " The ChannelMonitor for channel {} is at counterparty commitment transaction number {} but the ChannelManager is at counterparty commitment transaction number {}.",
11514 &channel.context.channel_id(), monitor.get_cur_counterparty_commitment_number(), channel.get_cur_counterparty_commitment_transaction_number());
11516 let mut shutdown_result = channel.context.force_shutdown(true, ClosureReason::OutdatedChannelManager);
11517 if shutdown_result.unbroadcasted_batch_funding_txid.is_some() {
11518 return Err(DecodeError::InvalidValue);
11520 if let Some((counterparty_node_id, funding_txo, channel_id, update)) = shutdown_result.monitor_update {
11521 close_background_events.push(BackgroundEvent::MonitorUpdateRegeneratedOnStartup {
11522 counterparty_node_id, funding_txo, channel_id, update
11525 failed_htlcs.append(&mut shutdown_result.dropped_outbound_htlcs);
11526 channel_closures.push_back((events::Event::ChannelClosed {
11527 channel_id: channel.context.channel_id(),
11528 user_channel_id: channel.context.get_user_id(),
11529 reason: ClosureReason::OutdatedChannelManager,
11530 counterparty_node_id: Some(channel.context.get_counterparty_node_id()),
11531 channel_capacity_sats: Some(channel.context.get_value_satoshis()),
11532 channel_funding_txo: channel.context.get_funding_txo(),
11534 for (channel_htlc_source, payment_hash) in channel.inflight_htlc_sources() {
11535 let mut found_htlc = false;
11536 for (monitor_htlc_source, _) in monitor.get_all_current_outbound_htlcs() {
11537 if *channel_htlc_source == monitor_htlc_source { found_htlc = true; break; }
11540 // If we have some HTLCs in the channel which are not present in the newer
11541 // ChannelMonitor, they have been removed and should be failed back to
11542 // ensure we don't forget them entirely. Note that if the missing HTLC(s)
11543 // were actually claimed we'd have generated and ensured the previous-hop
11544 // claim update ChannelMonitor updates were persisted prior to persising
11545 // the ChannelMonitor update for the forward leg, so attempting to fail the
11546 // backwards leg of the HTLC will simply be rejected.
11548 "Failing HTLC with hash {} as it is missing in the ChannelMonitor for channel {} but was present in the (stale) ChannelManager",
11549 &channel.context.channel_id(), &payment_hash);
11550 failed_htlcs.push((channel_htlc_source.clone(), *payment_hash, channel.context.get_counterparty_node_id(), channel.context.channel_id()));
11554 channel.on_startup_drop_completed_blocked_mon_updates_through(&logger, monitor.get_latest_update_id());
11555 log_info!(logger, "Successfully loaded channel {} at update_id {} against monitor at update id {} with {} blocked updates",
11556 &channel.context.channel_id(), channel.context.get_latest_monitor_update_id(),
11557 monitor.get_latest_update_id(), channel.blocked_monitor_updates_pending());
11558 if let Some(short_channel_id) = channel.context.get_short_channel_id() {
11559 short_to_chan_info.insert(short_channel_id, (channel.context.get_counterparty_node_id(), channel.context.channel_id()));
11561 if let Some(funding_txo) = channel.context.get_funding_txo() {
11562 outpoint_to_peer.insert(funding_txo, channel.context.get_counterparty_node_id());
11564 match funded_peer_channels.entry(channel.context.get_counterparty_node_id()) {
11565 hash_map::Entry::Occupied(mut entry) => {
11566 let by_id_map = entry.get_mut();
11567 by_id_map.insert(channel.context.channel_id(), ChannelPhase::Funded(channel));
11569 hash_map::Entry::Vacant(entry) => {
11570 let mut by_id_map = new_hash_map();
11571 by_id_map.insert(channel.context.channel_id(), ChannelPhase::Funded(channel));
11572 entry.insert(by_id_map);
11576 } else if channel.is_awaiting_initial_mon_persist() {
11577 // If we were persisted and shut down while the initial ChannelMonitor persistence
11578 // was in-progress, we never broadcasted the funding transaction and can still
11579 // safely discard the channel.
11580 let _ = channel.context.force_shutdown(false, ClosureReason::DisconnectedPeer);
11581 channel_closures.push_back((events::Event::ChannelClosed {
11582 channel_id: channel.context.channel_id(),
11583 user_channel_id: channel.context.get_user_id(),
11584 reason: ClosureReason::DisconnectedPeer,
11585 counterparty_node_id: Some(channel.context.get_counterparty_node_id()),
11586 channel_capacity_sats: Some(channel.context.get_value_satoshis()),
11587 channel_funding_txo: channel.context.get_funding_txo(),
11590 log_error!(logger, "Missing ChannelMonitor for channel {} needed by ChannelManager.", &channel.context.channel_id());
11591 log_error!(logger, " The chain::Watch API *requires* that monitors are persisted durably before returning,");
11592 log_error!(logger, " client applications must ensure that ChannelMonitor data is always available and the latest to avoid funds loss!");
11593 log_error!(logger, " Without the ChannelMonitor we cannot continue without risking funds.");
11594 log_error!(logger, " Please ensure the chain::Watch API requirements are met and file a bug report at https://github.com/lightningdevkit/rust-lightning");
11595 return Err(DecodeError::InvalidValue);
11599 for (funding_txo, monitor) in args.channel_monitors.iter() {
11600 if !funding_txo_set.contains(funding_txo) {
11601 let logger = WithChannelMonitor::from(&args.logger, monitor);
11602 let channel_id = monitor.channel_id();
11603 log_info!(logger, "Queueing monitor update to ensure missing channel {} is force closed",
11605 let monitor_update = ChannelMonitorUpdate {
11606 update_id: CLOSED_CHANNEL_UPDATE_ID,
11607 counterparty_node_id: None,
11608 updates: vec![ChannelMonitorUpdateStep::ChannelForceClosed { should_broadcast: true }],
11609 channel_id: Some(monitor.channel_id()),
11611 close_background_events.push(BackgroundEvent::ClosedMonitorUpdateRegeneratedOnStartup((*funding_txo, channel_id, monitor_update)));
11615 const MAX_ALLOC_SIZE: usize = 1024 * 64;
11616 let forward_htlcs_count: u64 = Readable::read(reader)?;
11617 let mut forward_htlcs = hash_map_with_capacity(cmp::min(forward_htlcs_count as usize, 128));
11618 for _ in 0..forward_htlcs_count {
11619 let short_channel_id = Readable::read(reader)?;
11620 let pending_forwards_count: u64 = Readable::read(reader)?;
11621 let mut pending_forwards = Vec::with_capacity(cmp::min(pending_forwards_count as usize, MAX_ALLOC_SIZE/mem::size_of::<HTLCForwardInfo>()));
11622 for _ in 0..pending_forwards_count {
11623 pending_forwards.push(Readable::read(reader)?);
11625 forward_htlcs.insert(short_channel_id, pending_forwards);
11628 let claimable_htlcs_count: u64 = Readable::read(reader)?;
11629 let mut claimable_htlcs_list = Vec::with_capacity(cmp::min(claimable_htlcs_count as usize, 128));
11630 for _ in 0..claimable_htlcs_count {
11631 let payment_hash = Readable::read(reader)?;
11632 let previous_hops_len: u64 = Readable::read(reader)?;
11633 let mut previous_hops = Vec::with_capacity(cmp::min(previous_hops_len as usize, MAX_ALLOC_SIZE/mem::size_of::<ClaimableHTLC>()));
11634 for _ in 0..previous_hops_len {
11635 previous_hops.push(<ClaimableHTLC as Readable>::read(reader)?);
11637 claimable_htlcs_list.push((payment_hash, previous_hops));
11640 let peer_state_from_chans = |channel_by_id| {
11643 inbound_channel_request_by_id: new_hash_map(),
11644 latest_features: InitFeatures::empty(),
11645 pending_msg_events: Vec::new(),
11646 in_flight_monitor_updates: BTreeMap::new(),
11647 monitor_update_blocked_actions: BTreeMap::new(),
11648 actions_blocking_raa_monitor_updates: BTreeMap::new(),
11649 is_connected: false,
11653 let peer_count: u64 = Readable::read(reader)?;
11654 let mut per_peer_state = hash_map_with_capacity(cmp::min(peer_count as usize, MAX_ALLOC_SIZE/mem::size_of::<(PublicKey, Mutex<PeerState<SP>>)>()));
11655 for _ in 0..peer_count {
11656 let peer_pubkey = Readable::read(reader)?;
11657 let peer_chans = funded_peer_channels.remove(&peer_pubkey).unwrap_or(new_hash_map());
11658 let mut peer_state = peer_state_from_chans(peer_chans);
11659 peer_state.latest_features = Readable::read(reader)?;
11660 per_peer_state.insert(peer_pubkey, Mutex::new(peer_state));
11663 let event_count: u64 = Readable::read(reader)?;
11664 let mut pending_events_read: VecDeque<(events::Event, Option<EventCompletionAction>)> =
11665 VecDeque::with_capacity(cmp::min(event_count as usize, MAX_ALLOC_SIZE/mem::size_of::<(events::Event, Option<EventCompletionAction>)>()));
11666 for _ in 0..event_count {
11667 match MaybeReadable::read(reader)? {
11668 Some(event) => pending_events_read.push_back((event, None)),
11673 let background_event_count: u64 = Readable::read(reader)?;
11674 for _ in 0..background_event_count {
11675 match <u8 as Readable>::read(reader)? {
11677 // LDK versions prior to 0.0.116 wrote pending `MonitorUpdateRegeneratedOnStartup`s here,
11678 // however we really don't (and never did) need them - we regenerate all
11679 // on-startup monitor updates.
11680 let _: OutPoint = Readable::read(reader)?;
11681 let _: ChannelMonitorUpdate = Readable::read(reader)?;
11683 _ => return Err(DecodeError::InvalidValue),
11687 let _last_node_announcement_serial: u32 = Readable::read(reader)?; // Only used < 0.0.111
11688 let highest_seen_timestamp: u32 = Readable::read(reader)?;
11690 let pending_inbound_payment_count: u64 = Readable::read(reader)?;
11691 let mut pending_inbound_payments: HashMap<PaymentHash, PendingInboundPayment> = hash_map_with_capacity(cmp::min(pending_inbound_payment_count as usize, MAX_ALLOC_SIZE/(3*32)));
11692 for _ in 0..pending_inbound_payment_count {
11693 if pending_inbound_payments.insert(Readable::read(reader)?, Readable::read(reader)?).is_some() {
11694 return Err(DecodeError::InvalidValue);
11698 let pending_outbound_payments_count_compat: u64 = Readable::read(reader)?;
11699 let mut pending_outbound_payments_compat: HashMap<PaymentId, PendingOutboundPayment> =
11700 hash_map_with_capacity(cmp::min(pending_outbound_payments_count_compat as usize, MAX_ALLOC_SIZE/32));
11701 for _ in 0..pending_outbound_payments_count_compat {
11702 let session_priv = Readable::read(reader)?;
11703 let payment = PendingOutboundPayment::Legacy {
11704 session_privs: hash_set_from_iter([session_priv]),
11706 if pending_outbound_payments_compat.insert(PaymentId(session_priv), payment).is_some() {
11707 return Err(DecodeError::InvalidValue)
11711 // pending_outbound_payments_no_retry is for compatibility with 0.0.101 clients.
11712 let mut pending_outbound_payments_no_retry: Option<HashMap<PaymentId, HashSet<[u8; 32]>>> = None;
11713 let mut pending_outbound_payments = None;
11714 let mut pending_intercepted_htlcs: Option<HashMap<InterceptId, PendingAddHTLCInfo>> = Some(new_hash_map());
11715 let mut received_network_pubkey: Option<PublicKey> = None;
11716 let mut fake_scid_rand_bytes: Option<[u8; 32]> = None;
11717 let mut probing_cookie_secret: Option<[u8; 32]> = None;
11718 let mut claimable_htlc_purposes = None;
11719 let mut claimable_htlc_onion_fields = None;
11720 let mut pending_claiming_payments = Some(new_hash_map());
11721 let mut monitor_update_blocked_actions_per_peer: Option<Vec<(_, BTreeMap<_, Vec<_>>)>> = Some(Vec::new());
11722 let mut events_override = None;
11723 let mut in_flight_monitor_updates: Option<HashMap<(PublicKey, OutPoint), Vec<ChannelMonitorUpdate>>> = None;
11724 let mut decode_update_add_htlcs: Option<HashMap<u64, Vec<msgs::UpdateAddHTLC>>> = None;
11725 read_tlv_fields!(reader, {
11726 (1, pending_outbound_payments_no_retry, option),
11727 (2, pending_intercepted_htlcs, option),
11728 (3, pending_outbound_payments, option),
11729 (4, pending_claiming_payments, option),
11730 (5, received_network_pubkey, option),
11731 (6, monitor_update_blocked_actions_per_peer, option),
11732 (7, fake_scid_rand_bytes, option),
11733 (8, events_override, option),
11734 (9, claimable_htlc_purposes, optional_vec),
11735 (10, in_flight_monitor_updates, option),
11736 (11, probing_cookie_secret, option),
11737 (13, claimable_htlc_onion_fields, optional_vec),
11738 (14, decode_update_add_htlcs, option),
11740 let mut decode_update_add_htlcs = decode_update_add_htlcs.unwrap_or_else(|| new_hash_map());
11741 if fake_scid_rand_bytes.is_none() {
11742 fake_scid_rand_bytes = Some(args.entropy_source.get_secure_random_bytes());
11745 if probing_cookie_secret.is_none() {
11746 probing_cookie_secret = Some(args.entropy_source.get_secure_random_bytes());
11749 if let Some(events) = events_override {
11750 pending_events_read = events;
11753 if !channel_closures.is_empty() {
11754 pending_events_read.append(&mut channel_closures);
11757 if pending_outbound_payments.is_none() && pending_outbound_payments_no_retry.is_none() {
11758 pending_outbound_payments = Some(pending_outbound_payments_compat);
11759 } else if pending_outbound_payments.is_none() {
11760 let mut outbounds = new_hash_map();
11761 for (id, session_privs) in pending_outbound_payments_no_retry.unwrap().drain() {
11762 outbounds.insert(id, PendingOutboundPayment::Legacy { session_privs });
11764 pending_outbound_payments = Some(outbounds);
11766 let pending_outbounds = OutboundPayments {
11767 pending_outbound_payments: Mutex::new(pending_outbound_payments.unwrap()),
11768 retry_lock: Mutex::new(())
11771 // We have to replay (or skip, if they were completed after we wrote the `ChannelManager`)
11772 // each `ChannelMonitorUpdate` in `in_flight_monitor_updates`. After doing so, we have to
11773 // check that each channel we have isn't newer than the latest `ChannelMonitorUpdate`(s) we
11774 // replayed, and for each monitor update we have to replay we have to ensure there's a
11775 // `ChannelMonitor` for it.
11777 // In order to do so we first walk all of our live channels (so that we can check their
11778 // state immediately after doing the update replays, when we have the `update_id`s
11779 // available) and then walk any remaining in-flight updates.
11781 // Because the actual handling of the in-flight updates is the same, it's macro'ized here:
11782 let mut pending_background_events = Vec::new();
11783 macro_rules! handle_in_flight_updates {
11784 ($counterparty_node_id: expr, $chan_in_flight_upds: expr, $funding_txo: expr,
11785 $monitor: expr, $peer_state: expr, $logger: expr, $channel_info_log: expr
11787 let mut max_in_flight_update_id = 0;
11788 $chan_in_flight_upds.retain(|upd| upd.update_id > $monitor.get_latest_update_id());
11789 for update in $chan_in_flight_upds.iter() {
11790 log_trace!($logger, "Replaying ChannelMonitorUpdate {} for {}channel {}",
11791 update.update_id, $channel_info_log, &$monitor.channel_id());
11792 max_in_flight_update_id = cmp::max(max_in_flight_update_id, update.update_id);
11793 pending_background_events.push(
11794 BackgroundEvent::MonitorUpdateRegeneratedOnStartup {
11795 counterparty_node_id: $counterparty_node_id,
11796 funding_txo: $funding_txo,
11797 channel_id: $monitor.channel_id(),
11798 update: update.clone(),
11801 if $chan_in_flight_upds.is_empty() {
11802 // We had some updates to apply, but it turns out they had completed before we
11803 // were serialized, we just weren't notified of that. Thus, we may have to run
11804 // the completion actions for any monitor updates, but otherwise are done.
11805 pending_background_events.push(
11806 BackgroundEvent::MonitorUpdatesComplete {
11807 counterparty_node_id: $counterparty_node_id,
11808 channel_id: $monitor.channel_id(),
11811 if $peer_state.in_flight_monitor_updates.insert($funding_txo, $chan_in_flight_upds).is_some() {
11812 log_error!($logger, "Duplicate in-flight monitor update set for the same channel!");
11813 return Err(DecodeError::InvalidValue);
11815 max_in_flight_update_id
11819 for (counterparty_id, peer_state_mtx) in per_peer_state.iter_mut() {
11820 let mut peer_state_lock = peer_state_mtx.lock().unwrap();
11821 let peer_state = &mut *peer_state_lock;
11822 for phase in peer_state.channel_by_id.values() {
11823 if let ChannelPhase::Funded(chan) = phase {
11824 let logger = WithChannelContext::from(&args.logger, &chan.context);
11826 // Channels that were persisted have to be funded, otherwise they should have been
11828 let funding_txo = chan.context.get_funding_txo().ok_or(DecodeError::InvalidValue)?;
11829 let monitor = args.channel_monitors.get(&funding_txo)
11830 .expect("We already checked for monitor presence when loading channels");
11831 let mut max_in_flight_update_id = monitor.get_latest_update_id();
11832 if let Some(in_flight_upds) = &mut in_flight_monitor_updates {
11833 if let Some(mut chan_in_flight_upds) = in_flight_upds.remove(&(*counterparty_id, funding_txo)) {
11834 max_in_flight_update_id = cmp::max(max_in_flight_update_id,
11835 handle_in_flight_updates!(*counterparty_id, chan_in_flight_upds,
11836 funding_txo, monitor, peer_state, logger, ""));
11839 if chan.get_latest_unblocked_monitor_update_id() > max_in_flight_update_id {
11840 // If the channel is ahead of the monitor, return DangerousValue:
11841 log_error!(logger, "A ChannelMonitor is stale compared to the current ChannelManager! This indicates a potentially-critical violation of the chain::Watch API!");
11842 log_error!(logger, " The ChannelMonitor for channel {} is at update_id {} with update_id through {} in-flight",
11843 chan.context.channel_id(), monitor.get_latest_update_id(), max_in_flight_update_id);
11844 log_error!(logger, " but the ChannelManager is at update_id {}.", chan.get_latest_unblocked_monitor_update_id());
11845 log_error!(logger, " The chain::Watch API *requires* that monitors are persisted durably before returning,");
11846 log_error!(logger, " client applications must ensure that ChannelMonitor data is always available and the latest to avoid funds loss!");
11847 log_error!(logger, " Without the latest ChannelMonitor we cannot continue without risking funds.");
11848 log_error!(logger, " Please ensure the chain::Watch API requirements are met and file a bug report at https://github.com/lightningdevkit/rust-lightning");
11849 return Err(DecodeError::DangerousValue);
11852 // We shouldn't have persisted (or read) any unfunded channel types so none should have been
11853 // created in this `channel_by_id` map.
11854 debug_assert!(false);
11855 return Err(DecodeError::InvalidValue);
11860 if let Some(in_flight_upds) = in_flight_monitor_updates {
11861 for ((counterparty_id, funding_txo), mut chan_in_flight_updates) in in_flight_upds {
11862 let channel_id = funding_txo_to_channel_id.get(&funding_txo).copied();
11863 let logger = WithContext::from(&args.logger, Some(counterparty_id), channel_id);
11864 if let Some(monitor) = args.channel_monitors.get(&funding_txo) {
11865 // Now that we've removed all the in-flight monitor updates for channels that are
11866 // still open, we need to replay any monitor updates that are for closed channels,
11867 // creating the neccessary peer_state entries as we go.
11868 let peer_state_mutex = per_peer_state.entry(counterparty_id).or_insert_with(|| {
11869 Mutex::new(peer_state_from_chans(new_hash_map()))
11871 let mut peer_state = peer_state_mutex.lock().unwrap();
11872 handle_in_flight_updates!(counterparty_id, chan_in_flight_updates,
11873 funding_txo, monitor, peer_state, logger, "closed ");
11875 log_error!(logger, "A ChannelMonitor is missing even though we have in-flight updates for it! This indicates a potentially-critical violation of the chain::Watch API!");
11876 log_error!(logger, " The ChannelMonitor for channel {} is missing.", if let Some(channel_id) =
11877 channel_id { channel_id.to_string() } else { format!("with outpoint {}", funding_txo) } );
11878 log_error!(logger, " The chain::Watch API *requires* that monitors are persisted durably before returning,");
11879 log_error!(logger, " client applications must ensure that ChannelMonitor data is always available and the latest to avoid funds loss!");
11880 log_error!(logger, " Without the latest ChannelMonitor we cannot continue without risking funds.");
11881 log_error!(logger, " Please ensure the chain::Watch API requirements are met and file a bug report at https://github.com/lightningdevkit/rust-lightning");
11882 log_error!(logger, " Pending in-flight updates are: {:?}", chan_in_flight_updates);
11883 return Err(DecodeError::InvalidValue);
11888 // Note that we have to do the above replays before we push new monitor updates.
11889 pending_background_events.append(&mut close_background_events);
11891 // If there's any preimages for forwarded HTLCs hanging around in ChannelMonitors we
11892 // should ensure we try them again on the inbound edge. We put them here and do so after we
11893 // have a fully-constructed `ChannelManager` at the end.
11894 let mut pending_claims_to_replay = Vec::new();
11897 // If we're tracking pending payments, ensure we haven't lost any by looking at the
11898 // ChannelMonitor data for any channels for which we do not have authorative state
11899 // (i.e. those for which we just force-closed above or we otherwise don't have a
11900 // corresponding `Channel` at all).
11901 // This avoids several edge-cases where we would otherwise "forget" about pending
11902 // payments which are still in-flight via their on-chain state.
11903 // We only rebuild the pending payments map if we were most recently serialized by
11905 for (_, monitor) in args.channel_monitors.iter() {
11906 let counterparty_opt = outpoint_to_peer.get(&monitor.get_funding_txo().0);
11907 if counterparty_opt.is_none() {
11908 let logger = WithChannelMonitor::from(&args.logger, monitor);
11909 for (htlc_source, (htlc, _)) in monitor.get_pending_or_resolved_outbound_htlcs() {
11910 if let HTLCSource::OutboundRoute { payment_id, session_priv, path, .. } = htlc_source {
11911 if path.hops.is_empty() {
11912 log_error!(logger, "Got an empty path for a pending payment");
11913 return Err(DecodeError::InvalidValue);
11916 let path_amt = path.final_value_msat();
11917 let mut session_priv_bytes = [0; 32];
11918 session_priv_bytes[..].copy_from_slice(&session_priv[..]);
11919 match pending_outbounds.pending_outbound_payments.lock().unwrap().entry(payment_id) {
11920 hash_map::Entry::Occupied(mut entry) => {
11921 let newly_added = entry.get_mut().insert(session_priv_bytes, &path);
11922 log_info!(logger, "{} a pending payment path for {} msat for session priv {} on an existing pending payment with payment hash {}",
11923 if newly_added { "Added" } else { "Had" }, path_amt, log_bytes!(session_priv_bytes), htlc.payment_hash);
11925 hash_map::Entry::Vacant(entry) => {
11926 let path_fee = path.fee_msat();
11927 entry.insert(PendingOutboundPayment::Retryable {
11928 retry_strategy: None,
11929 attempts: PaymentAttempts::new(),
11930 payment_params: None,
11931 session_privs: hash_set_from_iter([session_priv_bytes]),
11932 payment_hash: htlc.payment_hash,
11933 payment_secret: None, // only used for retries, and we'll never retry on startup
11934 payment_metadata: None, // only used for retries, and we'll never retry on startup
11935 keysend_preimage: None, // only used for retries, and we'll never retry on startup
11936 custom_tlvs: Vec::new(), // only used for retries, and we'll never retry on startup
11937 pending_amt_msat: path_amt,
11938 pending_fee_msat: Some(path_fee),
11939 total_msat: path_amt,
11940 starting_block_height: best_block_height,
11941 remaining_max_total_routing_fee_msat: None, // only used for retries, and we'll never retry on startup
11943 log_info!(logger, "Added a pending payment for {} msat with payment hash {} for path with session priv {}",
11944 path_amt, &htlc.payment_hash, log_bytes!(session_priv_bytes));
11949 for (htlc_source, (htlc, preimage_opt)) in monitor.get_all_current_outbound_htlcs() {
11950 match htlc_source {
11951 HTLCSource::PreviousHopData(prev_hop_data) => {
11952 let pending_forward_matches_htlc = |info: &PendingAddHTLCInfo| {
11953 info.prev_funding_outpoint == prev_hop_data.outpoint &&
11954 info.prev_htlc_id == prev_hop_data.htlc_id
11956 // The ChannelMonitor is now responsible for this HTLC's
11957 // failure/success and will let us know what its outcome is. If we
11958 // still have an entry for this HTLC in `forward_htlcs` or
11959 // `pending_intercepted_htlcs`, we were apparently not persisted after
11960 // the monitor was when forwarding the payment.
11961 decode_update_add_htlcs.retain(|scid, update_add_htlcs| {
11962 update_add_htlcs.retain(|update_add_htlc| {
11963 let matches = *scid == prev_hop_data.short_channel_id &&
11964 update_add_htlc.htlc_id == prev_hop_data.htlc_id;
11966 log_info!(logger, "Removing pending to-decode HTLC with hash {} as it was forwarded to the closed channel {}",
11967 &htlc.payment_hash, &monitor.channel_id());
11971 !update_add_htlcs.is_empty()
11973 forward_htlcs.retain(|_, forwards| {
11974 forwards.retain(|forward| {
11975 if let HTLCForwardInfo::AddHTLC(htlc_info) = forward {
11976 if pending_forward_matches_htlc(&htlc_info) {
11977 log_info!(logger, "Removing pending to-forward HTLC with hash {} as it was forwarded to the closed channel {}",
11978 &htlc.payment_hash, &monitor.channel_id());
11983 !forwards.is_empty()
11985 pending_intercepted_htlcs.as_mut().unwrap().retain(|intercepted_id, htlc_info| {
11986 if pending_forward_matches_htlc(&htlc_info) {
11987 log_info!(logger, "Removing pending intercepted HTLC with hash {} as it was forwarded to the closed channel {}",
11988 &htlc.payment_hash, &monitor.channel_id());
11989 pending_events_read.retain(|(event, _)| {
11990 if let Event::HTLCIntercepted { intercept_id: ev_id, .. } = event {
11991 intercepted_id != ev_id
11998 HTLCSource::OutboundRoute { payment_id, session_priv, path, .. } => {
11999 if let Some(preimage) = preimage_opt {
12000 let pending_events = Mutex::new(pending_events_read);
12001 // Note that we set `from_onchain` to "false" here,
12002 // deliberately keeping the pending payment around forever.
12003 // Given it should only occur when we have a channel we're
12004 // force-closing for being stale that's okay.
12005 // The alternative would be to wipe the state when claiming,
12006 // generating a `PaymentPathSuccessful` event but regenerating
12007 // it and the `PaymentSent` on every restart until the
12008 // `ChannelMonitor` is removed.
12010 EventCompletionAction::ReleaseRAAChannelMonitorUpdate {
12011 channel_funding_outpoint: monitor.get_funding_txo().0,
12012 channel_id: monitor.channel_id(),
12013 counterparty_node_id: path.hops[0].pubkey,
12015 pending_outbounds.claim_htlc(payment_id, preimage, session_priv,
12016 path, false, compl_action, &pending_events, &&logger);
12017 pending_events_read = pending_events.into_inner().unwrap();
12024 // Whether the downstream channel was closed or not, try to re-apply any payment
12025 // preimages from it which may be needed in upstream channels for forwarded
12027 let outbound_claimed_htlcs_iter = monitor.get_all_current_outbound_htlcs()
12029 .filter_map(|(htlc_source, (htlc, preimage_opt))| {
12030 if let HTLCSource::PreviousHopData(_) = htlc_source {
12031 if let Some(payment_preimage) = preimage_opt {
12032 Some((htlc_source, payment_preimage, htlc.amount_msat,
12033 // Check if `counterparty_opt.is_none()` to see if the
12034 // downstream chan is closed (because we don't have a
12035 // channel_id -> peer map entry).
12036 counterparty_opt.is_none(),
12037 counterparty_opt.cloned().or(monitor.get_counterparty_node_id()),
12038 monitor.get_funding_txo().0, monitor.channel_id()))
12041 // If it was an outbound payment, we've handled it above - if a preimage
12042 // came in and we persisted the `ChannelManager` we either handled it and
12043 // are good to go or the channel force-closed - we don't have to handle the
12044 // channel still live case here.
12048 for tuple in outbound_claimed_htlcs_iter {
12049 pending_claims_to_replay.push(tuple);
12054 if !forward_htlcs.is_empty() || !decode_update_add_htlcs.is_empty() || pending_outbounds.needs_abandon() {
12055 // If we have pending HTLCs to forward, assume we either dropped a
12056 // `PendingHTLCsForwardable` or the user received it but never processed it as they
12057 // shut down before the timer hit. Either way, set the time_forwardable to a small
12058 // constant as enough time has likely passed that we should simply handle the forwards
12059 // now, or at least after the user gets a chance to reconnect to our peers.
12060 pending_events_read.push_back((events::Event::PendingHTLCsForwardable {
12061 time_forwardable: Duration::from_secs(2),
12065 let inbound_pmt_key_material = args.node_signer.get_inbound_payment_key_material();
12066 let expanded_inbound_key = inbound_payment::ExpandedKey::new(&inbound_pmt_key_material);
12068 let mut claimable_payments = hash_map_with_capacity(claimable_htlcs_list.len());
12069 if let Some(purposes) = claimable_htlc_purposes {
12070 if purposes.len() != claimable_htlcs_list.len() {
12071 return Err(DecodeError::InvalidValue);
12073 if let Some(onion_fields) = claimable_htlc_onion_fields {
12074 if onion_fields.len() != claimable_htlcs_list.len() {
12075 return Err(DecodeError::InvalidValue);
12077 for (purpose, (onion, (payment_hash, htlcs))) in
12078 purposes.into_iter().zip(onion_fields.into_iter().zip(claimable_htlcs_list.into_iter()))
12080 let existing_payment = claimable_payments.insert(payment_hash, ClaimablePayment {
12081 purpose, htlcs, onion_fields: onion,
12083 if existing_payment.is_some() { return Err(DecodeError::InvalidValue); }
12086 for (purpose, (payment_hash, htlcs)) in purposes.into_iter().zip(claimable_htlcs_list.into_iter()) {
12087 let existing_payment = claimable_payments.insert(payment_hash, ClaimablePayment {
12088 purpose, htlcs, onion_fields: None,
12090 if existing_payment.is_some() { return Err(DecodeError::InvalidValue); }
12094 // LDK versions prior to 0.0.107 did not write a `pending_htlc_purposes`, but do
12095 // include a `_legacy_hop_data` in the `OnionPayload`.
12096 for (payment_hash, htlcs) in claimable_htlcs_list.drain(..) {
12097 if htlcs.is_empty() {
12098 return Err(DecodeError::InvalidValue);
12100 let purpose = match &htlcs[0].onion_payload {
12101 OnionPayload::Invoice { _legacy_hop_data } => {
12102 if let Some(hop_data) = _legacy_hop_data {
12103 events::PaymentPurpose::Bolt11InvoicePayment {
12104 payment_preimage: match pending_inbound_payments.get(&payment_hash) {
12105 Some(inbound_payment) => inbound_payment.payment_preimage,
12106 None => match inbound_payment::verify(payment_hash, &hop_data, 0, &expanded_inbound_key, &args.logger) {
12107 Ok((payment_preimage, _)) => payment_preimage,
12109 log_error!(args.logger, "Failed to read claimable payment data for HTLC with payment hash {} - was not a pending inbound payment and didn't match our payment key", &payment_hash);
12110 return Err(DecodeError::InvalidValue);
12114 payment_secret: hop_data.payment_secret,
12116 } else { return Err(DecodeError::InvalidValue); }
12118 OnionPayload::Spontaneous(payment_preimage) =>
12119 events::PaymentPurpose::SpontaneousPayment(*payment_preimage),
12121 claimable_payments.insert(payment_hash, ClaimablePayment {
12122 purpose, htlcs, onion_fields: None,
12127 let mut secp_ctx = Secp256k1::new();
12128 secp_ctx.seeded_randomize(&args.entropy_source.get_secure_random_bytes());
12130 let our_network_pubkey = match args.node_signer.get_node_id(Recipient::Node) {
12132 Err(()) => return Err(DecodeError::InvalidValue)
12134 if let Some(network_pubkey) = received_network_pubkey {
12135 if network_pubkey != our_network_pubkey {
12136 log_error!(args.logger, "Key that was generated does not match the existing key.");
12137 return Err(DecodeError::InvalidValue);
12141 let mut outbound_scid_aliases = new_hash_set();
12142 for (_peer_node_id, peer_state_mutex) in per_peer_state.iter_mut() {
12143 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
12144 let peer_state = &mut *peer_state_lock;
12145 for (chan_id, phase) in peer_state.channel_by_id.iter_mut() {
12146 if let ChannelPhase::Funded(chan) = phase {
12147 let logger = WithChannelContext::from(&args.logger, &chan.context);
12148 if chan.context.outbound_scid_alias() == 0 {
12149 let mut outbound_scid_alias;
12151 outbound_scid_alias = fake_scid::Namespace::OutboundAlias
12152 .get_fake_scid(best_block_height, &chain_hash, fake_scid_rand_bytes.as_ref().unwrap(), &args.entropy_source);
12153 if outbound_scid_aliases.insert(outbound_scid_alias) { break; }
12155 chan.context.set_outbound_scid_alias(outbound_scid_alias);
12156 } else if !outbound_scid_aliases.insert(chan.context.outbound_scid_alias()) {
12157 // Note that in rare cases its possible to hit this while reading an older
12158 // channel if we just happened to pick a colliding outbound alias above.
12159 log_error!(logger, "Got duplicate outbound SCID alias; {}", chan.context.outbound_scid_alias());
12160 return Err(DecodeError::InvalidValue);
12162 if chan.context.is_usable() {
12163 if short_to_chan_info.insert(chan.context.outbound_scid_alias(), (chan.context.get_counterparty_node_id(), *chan_id)).is_some() {
12164 // Note that in rare cases its possible to hit this while reading an older
12165 // channel if we just happened to pick a colliding outbound alias above.
12166 log_error!(logger, "Got duplicate outbound SCID alias; {}", chan.context.outbound_scid_alias());
12167 return Err(DecodeError::InvalidValue);
12171 // We shouldn't have persisted (or read) any unfunded channel types so none should have been
12172 // created in this `channel_by_id` map.
12173 debug_assert!(false);
12174 return Err(DecodeError::InvalidValue);
12179 let bounded_fee_estimator = LowerBoundedFeeEstimator::new(args.fee_estimator);
12181 for (_, monitor) in args.channel_monitors.iter() {
12182 for (payment_hash, payment_preimage) in monitor.get_stored_preimages() {
12183 if let Some(payment) = claimable_payments.remove(&payment_hash) {
12184 log_info!(args.logger, "Re-claiming HTLCs with payment hash {} as we've released the preimage to a ChannelMonitor!", &payment_hash);
12185 let mut claimable_amt_msat = 0;
12186 let mut receiver_node_id = Some(our_network_pubkey);
12187 let phantom_shared_secret = payment.htlcs[0].prev_hop.phantom_shared_secret;
12188 if phantom_shared_secret.is_some() {
12189 let phantom_pubkey = args.node_signer.get_node_id(Recipient::PhantomNode)
12190 .expect("Failed to get node_id for phantom node recipient");
12191 receiver_node_id = Some(phantom_pubkey)
12193 for claimable_htlc in &payment.htlcs {
12194 claimable_amt_msat += claimable_htlc.value;
12196 // Add a holding-cell claim of the payment to the Channel, which should be
12197 // applied ~immediately on peer reconnection. Because it won't generate a
12198 // new commitment transaction we can just provide the payment preimage to
12199 // the corresponding ChannelMonitor and nothing else.
12201 // We do so directly instead of via the normal ChannelMonitor update
12202 // procedure as the ChainMonitor hasn't yet been initialized, implying
12203 // we're not allowed to call it directly yet. Further, we do the update
12204 // without incrementing the ChannelMonitor update ID as there isn't any
12206 // If we were to generate a new ChannelMonitor update ID here and then
12207 // crash before the user finishes block connect we'd end up force-closing
12208 // this channel as well. On the flip side, there's no harm in restarting
12209 // without the new monitor persisted - we'll end up right back here on
12211 let previous_channel_id = claimable_htlc.prev_hop.channel_id;
12212 if let Some(peer_node_id) = outpoint_to_peer.get(&claimable_htlc.prev_hop.outpoint) {
12213 let peer_state_mutex = per_peer_state.get(peer_node_id).unwrap();
12214 let mut peer_state_lock = peer_state_mutex.lock().unwrap();
12215 let peer_state = &mut *peer_state_lock;
12216 if let Some(ChannelPhase::Funded(channel)) = peer_state.channel_by_id.get_mut(&previous_channel_id) {
12217 let logger = WithChannelContext::from(&args.logger, &channel.context);
12218 channel.claim_htlc_while_disconnected_dropping_mon_update(claimable_htlc.prev_hop.htlc_id, payment_preimage, &&logger);
12221 if let Some(previous_hop_monitor) = args.channel_monitors.get(&claimable_htlc.prev_hop.outpoint) {
12222 previous_hop_monitor.provide_payment_preimage(&payment_hash, &payment_preimage, &args.tx_broadcaster, &bounded_fee_estimator, &args.logger);
12225 pending_events_read.push_back((events::Event::PaymentClaimed {
12228 purpose: payment.purpose,
12229 amount_msat: claimable_amt_msat,
12230 htlcs: payment.htlcs.iter().map(events::ClaimedHTLC::from).collect(),
12231 sender_intended_total_msat: payment.htlcs.first().map(|htlc| htlc.total_msat),
12237 for (node_id, monitor_update_blocked_actions) in monitor_update_blocked_actions_per_peer.unwrap() {
12238 if let Some(peer_state) = per_peer_state.get(&node_id) {
12239 for (channel_id, actions) in monitor_update_blocked_actions.iter() {
12240 let logger = WithContext::from(&args.logger, Some(node_id), Some(*channel_id));
12241 for action in actions.iter() {
12242 if let MonitorUpdateCompletionAction::EmitEventAndFreeOtherChannel {
12243 downstream_counterparty_and_funding_outpoint:
12244 Some((blocked_node_id, _blocked_channel_outpoint, blocked_channel_id, blocking_action)), ..
12246 if let Some(blocked_peer_state) = per_peer_state.get(blocked_node_id) {
12248 "Holding the next revoke_and_ack from {} until the preimage is durably persisted in the inbound edge's ChannelMonitor",
12249 blocked_channel_id);
12250 blocked_peer_state.lock().unwrap().actions_blocking_raa_monitor_updates
12251 .entry(*blocked_channel_id)
12252 .or_insert_with(Vec::new).push(blocking_action.clone());
12254 // If the channel we were blocking has closed, we don't need to
12255 // worry about it - the blocked monitor update should never have
12256 // been released from the `Channel` object so it can't have
12257 // completed, and if the channel closed there's no reason to bother
12261 if let MonitorUpdateCompletionAction::FreeOtherChannelImmediately { .. } = action {
12262 debug_assert!(false, "Non-event-generating channel freeing should not appear in our queue");
12266 peer_state.lock().unwrap().monitor_update_blocked_actions = monitor_update_blocked_actions;
12268 log_error!(WithContext::from(&args.logger, Some(node_id), None), "Got blocked actions without a per-peer-state for {}", node_id);
12269 return Err(DecodeError::InvalidValue);
12273 let channel_manager = ChannelManager {
12275 fee_estimator: bounded_fee_estimator,
12276 chain_monitor: args.chain_monitor,
12277 tx_broadcaster: args.tx_broadcaster,
12278 router: args.router,
12280 best_block: RwLock::new(BestBlock::new(best_block_hash, best_block_height)),
12282 inbound_payment_key: expanded_inbound_key,
12283 pending_inbound_payments: Mutex::new(pending_inbound_payments),
12284 pending_outbound_payments: pending_outbounds,
12285 pending_intercepted_htlcs: Mutex::new(pending_intercepted_htlcs.unwrap()),
12287 forward_htlcs: Mutex::new(forward_htlcs),
12288 decode_update_add_htlcs: Mutex::new(decode_update_add_htlcs),
12289 claimable_payments: Mutex::new(ClaimablePayments { claimable_payments, pending_claiming_payments: pending_claiming_payments.unwrap() }),
12290 outbound_scid_aliases: Mutex::new(outbound_scid_aliases),
12291 outpoint_to_peer: Mutex::new(outpoint_to_peer),
12292 short_to_chan_info: FairRwLock::new(short_to_chan_info),
12293 fake_scid_rand_bytes: fake_scid_rand_bytes.unwrap(),
12295 probing_cookie_secret: probing_cookie_secret.unwrap(),
12297 our_network_pubkey,
12300 highest_seen_timestamp: AtomicUsize::new(highest_seen_timestamp as usize),
12302 per_peer_state: FairRwLock::new(per_peer_state),
12304 pending_events: Mutex::new(pending_events_read),
12305 pending_events_processor: AtomicBool::new(false),
12306 pending_background_events: Mutex::new(pending_background_events),
12307 total_consistency_lock: RwLock::new(()),
12308 background_events_processed_since_startup: AtomicBool::new(false),
12310 event_persist_notifier: Notifier::new(),
12311 needs_persist_flag: AtomicBool::new(false),
12313 funding_batch_states: Mutex::new(BTreeMap::new()),
12315 pending_offers_messages: Mutex::new(Vec::new()),
12317 pending_broadcast_messages: Mutex::new(Vec::new()),
12319 entropy_source: args.entropy_source,
12320 node_signer: args.node_signer,
12321 signer_provider: args.signer_provider,
12323 logger: args.logger,
12324 default_configuration: args.default_config,
12327 for htlc_source in failed_htlcs.drain(..) {
12328 let (source, payment_hash, counterparty_node_id, channel_id) = htlc_source;
12329 let receiver = HTLCDestination::NextHopChannel { node_id: Some(counterparty_node_id), channel_id };
12330 let reason = HTLCFailReason::from_failure_code(0x4000 | 8);
12331 channel_manager.fail_htlc_backwards_internal(&source, &payment_hash, &reason, receiver);
12334 for (source, preimage, downstream_value, downstream_closed, downstream_node_id, downstream_funding, downstream_channel_id) in pending_claims_to_replay {
12335 // We use `downstream_closed` in place of `from_onchain` here just as a guess - we
12336 // don't remember in the `ChannelMonitor` where we got a preimage from, but if the
12337 // channel is closed we just assume that it probably came from an on-chain claim.
12338 channel_manager.claim_funds_internal(source, preimage, Some(downstream_value), None,
12339 downstream_closed, true, downstream_node_id, downstream_funding,
12340 downstream_channel_id, None
12344 //TODO: Broadcast channel update for closed channels, but only after we've made a
12345 //connection or two.
12347 Ok((best_block_hash.clone(), channel_manager))
12353 use bitcoin::hashes::Hash;
12354 use bitcoin::hashes::sha256::Hash as Sha256;
12355 use bitcoin::secp256k1::{PublicKey, Secp256k1, SecretKey};
12356 use core::sync::atomic::Ordering;
12357 use crate::events::{Event, HTLCDestination, MessageSendEvent, MessageSendEventsProvider, ClosureReason};
12358 use crate::ln::{PaymentPreimage, PaymentHash, PaymentSecret};
12359 use crate::ln::ChannelId;
12360 use crate::ln::channelmanager::{create_recv_pending_htlc_info, HTLCForwardInfo, inbound_payment, PaymentId, PaymentSendFailure, RecipientOnionFields, InterceptId};
12361 use crate::ln::functional_test_utils::*;
12362 use crate::ln::msgs::{self, ErrorAction};
12363 use crate::ln::msgs::ChannelMessageHandler;
12364 use crate::prelude::*;
12365 use crate::routing::router::{PaymentParameters, RouteParameters, find_route};
12366 use crate::util::errors::APIError;
12367 use crate::util::ser::Writeable;
12368 use crate::util::test_utils;
12369 use crate::util::config::{ChannelConfig, ChannelConfigUpdate};
12370 use crate::sign::EntropySource;
12373 fn test_notify_limits() {
12374 // Check that a few cases which don't require the persistence of a new ChannelManager,
12375 // indeed, do not cause the persistence of a new ChannelManager.
12376 let chanmon_cfgs = create_chanmon_cfgs(3);
12377 let node_cfgs = create_node_cfgs(3, &chanmon_cfgs);
12378 let node_chanmgrs = create_node_chanmgrs(3, &node_cfgs, &[None, None, None]);
12379 let nodes = create_network(3, &node_cfgs, &node_chanmgrs);
12381 // All nodes start with a persistable update pending as `create_network` connects each node
12382 // with all other nodes to make most tests simpler.
12383 assert!(nodes[0].node.get_event_or_persistence_needed_future().poll_is_complete());
12384 assert!(nodes[1].node.get_event_or_persistence_needed_future().poll_is_complete());
12385 assert!(nodes[2].node.get_event_or_persistence_needed_future().poll_is_complete());
12387 let mut chan = create_announced_chan_between_nodes(&nodes, 0, 1);
12389 // We check that the channel info nodes have doesn't change too early, even though we try
12390 // to connect messages with new values
12391 chan.0.contents.fee_base_msat *= 2;
12392 chan.1.contents.fee_base_msat *= 2;
12393 let node_a_chan_info = nodes[0].node.list_channels_with_counterparty(
12394 &nodes[1].node.get_our_node_id()).pop().unwrap();
12395 let node_b_chan_info = nodes[1].node.list_channels_with_counterparty(
12396 &nodes[0].node.get_our_node_id()).pop().unwrap();
12398 // The first two nodes (which opened a channel) should now require fresh persistence
12399 assert!(nodes[0].node.get_event_or_persistence_needed_future().poll_is_complete());
12400 assert!(nodes[1].node.get_event_or_persistence_needed_future().poll_is_complete());
12401 // ... but the last node should not.
12402 assert!(!nodes[2].node.get_event_or_persistence_needed_future().poll_is_complete());
12403 // After persisting the first two nodes they should no longer need fresh persistence.
12404 assert!(!nodes[0].node.get_event_or_persistence_needed_future().poll_is_complete());
12405 assert!(!nodes[1].node.get_event_or_persistence_needed_future().poll_is_complete());
12407 // Node 3, unrelated to the only channel, shouldn't care if it receives a channel_update
12408 // about the channel.
12409 nodes[2].node.handle_channel_update(&nodes[1].node.get_our_node_id(), &chan.0);
12410 nodes[2].node.handle_channel_update(&nodes[1].node.get_our_node_id(), &chan.1);
12411 assert!(!nodes[2].node.get_event_or_persistence_needed_future().poll_is_complete());
12413 // The nodes which are a party to the channel should also ignore messages from unrelated
12415 nodes[0].node.handle_channel_update(&nodes[2].node.get_our_node_id(), &chan.0);
12416 nodes[0].node.handle_channel_update(&nodes[2].node.get_our_node_id(), &chan.1);
12417 nodes[1].node.handle_channel_update(&nodes[2].node.get_our_node_id(), &chan.0);
12418 nodes[1].node.handle_channel_update(&nodes[2].node.get_our_node_id(), &chan.1);
12419 assert!(!nodes[0].node.get_event_or_persistence_needed_future().poll_is_complete());
12420 assert!(!nodes[1].node.get_event_or_persistence_needed_future().poll_is_complete());
12422 // At this point the channel info given by peers should still be the same.
12423 assert_eq!(nodes[0].node.list_channels()[0], node_a_chan_info);
12424 assert_eq!(nodes[1].node.list_channels()[0], node_b_chan_info);
12426 // An earlier version of handle_channel_update didn't check the directionality of the
12427 // update message and would always update the local fee info, even if our peer was
12428 // (spuriously) forwarding us our own channel_update.
12429 let as_node_one = nodes[0].node.get_our_node_id().serialize()[..] < nodes[1].node.get_our_node_id().serialize()[..];
12430 let as_update = if as_node_one == (chan.0.contents.flags & 1 == 0 /* chan.0 is from node one */) { &chan.0 } else { &chan.1 };
12431 let bs_update = if as_node_one == (chan.0.contents.flags & 1 == 0 /* chan.0 is from node one */) { &chan.1 } else { &chan.0 };
12433 // First deliver each peers' own message, checking that the node doesn't need to be
12434 // persisted and that its channel info remains the same.
12435 nodes[0].node.handle_channel_update(&nodes[1].node.get_our_node_id(), &as_update);
12436 nodes[1].node.handle_channel_update(&nodes[0].node.get_our_node_id(), &bs_update);
12437 assert!(!nodes[0].node.get_event_or_persistence_needed_future().poll_is_complete());
12438 assert!(!nodes[1].node.get_event_or_persistence_needed_future().poll_is_complete());
12439 assert_eq!(nodes[0].node.list_channels()[0], node_a_chan_info);
12440 assert_eq!(nodes[1].node.list_channels()[0], node_b_chan_info);
12442 // Finally, deliver the other peers' message, ensuring each node needs to be persisted and
12443 // the channel info has updated.
12444 nodes[0].node.handle_channel_update(&nodes[1].node.get_our_node_id(), &bs_update);
12445 nodes[1].node.handle_channel_update(&nodes[0].node.get_our_node_id(), &as_update);
12446 assert!(nodes[0].node.get_event_or_persistence_needed_future().poll_is_complete());
12447 assert!(nodes[1].node.get_event_or_persistence_needed_future().poll_is_complete());
12448 assert_ne!(nodes[0].node.list_channels()[0], node_a_chan_info);
12449 assert_ne!(nodes[1].node.list_channels()[0], node_b_chan_info);
12453 fn test_keysend_dup_hash_partial_mpp() {
12454 // Test that a keysend payment with a duplicate hash to an existing partial MPP payment fails as
12456 let chanmon_cfgs = create_chanmon_cfgs(2);
12457 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
12458 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
12459 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
12460 create_announced_chan_between_nodes(&nodes, 0, 1);
12462 // First, send a partial MPP payment.
12463 let (route, our_payment_hash, payment_preimage, payment_secret) = get_route_and_payment_hash!(&nodes[0], nodes[1], 100_000);
12464 let mut mpp_route = route.clone();
12465 mpp_route.paths.push(mpp_route.paths[0].clone());
12467 let payment_id = PaymentId([42; 32]);
12468 // Use the utility function send_payment_along_path to send the payment with MPP data which
12469 // indicates there are more HTLCs coming.
12470 let cur_height = CHAN_CONFIRM_DEPTH + 1; // route_payment calls send_payment, which adds 1 to the current height. So we do the same here to match.
12471 let session_privs = nodes[0].node.test_add_new_pending_payment(our_payment_hash,
12472 RecipientOnionFields::secret_only(payment_secret), payment_id, &mpp_route).unwrap();
12473 nodes[0].node.test_send_payment_along_path(&mpp_route.paths[0], &our_payment_hash,
12474 RecipientOnionFields::secret_only(payment_secret), 200_000, cur_height, payment_id, &None, session_privs[0]).unwrap();
12475 check_added_monitors!(nodes[0], 1);
12476 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
12477 assert_eq!(events.len(), 1);
12478 pass_along_path(&nodes[0], &[&nodes[1]], 200_000, our_payment_hash, Some(payment_secret), events.drain(..).next().unwrap(), false, None);
12480 // Next, send a keysend payment with the same payment_hash and make sure it fails.
12481 nodes[0].node.send_spontaneous_payment(&route, Some(payment_preimage),
12482 RecipientOnionFields::spontaneous_empty(), PaymentId(payment_preimage.0)).unwrap();
12483 check_added_monitors!(nodes[0], 1);
12484 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
12485 assert_eq!(events.len(), 1);
12486 let ev = events.drain(..).next().unwrap();
12487 let payment_event = SendEvent::from_event(ev);
12488 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &payment_event.msgs[0]);
12489 check_added_monitors!(nodes[1], 0);
12490 commitment_signed_dance!(nodes[1], nodes[0], payment_event.commitment_msg, false);
12491 expect_pending_htlcs_forwardable!(nodes[1]);
12492 expect_pending_htlcs_forwardable_and_htlc_handling_failed!(nodes[1], vec![HTLCDestination::FailedPayment { payment_hash: our_payment_hash }]);
12493 check_added_monitors!(nodes[1], 1);
12494 let updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
12495 assert!(updates.update_add_htlcs.is_empty());
12496 assert!(updates.update_fulfill_htlcs.is_empty());
12497 assert_eq!(updates.update_fail_htlcs.len(), 1);
12498 assert!(updates.update_fail_malformed_htlcs.is_empty());
12499 assert!(updates.update_fee.is_none());
12500 nodes[0].node.handle_update_fail_htlc(&nodes[1].node.get_our_node_id(), &updates.update_fail_htlcs[0]);
12501 commitment_signed_dance!(nodes[0], nodes[1], updates.commitment_signed, true, true);
12502 expect_payment_failed!(nodes[0], our_payment_hash, true);
12504 // Send the second half of the original MPP payment.
12505 nodes[0].node.test_send_payment_along_path(&mpp_route.paths[1], &our_payment_hash,
12506 RecipientOnionFields::secret_only(payment_secret), 200_000, cur_height, payment_id, &None, session_privs[1]).unwrap();
12507 check_added_monitors!(nodes[0], 1);
12508 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
12509 assert_eq!(events.len(), 1);
12510 pass_along_path(&nodes[0], &[&nodes[1]], 200_000, our_payment_hash, Some(payment_secret), events.drain(..).next().unwrap(), true, None);
12512 // Claim the full MPP payment. Note that we can't use a test utility like
12513 // claim_funds_along_route because the ordering of the messages causes the second half of the
12514 // payment to be put in the holding cell, which confuses the test utilities. So we exchange the
12515 // lightning messages manually.
12516 nodes[1].node.claim_funds(payment_preimage);
12517 expect_payment_claimed!(nodes[1], our_payment_hash, 200_000);
12518 check_added_monitors!(nodes[1], 2);
12520 let bs_first_updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
12521 nodes[0].node.handle_update_fulfill_htlc(&nodes[1].node.get_our_node_id(), &bs_first_updates.update_fulfill_htlcs[0]);
12522 expect_payment_sent(&nodes[0], payment_preimage, None, false, false);
12523 nodes[0].node.handle_commitment_signed(&nodes[1].node.get_our_node_id(), &bs_first_updates.commitment_signed);
12524 check_added_monitors!(nodes[0], 1);
12525 let (as_first_raa, as_first_cs) = get_revoke_commit_msgs!(nodes[0], nodes[1].node.get_our_node_id());
12526 nodes[1].node.handle_revoke_and_ack(&nodes[0].node.get_our_node_id(), &as_first_raa);
12527 check_added_monitors!(nodes[1], 1);
12528 let bs_second_updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
12529 nodes[1].node.handle_commitment_signed(&nodes[0].node.get_our_node_id(), &as_first_cs);
12530 check_added_monitors!(nodes[1], 1);
12531 let bs_first_raa = get_event_msg!(nodes[1], MessageSendEvent::SendRevokeAndACK, nodes[0].node.get_our_node_id());
12532 nodes[0].node.handle_update_fulfill_htlc(&nodes[1].node.get_our_node_id(), &bs_second_updates.update_fulfill_htlcs[0]);
12533 nodes[0].node.handle_commitment_signed(&nodes[1].node.get_our_node_id(), &bs_second_updates.commitment_signed);
12534 check_added_monitors!(nodes[0], 1);
12535 let as_second_raa = get_event_msg!(nodes[0], MessageSendEvent::SendRevokeAndACK, nodes[1].node.get_our_node_id());
12536 nodes[0].node.handle_revoke_and_ack(&nodes[1].node.get_our_node_id(), &bs_first_raa);
12537 let as_second_updates = get_htlc_update_msgs!(nodes[0], nodes[1].node.get_our_node_id());
12538 check_added_monitors!(nodes[0], 1);
12539 nodes[1].node.handle_revoke_and_ack(&nodes[0].node.get_our_node_id(), &as_second_raa);
12540 check_added_monitors!(nodes[1], 1);
12541 nodes[1].node.handle_commitment_signed(&nodes[0].node.get_our_node_id(), &as_second_updates.commitment_signed);
12542 check_added_monitors!(nodes[1], 1);
12543 let bs_third_raa = get_event_msg!(nodes[1], MessageSendEvent::SendRevokeAndACK, nodes[0].node.get_our_node_id());
12544 nodes[0].node.handle_revoke_and_ack(&nodes[1].node.get_our_node_id(), &bs_third_raa);
12545 check_added_monitors!(nodes[0], 1);
12547 // Note that successful MPP payments will generate a single PaymentSent event upon the first
12548 // path's success and a PaymentPathSuccessful event for each path's success.
12549 let events = nodes[0].node.get_and_clear_pending_events();
12550 assert_eq!(events.len(), 2);
12552 Event::PaymentPathSuccessful { payment_id: ref actual_payment_id, ref payment_hash, ref path } => {
12553 assert_eq!(payment_id, *actual_payment_id);
12554 assert_eq!(our_payment_hash, *payment_hash.as_ref().unwrap());
12555 assert_eq!(route.paths[0], *path);
12557 _ => panic!("Unexpected event"),
12560 Event::PaymentPathSuccessful { payment_id: ref actual_payment_id, ref payment_hash, ref path } => {
12561 assert_eq!(payment_id, *actual_payment_id);
12562 assert_eq!(our_payment_hash, *payment_hash.as_ref().unwrap());
12563 assert_eq!(route.paths[0], *path);
12565 _ => panic!("Unexpected event"),
12570 fn test_keysend_dup_payment_hash() {
12571 do_test_keysend_dup_payment_hash(false);
12572 do_test_keysend_dup_payment_hash(true);
12575 fn do_test_keysend_dup_payment_hash(accept_mpp_keysend: bool) {
12576 // (1): Test that a keysend payment with a duplicate payment hash to an existing pending
12577 // outbound regular payment fails as expected.
12578 // (2): Test that a regular payment with a duplicate payment hash to an existing keysend payment
12579 // fails as expected.
12580 // (3): Test that a keysend payment with a duplicate payment hash to an existing keysend
12581 // payment fails as expected. When `accept_mpp_keysend` is false, this tests that we
12582 // reject MPP keysend payments, since in this case where the payment has no payment
12583 // secret, a keysend payment with a duplicate hash is basically an MPP keysend. If
12584 // `accept_mpp_keysend` is true, this tests that we only accept MPP keysends with
12585 // payment secrets and reject otherwise.
12586 let chanmon_cfgs = create_chanmon_cfgs(2);
12587 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
12588 let mut mpp_keysend_cfg = test_default_channel_config();
12589 mpp_keysend_cfg.accept_mpp_keysend = accept_mpp_keysend;
12590 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, Some(mpp_keysend_cfg)]);
12591 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
12592 create_announced_chan_between_nodes(&nodes, 0, 1);
12593 let scorer = test_utils::TestScorer::new();
12594 let random_seed_bytes = chanmon_cfgs[1].keys_manager.get_secure_random_bytes();
12596 // To start (1), send a regular payment but don't claim it.
12597 let expected_route = [&nodes[1]];
12598 let (payment_preimage, payment_hash, ..) = route_payment(&nodes[0], &expected_route, 100_000);
12600 // Next, attempt a keysend payment and make sure it fails.
12601 let route_params = RouteParameters::from_payment_params_and_value(
12602 PaymentParameters::for_keysend(expected_route.last().unwrap().node.get_our_node_id(),
12603 TEST_FINAL_CLTV, false), 100_000);
12604 let route = find_route(
12605 &nodes[0].node.get_our_node_id(), &route_params, &nodes[0].network_graph,
12606 None, nodes[0].logger, &scorer, &Default::default(), &random_seed_bytes
12608 nodes[0].node.send_spontaneous_payment(&route, Some(payment_preimage),
12609 RecipientOnionFields::spontaneous_empty(), PaymentId(payment_preimage.0)).unwrap();
12610 check_added_monitors!(nodes[0], 1);
12611 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
12612 assert_eq!(events.len(), 1);
12613 let ev = events.drain(..).next().unwrap();
12614 let payment_event = SendEvent::from_event(ev);
12615 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &payment_event.msgs[0]);
12616 check_added_monitors!(nodes[1], 0);
12617 commitment_signed_dance!(nodes[1], nodes[0], payment_event.commitment_msg, false);
12618 // We have to forward pending HTLCs twice - once tries to forward the payment forward (and
12619 // fails), the second will process the resulting failure and fail the HTLC backward
12620 expect_pending_htlcs_forwardable!(nodes[1]);
12621 expect_pending_htlcs_forwardable_and_htlc_handling_failed!(nodes[1], vec![HTLCDestination::FailedPayment { payment_hash }]);
12622 check_added_monitors!(nodes[1], 1);
12623 let updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
12624 assert!(updates.update_add_htlcs.is_empty());
12625 assert!(updates.update_fulfill_htlcs.is_empty());
12626 assert_eq!(updates.update_fail_htlcs.len(), 1);
12627 assert!(updates.update_fail_malformed_htlcs.is_empty());
12628 assert!(updates.update_fee.is_none());
12629 nodes[0].node.handle_update_fail_htlc(&nodes[1].node.get_our_node_id(), &updates.update_fail_htlcs[0]);
12630 commitment_signed_dance!(nodes[0], nodes[1], updates.commitment_signed, true, true);
12631 expect_payment_failed!(nodes[0], payment_hash, true);
12633 // Finally, claim the original payment.
12634 claim_payment(&nodes[0], &expected_route, payment_preimage);
12636 // To start (2), send a keysend payment but don't claim it.
12637 let payment_preimage = PaymentPreimage([42; 32]);
12638 let route = find_route(
12639 &nodes[0].node.get_our_node_id(), &route_params, &nodes[0].network_graph,
12640 None, nodes[0].logger, &scorer, &Default::default(), &random_seed_bytes
12642 let payment_hash = nodes[0].node.send_spontaneous_payment(&route, Some(payment_preimage),
12643 RecipientOnionFields::spontaneous_empty(), PaymentId(payment_preimage.0)).unwrap();
12644 check_added_monitors!(nodes[0], 1);
12645 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
12646 assert_eq!(events.len(), 1);
12647 let event = events.pop().unwrap();
12648 let path = vec![&nodes[1]];
12649 pass_along_path(&nodes[0], &path, 100_000, payment_hash, None, event, true, Some(payment_preimage));
12651 // Next, attempt a regular payment and make sure it fails.
12652 let payment_secret = PaymentSecret([43; 32]);
12653 nodes[0].node.send_payment_with_route(&route, payment_hash,
12654 RecipientOnionFields::secret_only(payment_secret), PaymentId(payment_hash.0)).unwrap();
12655 check_added_monitors!(nodes[0], 1);
12656 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
12657 assert_eq!(events.len(), 1);
12658 let ev = events.drain(..).next().unwrap();
12659 let payment_event = SendEvent::from_event(ev);
12660 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &payment_event.msgs[0]);
12661 check_added_monitors!(nodes[1], 0);
12662 commitment_signed_dance!(nodes[1], nodes[0], payment_event.commitment_msg, false);
12663 expect_pending_htlcs_forwardable!(nodes[1]);
12664 expect_pending_htlcs_forwardable_and_htlc_handling_failed!(nodes[1], vec![HTLCDestination::FailedPayment { payment_hash }]);
12665 check_added_monitors!(nodes[1], 1);
12666 let updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
12667 assert!(updates.update_add_htlcs.is_empty());
12668 assert!(updates.update_fulfill_htlcs.is_empty());
12669 assert_eq!(updates.update_fail_htlcs.len(), 1);
12670 assert!(updates.update_fail_malformed_htlcs.is_empty());
12671 assert!(updates.update_fee.is_none());
12672 nodes[0].node.handle_update_fail_htlc(&nodes[1].node.get_our_node_id(), &updates.update_fail_htlcs[0]);
12673 commitment_signed_dance!(nodes[0], nodes[1], updates.commitment_signed, true, true);
12674 expect_payment_failed!(nodes[0], payment_hash, true);
12676 // Finally, succeed the keysend payment.
12677 claim_payment(&nodes[0], &expected_route, payment_preimage);
12679 // To start (3), send a keysend payment but don't claim it.
12680 let payment_id_1 = PaymentId([44; 32]);
12681 let payment_hash = nodes[0].node.send_spontaneous_payment(&route, Some(payment_preimage),
12682 RecipientOnionFields::spontaneous_empty(), payment_id_1).unwrap();
12683 check_added_monitors!(nodes[0], 1);
12684 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
12685 assert_eq!(events.len(), 1);
12686 let event = events.pop().unwrap();
12687 let path = vec![&nodes[1]];
12688 pass_along_path(&nodes[0], &path, 100_000, payment_hash, None, event, true, Some(payment_preimage));
12690 // Next, attempt a keysend payment and make sure it fails.
12691 let route_params = RouteParameters::from_payment_params_and_value(
12692 PaymentParameters::for_keysend(expected_route.last().unwrap().node.get_our_node_id(), TEST_FINAL_CLTV, false),
12695 let route = find_route(
12696 &nodes[0].node.get_our_node_id(), &route_params, &nodes[0].network_graph,
12697 None, nodes[0].logger, &scorer, &Default::default(), &random_seed_bytes
12699 let payment_id_2 = PaymentId([45; 32]);
12700 nodes[0].node.send_spontaneous_payment(&route, Some(payment_preimage),
12701 RecipientOnionFields::spontaneous_empty(), payment_id_2).unwrap();
12702 check_added_monitors!(nodes[0], 1);
12703 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
12704 assert_eq!(events.len(), 1);
12705 let ev = events.drain(..).next().unwrap();
12706 let payment_event = SendEvent::from_event(ev);
12707 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &payment_event.msgs[0]);
12708 check_added_monitors!(nodes[1], 0);
12709 commitment_signed_dance!(nodes[1], nodes[0], payment_event.commitment_msg, false);
12710 expect_pending_htlcs_forwardable!(nodes[1]);
12711 expect_pending_htlcs_forwardable_and_htlc_handling_failed!(nodes[1], vec![HTLCDestination::FailedPayment { payment_hash }]);
12712 check_added_monitors!(nodes[1], 1);
12713 let updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
12714 assert!(updates.update_add_htlcs.is_empty());
12715 assert!(updates.update_fulfill_htlcs.is_empty());
12716 assert_eq!(updates.update_fail_htlcs.len(), 1);
12717 assert!(updates.update_fail_malformed_htlcs.is_empty());
12718 assert!(updates.update_fee.is_none());
12719 nodes[0].node.handle_update_fail_htlc(&nodes[1].node.get_our_node_id(), &updates.update_fail_htlcs[0]);
12720 commitment_signed_dance!(nodes[0], nodes[1], updates.commitment_signed, true, true);
12721 expect_payment_failed!(nodes[0], payment_hash, true);
12723 // Finally, claim the original payment.
12724 claim_payment(&nodes[0], &expected_route, payment_preimage);
12728 fn test_keysend_hash_mismatch() {
12729 // Test that if we receive a keysend `update_add_htlc` msg, we fail as expected if the keysend
12730 // preimage doesn't match the msg's payment hash.
12731 let chanmon_cfgs = create_chanmon_cfgs(2);
12732 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
12733 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
12734 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
12736 let payer_pubkey = nodes[0].node.get_our_node_id();
12737 let payee_pubkey = nodes[1].node.get_our_node_id();
12739 let _chan = create_chan_between_nodes(&nodes[0], &nodes[1]);
12740 let route_params = RouteParameters::from_payment_params_and_value(
12741 PaymentParameters::for_keysend(payee_pubkey, 40, false), 10_000);
12742 let network_graph = nodes[0].network_graph;
12743 let first_hops = nodes[0].node.list_usable_channels();
12744 let scorer = test_utils::TestScorer::new();
12745 let random_seed_bytes = chanmon_cfgs[1].keys_manager.get_secure_random_bytes();
12746 let route = find_route(
12747 &payer_pubkey, &route_params, &network_graph, Some(&first_hops.iter().collect::<Vec<_>>()),
12748 nodes[0].logger, &scorer, &Default::default(), &random_seed_bytes
12751 let test_preimage = PaymentPreimage([42; 32]);
12752 let mismatch_payment_hash = PaymentHash([43; 32]);
12753 let session_privs = nodes[0].node.test_add_new_pending_payment(mismatch_payment_hash,
12754 RecipientOnionFields::spontaneous_empty(), PaymentId(mismatch_payment_hash.0), &route).unwrap();
12755 nodes[0].node.test_send_payment_internal(&route, mismatch_payment_hash,
12756 RecipientOnionFields::spontaneous_empty(), Some(test_preimage), PaymentId(mismatch_payment_hash.0), None, session_privs).unwrap();
12757 check_added_monitors!(nodes[0], 1);
12759 let updates = get_htlc_update_msgs!(nodes[0], nodes[1].node.get_our_node_id());
12760 assert_eq!(updates.update_add_htlcs.len(), 1);
12761 assert!(updates.update_fulfill_htlcs.is_empty());
12762 assert!(updates.update_fail_htlcs.is_empty());
12763 assert!(updates.update_fail_malformed_htlcs.is_empty());
12764 assert!(updates.update_fee.is_none());
12765 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &updates.update_add_htlcs[0]);
12767 nodes[1].logger.assert_log_contains("lightning::ln::channelmanager", "Payment preimage didn't match payment hash", 1);
12771 fn test_keysend_msg_with_secret_err() {
12772 // Test that we error as expected if we receive a keysend payment that includes a payment
12773 // secret when we don't support MPP keysend.
12774 let mut reject_mpp_keysend_cfg = test_default_channel_config();
12775 reject_mpp_keysend_cfg.accept_mpp_keysend = false;
12776 let chanmon_cfgs = create_chanmon_cfgs(2);
12777 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
12778 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, Some(reject_mpp_keysend_cfg)]);
12779 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
12781 let payer_pubkey = nodes[0].node.get_our_node_id();
12782 let payee_pubkey = nodes[1].node.get_our_node_id();
12784 let _chan = create_chan_between_nodes(&nodes[0], &nodes[1]);
12785 let route_params = RouteParameters::from_payment_params_and_value(
12786 PaymentParameters::for_keysend(payee_pubkey, 40, false), 10_000);
12787 let network_graph = nodes[0].network_graph;
12788 let first_hops = nodes[0].node.list_usable_channels();
12789 let scorer = test_utils::TestScorer::new();
12790 let random_seed_bytes = chanmon_cfgs[1].keys_manager.get_secure_random_bytes();
12791 let route = find_route(
12792 &payer_pubkey, &route_params, &network_graph, Some(&first_hops.iter().collect::<Vec<_>>()),
12793 nodes[0].logger, &scorer, &Default::default(), &random_seed_bytes
12796 let test_preimage = PaymentPreimage([42; 32]);
12797 let test_secret = PaymentSecret([43; 32]);
12798 let payment_hash = PaymentHash(Sha256::hash(&test_preimage.0).to_byte_array());
12799 let session_privs = nodes[0].node.test_add_new_pending_payment(payment_hash,
12800 RecipientOnionFields::secret_only(test_secret), PaymentId(payment_hash.0), &route).unwrap();
12801 nodes[0].node.test_send_payment_internal(&route, payment_hash,
12802 RecipientOnionFields::secret_only(test_secret), Some(test_preimage),
12803 PaymentId(payment_hash.0), None, session_privs).unwrap();
12804 check_added_monitors!(nodes[0], 1);
12806 let updates = get_htlc_update_msgs!(nodes[0], nodes[1].node.get_our_node_id());
12807 assert_eq!(updates.update_add_htlcs.len(), 1);
12808 assert!(updates.update_fulfill_htlcs.is_empty());
12809 assert!(updates.update_fail_htlcs.is_empty());
12810 assert!(updates.update_fail_malformed_htlcs.is_empty());
12811 assert!(updates.update_fee.is_none());
12812 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &updates.update_add_htlcs[0]);
12814 nodes[1].logger.assert_log_contains("lightning::ln::channelmanager", "We don't support MPP keysend payments", 1);
12818 fn test_multi_hop_missing_secret() {
12819 let chanmon_cfgs = create_chanmon_cfgs(4);
12820 let node_cfgs = create_node_cfgs(4, &chanmon_cfgs);
12821 let node_chanmgrs = create_node_chanmgrs(4, &node_cfgs, &[None, None, None, None]);
12822 let nodes = create_network(4, &node_cfgs, &node_chanmgrs);
12824 let chan_1_id = create_announced_chan_between_nodes(&nodes, 0, 1).0.contents.short_channel_id;
12825 let chan_2_id = create_announced_chan_between_nodes(&nodes, 0, 2).0.contents.short_channel_id;
12826 let chan_3_id = create_announced_chan_between_nodes(&nodes, 1, 3).0.contents.short_channel_id;
12827 let chan_4_id = create_announced_chan_between_nodes(&nodes, 2, 3).0.contents.short_channel_id;
12829 // Marshall an MPP route.
12830 let (mut route, payment_hash, _, _) = get_route_and_payment_hash!(&nodes[0], nodes[3], 100000);
12831 let path = route.paths[0].clone();
12832 route.paths.push(path);
12833 route.paths[0].hops[0].pubkey = nodes[1].node.get_our_node_id();
12834 route.paths[0].hops[0].short_channel_id = chan_1_id;
12835 route.paths[0].hops[1].short_channel_id = chan_3_id;
12836 route.paths[1].hops[0].pubkey = nodes[2].node.get_our_node_id();
12837 route.paths[1].hops[0].short_channel_id = chan_2_id;
12838 route.paths[1].hops[1].short_channel_id = chan_4_id;
12840 match nodes[0].node.send_payment_with_route(&route, payment_hash,
12841 RecipientOnionFields::spontaneous_empty(), PaymentId(payment_hash.0))
12843 PaymentSendFailure::ParameterError(APIError::APIMisuseError { ref err }) => {
12844 assert!(regex::Regex::new(r"Payment secret is required for multi-path payments").unwrap().is_match(err))
12846 _ => panic!("unexpected error")
12851 fn test_channel_update_cached() {
12852 let chanmon_cfgs = create_chanmon_cfgs(3);
12853 let node_cfgs = create_node_cfgs(3, &chanmon_cfgs);
12854 let node_chanmgrs = create_node_chanmgrs(3, &node_cfgs, &[None, None, None]);
12855 let nodes = create_network(3, &node_cfgs, &node_chanmgrs);
12857 let chan = create_announced_chan_between_nodes(&nodes, 0, 1);
12859 nodes[0].node.force_close_channel_with_peer(&chan.2, &nodes[1].node.get_our_node_id(), None, true).unwrap();
12860 check_added_monitors!(nodes[0], 1);
12861 check_closed_event!(nodes[0], 1, ClosureReason::HolderForceClosed, [nodes[1].node.get_our_node_id()], 100000);
12863 // Confirm that the channel_update was not sent immediately to node[1] but was cached.
12864 let node_1_events = nodes[1].node.get_and_clear_pending_msg_events();
12865 assert_eq!(node_1_events.len(), 0);
12868 // Assert that ChannelUpdate message has been added to node[0] pending broadcast messages
12869 let pending_broadcast_messages= nodes[0].node.pending_broadcast_messages.lock().unwrap();
12870 assert_eq!(pending_broadcast_messages.len(), 1);
12873 // Test that we do not retrieve the pending broadcast messages when we are not connected to any peer
12874 nodes[0].node.peer_disconnected(&nodes[1].node.get_our_node_id());
12875 nodes[1].node.peer_disconnected(&nodes[0].node.get_our_node_id());
12877 nodes[0].node.peer_disconnected(&nodes[2].node.get_our_node_id());
12878 nodes[2].node.peer_disconnected(&nodes[0].node.get_our_node_id());
12880 let node_0_events = nodes[0].node.get_and_clear_pending_msg_events();
12881 assert_eq!(node_0_events.len(), 0);
12883 // Now we reconnect to a peer
12884 nodes[0].node.peer_connected(&nodes[2].node.get_our_node_id(), &msgs::Init {
12885 features: nodes[2].node.init_features(), networks: None, remote_network_address: None
12887 nodes[2].node.peer_connected(&nodes[0].node.get_our_node_id(), &msgs::Init {
12888 features: nodes[0].node.init_features(), networks: None, remote_network_address: None
12889 }, false).unwrap();
12891 // Confirm that get_and_clear_pending_msg_events correctly captures pending broadcast messages
12892 let node_0_events = nodes[0].node.get_and_clear_pending_msg_events();
12893 assert_eq!(node_0_events.len(), 1);
12894 match &node_0_events[0] {
12895 MessageSendEvent::BroadcastChannelUpdate { .. } => (),
12896 _ => panic!("Unexpected event"),
12899 // Assert that ChannelUpdate message has been cleared from nodes[0] pending broadcast messages
12900 let pending_broadcast_messages= nodes[0].node.pending_broadcast_messages.lock().unwrap();
12901 assert_eq!(pending_broadcast_messages.len(), 0);
12906 fn test_drop_disconnected_peers_when_removing_channels() {
12907 let chanmon_cfgs = create_chanmon_cfgs(2);
12908 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
12909 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
12910 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
12912 let chan = create_announced_chan_between_nodes(&nodes, 0, 1);
12914 nodes[0].node.peer_disconnected(&nodes[1].node.get_our_node_id());
12915 nodes[1].node.peer_disconnected(&nodes[0].node.get_our_node_id());
12917 nodes[0].node.force_close_broadcasting_latest_txn(&chan.2, &nodes[1].node.get_our_node_id()).unwrap();
12918 check_closed_broadcast!(nodes[0], true);
12919 check_added_monitors!(nodes[0], 1);
12920 check_closed_event!(nodes[0], 1, ClosureReason::HolderForceClosed, [nodes[1].node.get_our_node_id()], 100000);
12923 // Assert that nodes[1] is awaiting removal for nodes[0] once nodes[1] has been
12924 // disconnected and the channel between has been force closed.
12925 let nodes_0_per_peer_state = nodes[0].node.per_peer_state.read().unwrap();
12926 // Assert that nodes[1] isn't removed before `timer_tick_occurred` has been executed.
12927 assert_eq!(nodes_0_per_peer_state.len(), 1);
12928 assert!(nodes_0_per_peer_state.get(&nodes[1].node.get_our_node_id()).is_some());
12931 nodes[0].node.timer_tick_occurred();
12934 // Assert that nodes[1] has now been removed.
12935 assert_eq!(nodes[0].node.per_peer_state.read().unwrap().len(), 0);
12940 fn bad_inbound_payment_hash() {
12941 // Add coverage for checking that a user-provided payment hash matches the payment secret.
12942 let chanmon_cfgs = create_chanmon_cfgs(2);
12943 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
12944 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
12945 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
12947 let (_, payment_hash, payment_secret) = get_payment_preimage_hash!(&nodes[0]);
12948 let payment_data = msgs::FinalOnionHopData {
12950 total_msat: 100_000,
12953 // Ensure that if the payment hash given to `inbound_payment::verify` differs from the original,
12954 // payment verification fails as expected.
12955 let mut bad_payment_hash = payment_hash.clone();
12956 bad_payment_hash.0[0] += 1;
12957 match inbound_payment::verify(bad_payment_hash, &payment_data, nodes[0].node.highest_seen_timestamp.load(Ordering::Acquire) as u64, &nodes[0].node.inbound_payment_key, &nodes[0].logger) {
12958 Ok(_) => panic!("Unexpected ok"),
12960 nodes[0].logger.assert_log_contains("lightning::ln::inbound_payment", "Failing HTLC with user-generated payment_hash", 1);
12964 // Check that using the original payment hash succeeds.
12965 assert!(inbound_payment::verify(payment_hash, &payment_data, nodes[0].node.highest_seen_timestamp.load(Ordering::Acquire) as u64, &nodes[0].node.inbound_payment_key, &nodes[0].logger).is_ok());
12969 fn test_outpoint_to_peer_coverage() {
12970 // Test that the `ChannelManager:outpoint_to_peer` contains channels which have been assigned
12971 // a `channel_id` (i.e. have had the funding tx created), and that they are removed once
12972 // the channel is successfully closed.
12973 let chanmon_cfgs = create_chanmon_cfgs(2);
12974 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
12975 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
12976 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
12978 nodes[0].node.create_channel(nodes[1].node.get_our_node_id(), 1_000_000, 500_000_000, 42, None, None).unwrap();
12979 let open_channel = get_event_msg!(nodes[0], MessageSendEvent::SendOpenChannel, nodes[1].node.get_our_node_id());
12980 nodes[1].node.handle_open_channel(&nodes[0].node.get_our_node_id(), &open_channel);
12981 let accept_channel = get_event_msg!(nodes[1], MessageSendEvent::SendAcceptChannel, nodes[0].node.get_our_node_id());
12982 nodes[0].node.handle_accept_channel(&nodes[1].node.get_our_node_id(), &accept_channel);
12984 let (temporary_channel_id, tx, funding_output) = create_funding_transaction(&nodes[0], &nodes[1].node.get_our_node_id(), 1_000_000, 42);
12985 let channel_id = ChannelId::from_bytes(tx.txid().to_byte_array());
12987 // Ensure that the `outpoint_to_peer` map is empty until either party has received the
12988 // funding transaction, and have the real `channel_id`.
12989 assert_eq!(nodes[0].node.outpoint_to_peer.lock().unwrap().len(), 0);
12990 assert_eq!(nodes[1].node.outpoint_to_peer.lock().unwrap().len(), 0);
12993 nodes[0].node.funding_transaction_generated(&temporary_channel_id, &nodes[1].node.get_our_node_id(), tx.clone()).unwrap();
12995 // Assert that `nodes[0]`'s `outpoint_to_peer` map is populated with the channel as soon as
12996 // as it has the funding transaction.
12997 let nodes_0_lock = nodes[0].node.outpoint_to_peer.lock().unwrap();
12998 assert_eq!(nodes_0_lock.len(), 1);
12999 assert!(nodes_0_lock.contains_key(&funding_output));
13002 assert_eq!(nodes[1].node.outpoint_to_peer.lock().unwrap().len(), 0);
13004 let funding_created_msg = get_event_msg!(nodes[0], MessageSendEvent::SendFundingCreated, nodes[1].node.get_our_node_id());
13006 nodes[1].node.handle_funding_created(&nodes[0].node.get_our_node_id(), &funding_created_msg);
13008 let nodes_0_lock = nodes[0].node.outpoint_to_peer.lock().unwrap();
13009 assert_eq!(nodes_0_lock.len(), 1);
13010 assert!(nodes_0_lock.contains_key(&funding_output));
13012 expect_channel_pending_event(&nodes[1], &nodes[0].node.get_our_node_id());
13015 // Assert that `nodes[1]`'s `outpoint_to_peer` map is populated with the channel as
13016 // soon as it has the funding transaction.
13017 let nodes_1_lock = nodes[1].node.outpoint_to_peer.lock().unwrap();
13018 assert_eq!(nodes_1_lock.len(), 1);
13019 assert!(nodes_1_lock.contains_key(&funding_output));
13021 check_added_monitors!(nodes[1], 1);
13022 let funding_signed = get_event_msg!(nodes[1], MessageSendEvent::SendFundingSigned, nodes[0].node.get_our_node_id());
13023 nodes[0].node.handle_funding_signed(&nodes[1].node.get_our_node_id(), &funding_signed);
13024 check_added_monitors!(nodes[0], 1);
13025 expect_channel_pending_event(&nodes[0], &nodes[1].node.get_our_node_id());
13026 let (channel_ready, _) = create_chan_between_nodes_with_value_confirm(&nodes[0], &nodes[1], &tx);
13027 let (announcement, nodes_0_update, nodes_1_update) = create_chan_between_nodes_with_value_b(&nodes[0], &nodes[1], &channel_ready);
13028 update_nodes_with_chan_announce(&nodes, 0, 1, &announcement, &nodes_0_update, &nodes_1_update);
13030 nodes[0].node.close_channel(&channel_id, &nodes[1].node.get_our_node_id()).unwrap();
13031 nodes[1].node.handle_shutdown(&nodes[0].node.get_our_node_id(), &get_event_msg!(nodes[0], MessageSendEvent::SendShutdown, nodes[1].node.get_our_node_id()));
13032 let nodes_1_shutdown = get_event_msg!(nodes[1], MessageSendEvent::SendShutdown, nodes[0].node.get_our_node_id());
13033 nodes[0].node.handle_shutdown(&nodes[1].node.get_our_node_id(), &nodes_1_shutdown);
13035 let closing_signed_node_0 = get_event_msg!(nodes[0], MessageSendEvent::SendClosingSigned, nodes[1].node.get_our_node_id());
13036 nodes[1].node.handle_closing_signed(&nodes[0].node.get_our_node_id(), &closing_signed_node_0);
13038 // Assert that the channel is kept in the `outpoint_to_peer` map for both nodes until the
13039 // channel can be fully closed by both parties (i.e. no outstanding htlcs exists, the
13040 // fee for the closing transaction has been negotiated and the parties has the other
13041 // party's signature for the fee negotiated closing transaction.)
13042 let nodes_0_lock = nodes[0].node.outpoint_to_peer.lock().unwrap();
13043 assert_eq!(nodes_0_lock.len(), 1);
13044 assert!(nodes_0_lock.contains_key(&funding_output));
13048 // At this stage, `nodes[1]` has proposed a fee for the closing transaction in the
13049 // `handle_closing_signed` call above. As `nodes[1]` has not yet received the signature
13050 // from `nodes[0]` for the closing transaction with the proposed fee, the channel is
13051 // kept in the `nodes[1]`'s `outpoint_to_peer` map.
13052 let nodes_1_lock = nodes[1].node.outpoint_to_peer.lock().unwrap();
13053 assert_eq!(nodes_1_lock.len(), 1);
13054 assert!(nodes_1_lock.contains_key(&funding_output));
13057 nodes[0].node.handle_closing_signed(&nodes[1].node.get_our_node_id(), &get_event_msg!(nodes[1], MessageSendEvent::SendClosingSigned, nodes[0].node.get_our_node_id()));
13059 // `nodes[0]` accepts `nodes[1]`'s proposed fee for the closing transaction, and
13060 // therefore has all it needs to fully close the channel (both signatures for the
13061 // closing transaction).
13062 // Assert that the channel is removed from `nodes[0]`'s `outpoint_to_peer` map as it can be
13063 // fully closed by `nodes[0]`.
13064 assert_eq!(nodes[0].node.outpoint_to_peer.lock().unwrap().len(), 0);
13066 // Assert that the channel is still in `nodes[1]`'s `outpoint_to_peer` map, as `nodes[1]`
13067 // doesn't have `nodes[0]`'s signature for the closing transaction yet.
13068 let nodes_1_lock = nodes[1].node.outpoint_to_peer.lock().unwrap();
13069 assert_eq!(nodes_1_lock.len(), 1);
13070 assert!(nodes_1_lock.contains_key(&funding_output));
13073 let (_nodes_0_update, closing_signed_node_0) = get_closing_signed_broadcast!(nodes[0].node, nodes[1].node.get_our_node_id());
13075 nodes[1].node.handle_closing_signed(&nodes[0].node.get_our_node_id(), &closing_signed_node_0.unwrap());
13077 // Assert that the channel has now been removed from both parties `outpoint_to_peer` map once
13078 // they both have everything required to fully close the channel.
13079 assert_eq!(nodes[1].node.outpoint_to_peer.lock().unwrap().len(), 0);
13081 let (_nodes_1_update, _none) = get_closing_signed_broadcast!(nodes[1].node, nodes[0].node.get_our_node_id());
13083 check_closed_event!(nodes[0], 1, ClosureReason::LocallyInitiatedCooperativeClosure, [nodes[1].node.get_our_node_id()], 1000000);
13084 check_closed_event!(nodes[1], 1, ClosureReason::CounterpartyInitiatedCooperativeClosure, [nodes[0].node.get_our_node_id()], 1000000);
13087 fn check_not_connected_to_peer_error<T>(res_err: Result<T, APIError>, expected_public_key: PublicKey) {
13088 let expected_message = format!("Not connected to node: {}", expected_public_key);
13089 check_api_error_message(expected_message, res_err)
13092 fn check_unkown_peer_error<T>(res_err: Result<T, APIError>, expected_public_key: PublicKey) {
13093 let expected_message = format!("Can't find a peer matching the passed counterparty node_id {}", expected_public_key);
13094 check_api_error_message(expected_message, res_err)
13097 fn check_channel_unavailable_error<T>(res_err: Result<T, APIError>, expected_channel_id: ChannelId, peer_node_id: PublicKey) {
13098 let expected_message = format!("Channel with id {} not found for the passed counterparty node_id {}", expected_channel_id, peer_node_id);
13099 check_api_error_message(expected_message, res_err)
13102 fn check_api_misuse_error<T>(res_err: Result<T, APIError>) {
13103 let expected_message = "No such channel awaiting to be accepted.".to_string();
13104 check_api_error_message(expected_message, res_err)
13107 fn check_api_error_message<T>(expected_err_message: String, res_err: Result<T, APIError>) {
13109 Err(APIError::APIMisuseError { err }) => {
13110 assert_eq!(err, expected_err_message);
13112 Err(APIError::ChannelUnavailable { err }) => {
13113 assert_eq!(err, expected_err_message);
13115 Ok(_) => panic!("Unexpected Ok"),
13116 Err(_) => panic!("Unexpected Error"),
13121 fn test_api_calls_with_unkown_counterparty_node() {
13122 // Tests that our API functions that expects a `counterparty_node_id` as input, behaves as
13123 // expected if the `counterparty_node_id` is an unkown peer in the
13124 // `ChannelManager::per_peer_state` map.
13125 let chanmon_cfg = create_chanmon_cfgs(2);
13126 let node_cfg = create_node_cfgs(2, &chanmon_cfg);
13127 let node_chanmgr = create_node_chanmgrs(2, &node_cfg, &[None, None]);
13128 let nodes = create_network(2, &node_cfg, &node_chanmgr);
13131 let channel_id = ChannelId::from_bytes([4; 32]);
13132 let unkown_public_key = PublicKey::from_secret_key(&Secp256k1::signing_only(), &SecretKey::from_slice(&[42; 32]).unwrap());
13133 let intercept_id = InterceptId([0; 32]);
13135 // Test the API functions.
13136 check_not_connected_to_peer_error(nodes[0].node.create_channel(unkown_public_key, 1_000_000, 500_000_000, 42, None, None), unkown_public_key);
13138 check_unkown_peer_error(nodes[0].node.accept_inbound_channel(&channel_id, &unkown_public_key, 42), unkown_public_key);
13140 check_unkown_peer_error(nodes[0].node.close_channel(&channel_id, &unkown_public_key), unkown_public_key);
13142 check_unkown_peer_error(nodes[0].node.force_close_broadcasting_latest_txn(&channel_id, &unkown_public_key), unkown_public_key);
13144 check_unkown_peer_error(nodes[0].node.force_close_without_broadcasting_txn(&channel_id, &unkown_public_key), unkown_public_key);
13146 check_unkown_peer_error(nodes[0].node.forward_intercepted_htlc(intercept_id, &channel_id, unkown_public_key, 1_000_000), unkown_public_key);
13148 check_unkown_peer_error(nodes[0].node.update_channel_config(&unkown_public_key, &[channel_id], &ChannelConfig::default()), unkown_public_key);
13152 fn test_api_calls_with_unavailable_channel() {
13153 // Tests that our API functions that expects a `counterparty_node_id` and a `channel_id`
13154 // as input, behaves as expected if the `counterparty_node_id` is a known peer in the
13155 // `ChannelManager::per_peer_state` map, but the peer state doesn't contain a channel with
13156 // the given `channel_id`.
13157 let chanmon_cfg = create_chanmon_cfgs(2);
13158 let node_cfg = create_node_cfgs(2, &chanmon_cfg);
13159 let node_chanmgr = create_node_chanmgrs(2, &node_cfg, &[None, None]);
13160 let nodes = create_network(2, &node_cfg, &node_chanmgr);
13162 let counterparty_node_id = nodes[1].node.get_our_node_id();
13165 let channel_id = ChannelId::from_bytes([4; 32]);
13167 // Test the API functions.
13168 check_api_misuse_error(nodes[0].node.accept_inbound_channel(&channel_id, &counterparty_node_id, 42));
13170 check_channel_unavailable_error(nodes[0].node.close_channel(&channel_id, &counterparty_node_id), channel_id, counterparty_node_id);
13172 check_channel_unavailable_error(nodes[0].node.force_close_broadcasting_latest_txn(&channel_id, &counterparty_node_id), channel_id, counterparty_node_id);
13174 check_channel_unavailable_error(nodes[0].node.force_close_without_broadcasting_txn(&channel_id, &counterparty_node_id), channel_id, counterparty_node_id);
13176 check_channel_unavailable_error(nodes[0].node.forward_intercepted_htlc(InterceptId([0; 32]), &channel_id, counterparty_node_id, 1_000_000), channel_id, counterparty_node_id);
13178 check_channel_unavailable_error(nodes[0].node.update_channel_config(&counterparty_node_id, &[channel_id], &ChannelConfig::default()), channel_id, counterparty_node_id);
13182 fn test_connection_limiting() {
13183 // Test that we limit un-channel'd peers and un-funded channels properly.
13184 let chanmon_cfgs = create_chanmon_cfgs(2);
13185 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
13186 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
13187 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
13189 // Note that create_network connects the nodes together for us
13191 nodes[0].node.create_channel(nodes[1].node.get_our_node_id(), 100_000, 0, 42, None, None).unwrap();
13192 let mut open_channel_msg = get_event_msg!(nodes[0], MessageSendEvent::SendOpenChannel, nodes[1].node.get_our_node_id());
13194 let mut funding_tx = None;
13195 for idx in 0..super::MAX_UNFUNDED_CHANS_PER_PEER {
13196 nodes[1].node.handle_open_channel(&nodes[0].node.get_our_node_id(), &open_channel_msg);
13197 let accept_channel = get_event_msg!(nodes[1], MessageSendEvent::SendAcceptChannel, nodes[0].node.get_our_node_id());
13200 nodes[0].node.handle_accept_channel(&nodes[1].node.get_our_node_id(), &accept_channel);
13201 let (temporary_channel_id, tx, _) = create_funding_transaction(&nodes[0], &nodes[1].node.get_our_node_id(), 100_000, 42);
13202 funding_tx = Some(tx.clone());
13203 nodes[0].node.funding_transaction_generated(&temporary_channel_id, &nodes[1].node.get_our_node_id(), tx).unwrap();
13204 let funding_created_msg = get_event_msg!(nodes[0], MessageSendEvent::SendFundingCreated, nodes[1].node.get_our_node_id());
13206 nodes[1].node.handle_funding_created(&nodes[0].node.get_our_node_id(), &funding_created_msg);
13207 check_added_monitors!(nodes[1], 1);
13208 expect_channel_pending_event(&nodes[1], &nodes[0].node.get_our_node_id());
13210 let funding_signed = get_event_msg!(nodes[1], MessageSendEvent::SendFundingSigned, nodes[0].node.get_our_node_id());
13212 nodes[0].node.handle_funding_signed(&nodes[1].node.get_our_node_id(), &funding_signed);
13213 check_added_monitors!(nodes[0], 1);
13214 expect_channel_pending_event(&nodes[0], &nodes[1].node.get_our_node_id());
13216 open_channel_msg.common_fields.temporary_channel_id = ChannelId::temporary_from_entropy_source(&nodes[0].keys_manager);
13219 // A MAX_UNFUNDED_CHANS_PER_PEER + 1 channel will be summarily rejected
13220 open_channel_msg.common_fields.temporary_channel_id = ChannelId::temporary_from_entropy_source(
13221 &nodes[0].keys_manager);
13222 nodes[1].node.handle_open_channel(&nodes[0].node.get_our_node_id(), &open_channel_msg);
13223 assert_eq!(get_err_msg(&nodes[1], &nodes[0].node.get_our_node_id()).channel_id,
13224 open_channel_msg.common_fields.temporary_channel_id);
13226 // Further, because all of our channels with nodes[0] are inbound, and none of them funded,
13227 // it doesn't count as a "protected" peer, i.e. it counts towards the MAX_NO_CHANNEL_PEERS
13229 let mut peer_pks = Vec::with_capacity(super::MAX_NO_CHANNEL_PEERS);
13230 for _ in 1..super::MAX_NO_CHANNEL_PEERS {
13231 let random_pk = PublicKey::from_secret_key(&nodes[0].node.secp_ctx,
13232 &SecretKey::from_slice(&nodes[1].keys_manager.get_secure_random_bytes()).unwrap());
13233 peer_pks.push(random_pk);
13234 nodes[1].node.peer_connected(&random_pk, &msgs::Init {
13235 features: nodes[0].node.init_features(), networks: None, remote_network_address: None
13238 let last_random_pk = PublicKey::from_secret_key(&nodes[0].node.secp_ctx,
13239 &SecretKey::from_slice(&nodes[1].keys_manager.get_secure_random_bytes()).unwrap());
13240 nodes[1].node.peer_connected(&last_random_pk, &msgs::Init {
13241 features: nodes[0].node.init_features(), networks: None, remote_network_address: None
13242 }, true).unwrap_err();
13244 // Also importantly, because nodes[0] isn't "protected", we will refuse a reconnection from
13245 // them if we have too many un-channel'd peers.
13246 nodes[1].node.peer_disconnected(&nodes[0].node.get_our_node_id());
13247 let chan_closed_events = nodes[1].node.get_and_clear_pending_events();
13248 assert_eq!(chan_closed_events.len(), super::MAX_UNFUNDED_CHANS_PER_PEER - 1);
13249 for ev in chan_closed_events {
13250 if let Event::ChannelClosed { .. } = ev { } else { panic!(); }
13252 nodes[1].node.peer_connected(&last_random_pk, &msgs::Init {
13253 features: nodes[0].node.init_features(), networks: None, remote_network_address: None
13255 nodes[1].node.peer_connected(&nodes[0].node.get_our_node_id(), &msgs::Init {
13256 features: nodes[0].node.init_features(), networks: None, remote_network_address: None
13257 }, true).unwrap_err();
13259 // but of course if the connection is outbound its allowed...
13260 nodes[1].node.peer_connected(&nodes[0].node.get_our_node_id(), &msgs::Init {
13261 features: nodes[0].node.init_features(), networks: None, remote_network_address: None
13262 }, false).unwrap();
13263 nodes[1].node.peer_disconnected(&nodes[0].node.get_our_node_id());
13265 // Now nodes[0] is disconnected but still has a pending, un-funded channel lying around.
13266 // Even though we accept one more connection from new peers, we won't actually let them
13268 assert!(peer_pks.len() > super::MAX_UNFUNDED_CHANNEL_PEERS - 1);
13269 for i in 0..super::MAX_UNFUNDED_CHANNEL_PEERS - 1 {
13270 nodes[1].node.handle_open_channel(&peer_pks[i], &open_channel_msg);
13271 get_event_msg!(nodes[1], MessageSendEvent::SendAcceptChannel, peer_pks[i]);
13272 open_channel_msg.common_fields.temporary_channel_id = ChannelId::temporary_from_entropy_source(&nodes[0].keys_manager);
13274 nodes[1].node.handle_open_channel(&last_random_pk, &open_channel_msg);
13275 assert_eq!(get_err_msg(&nodes[1], &last_random_pk).channel_id,
13276 open_channel_msg.common_fields.temporary_channel_id);
13278 // Of course, however, outbound channels are always allowed
13279 nodes[1].node.create_channel(last_random_pk, 100_000, 0, 42, None, None).unwrap();
13280 get_event_msg!(nodes[1], MessageSendEvent::SendOpenChannel, last_random_pk);
13282 // If we fund the first channel, nodes[0] has a live on-chain channel with us, it is now
13283 // "protected" and can connect again.
13284 mine_transaction(&nodes[1], funding_tx.as_ref().unwrap());
13285 nodes[1].node.peer_connected(&nodes[0].node.get_our_node_id(), &msgs::Init {
13286 features: nodes[0].node.init_features(), networks: None, remote_network_address: None
13288 get_event_msg!(nodes[1], MessageSendEvent::SendChannelReestablish, nodes[0].node.get_our_node_id());
13290 // Further, because the first channel was funded, we can open another channel with
13292 nodes[1].node.handle_open_channel(&last_random_pk, &open_channel_msg);
13293 get_event_msg!(nodes[1], MessageSendEvent::SendAcceptChannel, last_random_pk);
13297 fn test_outbound_chans_unlimited() {
13298 // Test that we never refuse an outbound channel even if a peer is unfuned-channel-limited
13299 let chanmon_cfgs = create_chanmon_cfgs(2);
13300 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
13301 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
13302 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
13304 // Note that create_network connects the nodes together for us
13306 nodes[0].node.create_channel(nodes[1].node.get_our_node_id(), 100_000, 0, 42, None, None).unwrap();
13307 let mut open_channel_msg = get_event_msg!(nodes[0], MessageSendEvent::SendOpenChannel, nodes[1].node.get_our_node_id());
13309 for _ in 0..super::MAX_UNFUNDED_CHANS_PER_PEER {
13310 nodes[1].node.handle_open_channel(&nodes[0].node.get_our_node_id(), &open_channel_msg);
13311 get_event_msg!(nodes[1], MessageSendEvent::SendAcceptChannel, nodes[0].node.get_our_node_id());
13312 open_channel_msg.common_fields.temporary_channel_id = ChannelId::temporary_from_entropy_source(&nodes[0].keys_manager);
13315 // Once we have MAX_UNFUNDED_CHANS_PER_PEER unfunded channels, new inbound channels will be
13317 nodes[1].node.handle_open_channel(&nodes[0].node.get_our_node_id(), &open_channel_msg);
13318 assert_eq!(get_err_msg(&nodes[1], &nodes[0].node.get_our_node_id()).channel_id,
13319 open_channel_msg.common_fields.temporary_channel_id);
13321 // but we can still open an outbound channel.
13322 nodes[1].node.create_channel(nodes[0].node.get_our_node_id(), 100_000, 0, 42, None, None).unwrap();
13323 get_event_msg!(nodes[1], MessageSendEvent::SendOpenChannel, nodes[0].node.get_our_node_id());
13325 // but even with such an outbound channel, additional inbound channels will still fail.
13326 nodes[1].node.handle_open_channel(&nodes[0].node.get_our_node_id(), &open_channel_msg);
13327 assert_eq!(get_err_msg(&nodes[1], &nodes[0].node.get_our_node_id()).channel_id,
13328 open_channel_msg.common_fields.temporary_channel_id);
13332 fn test_0conf_limiting() {
13333 // Tests that we properly limit inbound channels when we have the manual-channel-acceptance
13334 // flag set and (sometimes) accept channels as 0conf.
13335 let chanmon_cfgs = create_chanmon_cfgs(2);
13336 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
13337 let mut settings = test_default_channel_config();
13338 settings.manually_accept_inbound_channels = true;
13339 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, Some(settings)]);
13340 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
13342 // Note that create_network connects the nodes together for us
13344 nodes[0].node.create_channel(nodes[1].node.get_our_node_id(), 100_000, 0, 42, None, None).unwrap();
13345 let mut open_channel_msg = get_event_msg!(nodes[0], MessageSendEvent::SendOpenChannel, nodes[1].node.get_our_node_id());
13347 // First, get us up to MAX_UNFUNDED_CHANNEL_PEERS so we can test at the edge
13348 for _ in 0..super::MAX_UNFUNDED_CHANNEL_PEERS - 1 {
13349 let random_pk = PublicKey::from_secret_key(&nodes[0].node.secp_ctx,
13350 &SecretKey::from_slice(&nodes[1].keys_manager.get_secure_random_bytes()).unwrap());
13351 nodes[1].node.peer_connected(&random_pk, &msgs::Init {
13352 features: nodes[0].node.init_features(), networks: None, remote_network_address: None
13355 nodes[1].node.handle_open_channel(&random_pk, &open_channel_msg);
13356 let events = nodes[1].node.get_and_clear_pending_events();
13358 Event::OpenChannelRequest { temporary_channel_id, .. } => {
13359 nodes[1].node.accept_inbound_channel(&temporary_channel_id, &random_pk, 23).unwrap();
13361 _ => panic!("Unexpected event"),
13363 get_event_msg!(nodes[1], MessageSendEvent::SendAcceptChannel, random_pk);
13364 open_channel_msg.common_fields.temporary_channel_id = ChannelId::temporary_from_entropy_source(&nodes[0].keys_manager);
13367 // If we try to accept a channel from another peer non-0conf it will fail.
13368 let last_random_pk = PublicKey::from_secret_key(&nodes[0].node.secp_ctx,
13369 &SecretKey::from_slice(&nodes[1].keys_manager.get_secure_random_bytes()).unwrap());
13370 nodes[1].node.peer_connected(&last_random_pk, &msgs::Init {
13371 features: nodes[0].node.init_features(), networks: None, remote_network_address: None
13373 nodes[1].node.handle_open_channel(&last_random_pk, &open_channel_msg);
13374 let events = nodes[1].node.get_and_clear_pending_events();
13376 Event::OpenChannelRequest { temporary_channel_id, .. } => {
13377 match nodes[1].node.accept_inbound_channel(&temporary_channel_id, &last_random_pk, 23) {
13378 Err(APIError::APIMisuseError { err }) =>
13379 assert_eq!(err, "Too many peers with unfunded channels, refusing to accept new ones"),
13383 _ => panic!("Unexpected event"),
13385 assert_eq!(get_err_msg(&nodes[1], &last_random_pk).channel_id,
13386 open_channel_msg.common_fields.temporary_channel_id);
13388 // ...however if we accept the same channel 0conf it should work just fine.
13389 nodes[1].node.handle_open_channel(&last_random_pk, &open_channel_msg);
13390 let events = nodes[1].node.get_and_clear_pending_events();
13392 Event::OpenChannelRequest { temporary_channel_id, .. } => {
13393 nodes[1].node.accept_inbound_channel_from_trusted_peer_0conf(&temporary_channel_id, &last_random_pk, 23).unwrap();
13395 _ => panic!("Unexpected event"),
13397 get_event_msg!(nodes[1], MessageSendEvent::SendAcceptChannel, last_random_pk);
13401 fn reject_excessively_underpaying_htlcs() {
13402 let chanmon_cfg = create_chanmon_cfgs(1);
13403 let node_cfg = create_node_cfgs(1, &chanmon_cfg);
13404 let node_chanmgr = create_node_chanmgrs(1, &node_cfg, &[None]);
13405 let node = create_network(1, &node_cfg, &node_chanmgr);
13406 let sender_intended_amt_msat = 100;
13407 let extra_fee_msat = 10;
13408 let hop_data = msgs::InboundOnionPayload::Receive {
13409 sender_intended_htlc_amt_msat: 100,
13410 cltv_expiry_height: 42,
13411 payment_metadata: None,
13412 keysend_preimage: None,
13413 payment_data: Some(msgs::FinalOnionHopData {
13414 payment_secret: PaymentSecret([0; 32]), total_msat: sender_intended_amt_msat,
13416 custom_tlvs: Vec::new(),
13418 // Check that if the amount we received + the penultimate hop extra fee is less than the sender
13419 // intended amount, we fail the payment.
13420 let current_height: u32 = node[0].node.best_block.read().unwrap().height;
13421 if let Err(crate::ln::channelmanager::InboundHTLCErr { err_code, .. }) =
13422 create_recv_pending_htlc_info(hop_data, [0; 32], PaymentHash([0; 32]),
13423 sender_intended_amt_msat - extra_fee_msat - 1, 42, None, true, Some(extra_fee_msat),
13424 current_height, node[0].node.default_configuration.accept_mpp_keysend)
13426 assert_eq!(err_code, 19);
13427 } else { panic!(); }
13429 // If amt_received + extra_fee is equal to the sender intended amount, we're fine.
13430 let hop_data = msgs::InboundOnionPayload::Receive { // This is the same payload as above, InboundOnionPayload doesn't implement Clone
13431 sender_intended_htlc_amt_msat: 100,
13432 cltv_expiry_height: 42,
13433 payment_metadata: None,
13434 keysend_preimage: None,
13435 payment_data: Some(msgs::FinalOnionHopData {
13436 payment_secret: PaymentSecret([0; 32]), total_msat: sender_intended_amt_msat,
13438 custom_tlvs: Vec::new(),
13440 let current_height: u32 = node[0].node.best_block.read().unwrap().height;
13441 assert!(create_recv_pending_htlc_info(hop_data, [0; 32], PaymentHash([0; 32]),
13442 sender_intended_amt_msat - extra_fee_msat, 42, None, true, Some(extra_fee_msat),
13443 current_height, node[0].node.default_configuration.accept_mpp_keysend).is_ok());
13447 fn test_final_incorrect_cltv(){
13448 let chanmon_cfg = create_chanmon_cfgs(1);
13449 let node_cfg = create_node_cfgs(1, &chanmon_cfg);
13450 let node_chanmgr = create_node_chanmgrs(1, &node_cfg, &[None]);
13451 let node = create_network(1, &node_cfg, &node_chanmgr);
13453 let current_height: u32 = node[0].node.best_block.read().unwrap().height;
13454 let result = create_recv_pending_htlc_info(msgs::InboundOnionPayload::Receive {
13455 sender_intended_htlc_amt_msat: 100,
13456 cltv_expiry_height: 22,
13457 payment_metadata: None,
13458 keysend_preimage: None,
13459 payment_data: Some(msgs::FinalOnionHopData {
13460 payment_secret: PaymentSecret([0; 32]), total_msat: 100,
13462 custom_tlvs: Vec::new(),
13463 }, [0; 32], PaymentHash([0; 32]), 100, 23, None, true, None, current_height,
13464 node[0].node.default_configuration.accept_mpp_keysend);
13466 // Should not return an error as this condition:
13467 // https://github.com/lightning/bolts/blob/4dcc377209509b13cf89a4b91fde7d478f5b46d8/04-onion-routing.md?plain=1#L334
13468 // is not satisfied.
13469 assert!(result.is_ok());
13473 fn test_inbound_anchors_manual_acceptance() {
13474 // Tests that we properly limit inbound channels when we have the manual-channel-acceptance
13475 // flag set and (sometimes) accept channels as 0conf.
13476 let mut anchors_cfg = test_default_channel_config();
13477 anchors_cfg.channel_handshake_config.negotiate_anchors_zero_fee_htlc_tx = true;
13479 let mut anchors_manual_accept_cfg = anchors_cfg.clone();
13480 anchors_manual_accept_cfg.manually_accept_inbound_channels = true;
13482 let chanmon_cfgs = create_chanmon_cfgs(3);
13483 let node_cfgs = create_node_cfgs(3, &chanmon_cfgs);
13484 let node_chanmgrs = create_node_chanmgrs(3, &node_cfgs,
13485 &[Some(anchors_cfg.clone()), Some(anchors_cfg.clone()), Some(anchors_manual_accept_cfg.clone())]);
13486 let nodes = create_network(3, &node_cfgs, &node_chanmgrs);
13488 nodes[0].node.create_channel(nodes[1].node.get_our_node_id(), 100_000, 0, 42, None, None).unwrap();
13489 let open_channel_msg = get_event_msg!(nodes[0], MessageSendEvent::SendOpenChannel, nodes[1].node.get_our_node_id());
13491 nodes[1].node.handle_open_channel(&nodes[0].node.get_our_node_id(), &open_channel_msg);
13492 assert!(nodes[1].node.get_and_clear_pending_events().is_empty());
13493 let msg_events = nodes[1].node.get_and_clear_pending_msg_events();
13494 match &msg_events[0] {
13495 MessageSendEvent::HandleError { node_id, action } => {
13496 assert_eq!(*node_id, nodes[0].node.get_our_node_id());
13498 ErrorAction::SendErrorMessage { msg } =>
13499 assert_eq!(msg.data, "No channels with anchor outputs accepted".to_owned()),
13500 _ => panic!("Unexpected error action"),
13503 _ => panic!("Unexpected event"),
13506 nodes[2].node.handle_open_channel(&nodes[0].node.get_our_node_id(), &open_channel_msg);
13507 let events = nodes[2].node.get_and_clear_pending_events();
13509 Event::OpenChannelRequest { temporary_channel_id, .. } =>
13510 nodes[2].node.accept_inbound_channel(&temporary_channel_id, &nodes[0].node.get_our_node_id(), 23).unwrap(),
13511 _ => panic!("Unexpected event"),
13513 get_event_msg!(nodes[2], MessageSendEvent::SendAcceptChannel, nodes[0].node.get_our_node_id());
13517 fn test_anchors_zero_fee_htlc_tx_fallback() {
13518 // Tests that if both nodes support anchors, but the remote node does not want to accept
13519 // anchor channels at the moment, an error it sent to the local node such that it can retry
13520 // the channel without the anchors feature.
13521 let chanmon_cfgs = create_chanmon_cfgs(2);
13522 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
13523 let mut anchors_config = test_default_channel_config();
13524 anchors_config.channel_handshake_config.negotiate_anchors_zero_fee_htlc_tx = true;
13525 anchors_config.manually_accept_inbound_channels = true;
13526 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[Some(anchors_config.clone()), Some(anchors_config.clone())]);
13527 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
13529 nodes[0].node.create_channel(nodes[1].node.get_our_node_id(), 100_000, 0, 0, None, None).unwrap();
13530 let open_channel_msg = get_event_msg!(nodes[0], MessageSendEvent::SendOpenChannel, nodes[1].node.get_our_node_id());
13531 assert!(open_channel_msg.common_fields.channel_type.as_ref().unwrap().supports_anchors_zero_fee_htlc_tx());
13533 nodes[1].node.handle_open_channel(&nodes[0].node.get_our_node_id(), &open_channel_msg);
13534 let events = nodes[1].node.get_and_clear_pending_events();
13536 Event::OpenChannelRequest { temporary_channel_id, .. } => {
13537 nodes[1].node.force_close_broadcasting_latest_txn(&temporary_channel_id, &nodes[0].node.get_our_node_id()).unwrap();
13539 _ => panic!("Unexpected event"),
13542 let error_msg = get_err_msg(&nodes[1], &nodes[0].node.get_our_node_id());
13543 nodes[0].node.handle_error(&nodes[1].node.get_our_node_id(), &error_msg);
13545 let open_channel_msg = get_event_msg!(nodes[0], MessageSendEvent::SendOpenChannel, nodes[1].node.get_our_node_id());
13546 assert!(!open_channel_msg.common_fields.channel_type.unwrap().supports_anchors_zero_fee_htlc_tx());
13548 // Since nodes[1] should not have accepted the channel, it should
13549 // not have generated any events.
13550 assert!(nodes[1].node.get_and_clear_pending_events().is_empty());
13554 fn test_update_channel_config() {
13555 let chanmon_cfg = create_chanmon_cfgs(2);
13556 let node_cfg = create_node_cfgs(2, &chanmon_cfg);
13557 let mut user_config = test_default_channel_config();
13558 let node_chanmgr = create_node_chanmgrs(2, &node_cfg, &[Some(user_config), Some(user_config)]);
13559 let nodes = create_network(2, &node_cfg, &node_chanmgr);
13560 let _ = create_announced_chan_between_nodes(&nodes, 0, 1);
13561 let channel = &nodes[0].node.list_channels()[0];
13563 nodes[0].node.update_channel_config(&channel.counterparty.node_id, &[channel.channel_id], &user_config.channel_config).unwrap();
13564 let events = nodes[0].node.get_and_clear_pending_msg_events();
13565 assert_eq!(events.len(), 0);
13567 user_config.channel_config.forwarding_fee_base_msat += 10;
13568 nodes[0].node.update_channel_config(&channel.counterparty.node_id, &[channel.channel_id], &user_config.channel_config).unwrap();
13569 assert_eq!(nodes[0].node.list_channels()[0].config.unwrap().forwarding_fee_base_msat, user_config.channel_config.forwarding_fee_base_msat);
13570 let events = nodes[0].node.get_and_clear_pending_msg_events();
13571 assert_eq!(events.len(), 1);
13573 MessageSendEvent::BroadcastChannelUpdate { .. } => {},
13574 _ => panic!("expected BroadcastChannelUpdate event"),
13577 nodes[0].node.update_partial_channel_config(&channel.counterparty.node_id, &[channel.channel_id], &ChannelConfigUpdate::default()).unwrap();
13578 let events = nodes[0].node.get_and_clear_pending_msg_events();
13579 assert_eq!(events.len(), 0);
13581 let new_cltv_expiry_delta = user_config.channel_config.cltv_expiry_delta + 6;
13582 nodes[0].node.update_partial_channel_config(&channel.counterparty.node_id, &[channel.channel_id], &ChannelConfigUpdate {
13583 cltv_expiry_delta: Some(new_cltv_expiry_delta),
13584 ..Default::default()
13586 assert_eq!(nodes[0].node.list_channels()[0].config.unwrap().cltv_expiry_delta, new_cltv_expiry_delta);
13587 let events = nodes[0].node.get_and_clear_pending_msg_events();
13588 assert_eq!(events.len(), 1);
13590 MessageSendEvent::BroadcastChannelUpdate { .. } => {},
13591 _ => panic!("expected BroadcastChannelUpdate event"),
13594 let new_fee = user_config.channel_config.forwarding_fee_proportional_millionths + 100;
13595 nodes[0].node.update_partial_channel_config(&channel.counterparty.node_id, &[channel.channel_id], &ChannelConfigUpdate {
13596 forwarding_fee_proportional_millionths: Some(new_fee),
13597 ..Default::default()
13599 assert_eq!(nodes[0].node.list_channels()[0].config.unwrap().cltv_expiry_delta, new_cltv_expiry_delta);
13600 assert_eq!(nodes[0].node.list_channels()[0].config.unwrap().forwarding_fee_proportional_millionths, new_fee);
13601 let events = nodes[0].node.get_and_clear_pending_msg_events();
13602 assert_eq!(events.len(), 1);
13604 MessageSendEvent::BroadcastChannelUpdate { .. } => {},
13605 _ => panic!("expected BroadcastChannelUpdate event"),
13608 // If we provide a channel_id not associated with the peer, we should get an error and no updates
13609 // should be applied to ensure update atomicity as specified in the API docs.
13610 let bad_channel_id = ChannelId::v1_from_funding_txid(&[10; 32], 10);
13611 let current_fee = nodes[0].node.list_channels()[0].config.unwrap().forwarding_fee_proportional_millionths;
13612 let new_fee = current_fee + 100;
13615 nodes[0].node.update_partial_channel_config(&channel.counterparty.node_id, &[channel.channel_id, bad_channel_id], &ChannelConfigUpdate {
13616 forwarding_fee_proportional_millionths: Some(new_fee),
13617 ..Default::default()
13619 Err(APIError::ChannelUnavailable { err: _ }),
13622 // Check that the fee hasn't changed for the channel that exists.
13623 assert_eq!(nodes[0].node.list_channels()[0].config.unwrap().forwarding_fee_proportional_millionths, current_fee);
13624 let events = nodes[0].node.get_and_clear_pending_msg_events();
13625 assert_eq!(events.len(), 0);
13629 fn test_payment_display() {
13630 let payment_id = PaymentId([42; 32]);
13631 assert_eq!(format!("{}", &payment_id), "2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a");
13632 let payment_hash = PaymentHash([42; 32]);
13633 assert_eq!(format!("{}", &payment_hash), "2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a");
13634 let payment_preimage = PaymentPreimage([42; 32]);
13635 assert_eq!(format!("{}", &payment_preimage), "2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a2a");
13639 fn test_trigger_lnd_force_close() {
13640 let chanmon_cfg = create_chanmon_cfgs(2);
13641 let node_cfg = create_node_cfgs(2, &chanmon_cfg);
13642 let user_config = test_default_channel_config();
13643 let node_chanmgr = create_node_chanmgrs(2, &node_cfg, &[Some(user_config), Some(user_config)]);
13644 let nodes = create_network(2, &node_cfg, &node_chanmgr);
13646 // Open a channel, immediately disconnect each other, and broadcast Alice's latest state.
13647 let (_, _, chan_id, funding_tx) = create_announced_chan_between_nodes(&nodes, 0, 1);
13648 nodes[0].node.peer_disconnected(&nodes[1].node.get_our_node_id());
13649 nodes[1].node.peer_disconnected(&nodes[0].node.get_our_node_id());
13650 nodes[0].node.force_close_broadcasting_latest_txn(&chan_id, &nodes[1].node.get_our_node_id()).unwrap();
13651 check_closed_broadcast(&nodes[0], 1, true);
13652 check_added_monitors(&nodes[0], 1);
13653 check_closed_event!(nodes[0], 1, ClosureReason::HolderForceClosed, [nodes[1].node.get_our_node_id()], 100000);
13655 let txn = nodes[0].tx_broadcaster.txn_broadcast();
13656 assert_eq!(txn.len(), 1);
13657 check_spends!(txn[0], funding_tx);
13660 // Since they're disconnected, Bob won't receive Alice's `Error` message. Reconnect them
13661 // such that Bob sends a `ChannelReestablish` to Alice since the channel is still open from
13663 nodes[0].node.peer_connected(&nodes[1].node.get_our_node_id(), &msgs::Init {
13664 features: nodes[1].node.init_features(), networks: None, remote_network_address: None
13666 nodes[1].node.peer_connected(&nodes[0].node.get_our_node_id(), &msgs::Init {
13667 features: nodes[0].node.init_features(), networks: None, remote_network_address: None
13668 }, false).unwrap();
13669 assert!(nodes[0].node.get_and_clear_pending_msg_events().is_empty());
13670 let channel_reestablish = get_event_msg!(
13671 nodes[1], MessageSendEvent::SendChannelReestablish, nodes[0].node.get_our_node_id()
13673 nodes[0].node.handle_channel_reestablish(&nodes[1].node.get_our_node_id(), &channel_reestablish);
13675 // Alice should respond with an error since the channel isn't known, but a bogus
13676 // `ChannelReestablish` should be sent first, such that we actually trigger Bob to force
13677 // close even if it was an lnd node.
13678 let msg_events = nodes[0].node.get_and_clear_pending_msg_events();
13679 assert_eq!(msg_events.len(), 2);
13680 if let MessageSendEvent::SendChannelReestablish { node_id, msg } = &msg_events[0] {
13681 assert_eq!(*node_id, nodes[1].node.get_our_node_id());
13682 assert_eq!(msg.next_local_commitment_number, 0);
13683 assert_eq!(msg.next_remote_commitment_number, 0);
13684 nodes[1].node.handle_channel_reestablish(&nodes[0].node.get_our_node_id(), &msg);
13685 } else { panic!() };
13686 check_closed_broadcast(&nodes[1], 1, true);
13687 check_added_monitors(&nodes[1], 1);
13688 let expected_close_reason = ClosureReason::ProcessingError {
13689 err: "Peer sent an invalid channel_reestablish to force close in a non-standard way".to_string()
13691 check_closed_event!(nodes[1], 1, expected_close_reason, [nodes[0].node.get_our_node_id()], 100000);
13693 let txn = nodes[1].tx_broadcaster.txn_broadcast();
13694 assert_eq!(txn.len(), 1);
13695 check_spends!(txn[0], funding_tx);
13700 fn test_malformed_forward_htlcs_ser() {
13701 // Ensure that `HTLCForwardInfo::FailMalformedHTLC`s are (de)serialized properly.
13702 let chanmon_cfg = create_chanmon_cfgs(1);
13703 let node_cfg = create_node_cfgs(1, &chanmon_cfg);
13706 let chanmgrs = create_node_chanmgrs(1, &node_cfg, &[None]);
13707 let deserialized_chanmgr;
13708 let mut nodes = create_network(1, &node_cfg, &chanmgrs);
13710 let dummy_failed_htlc = |htlc_id| {
13711 HTLCForwardInfo::FailHTLC { htlc_id, err_packet: msgs::OnionErrorPacket { data: vec![42] }, }
13713 let dummy_malformed_htlc = |htlc_id| {
13714 HTLCForwardInfo::FailMalformedHTLC { htlc_id, failure_code: 0x4000, sha256_of_onion: [0; 32] }
13717 let dummy_htlcs_1: Vec<HTLCForwardInfo> = (1..10).map(|htlc_id| {
13718 if htlc_id % 2 == 0 {
13719 dummy_failed_htlc(htlc_id)
13721 dummy_malformed_htlc(htlc_id)
13725 let dummy_htlcs_2: Vec<HTLCForwardInfo> = (1..10).map(|htlc_id| {
13726 if htlc_id % 2 == 1 {
13727 dummy_failed_htlc(htlc_id)
13729 dummy_malformed_htlc(htlc_id)
13734 let (scid_1, scid_2) = (42, 43);
13735 let mut forward_htlcs = new_hash_map();
13736 forward_htlcs.insert(scid_1, dummy_htlcs_1.clone());
13737 forward_htlcs.insert(scid_2, dummy_htlcs_2.clone());
13739 let mut chanmgr_fwd_htlcs = nodes[0].node.forward_htlcs.lock().unwrap();
13740 *chanmgr_fwd_htlcs = forward_htlcs.clone();
13741 core::mem::drop(chanmgr_fwd_htlcs);
13743 reload_node!(nodes[0], nodes[0].node.encode(), &[], persister, chain_monitor, deserialized_chanmgr);
13745 let mut deserialized_fwd_htlcs = nodes[0].node.forward_htlcs.lock().unwrap();
13746 for scid in [scid_1, scid_2].iter() {
13747 let deserialized_htlcs = deserialized_fwd_htlcs.remove(scid).unwrap();
13748 assert_eq!(forward_htlcs.remove(scid).unwrap(), deserialized_htlcs);
13750 assert!(deserialized_fwd_htlcs.is_empty());
13751 core::mem::drop(deserialized_fwd_htlcs);
13753 expect_pending_htlcs_forwardable!(nodes[0]);
13759 use crate::chain::Listen;
13760 use crate::chain::chainmonitor::{ChainMonitor, Persist};
13761 use crate::sign::{KeysManager, InMemorySigner};
13762 use crate::events::{Event, MessageSendEvent, MessageSendEventsProvider};
13763 use crate::ln::channelmanager::{BestBlock, ChainParameters, ChannelManager, PaymentHash, PaymentPreimage, PaymentId, RecipientOnionFields, Retry};
13764 use crate::ln::functional_test_utils::*;
13765 use crate::ln::msgs::{ChannelMessageHandler, Init};
13766 use crate::routing::gossip::NetworkGraph;
13767 use crate::routing::router::{PaymentParameters, RouteParameters};
13768 use crate::util::test_utils;
13769 use crate::util::config::{UserConfig, MaxDustHTLCExposure};
13771 use bitcoin::blockdata::locktime::absolute::LockTime;
13772 use bitcoin::hashes::Hash;
13773 use bitcoin::hashes::sha256::Hash as Sha256;
13774 use bitcoin::{Transaction, TxOut};
13776 use crate::sync::{Arc, Mutex, RwLock};
13778 use criterion::Criterion;
13780 type Manager<'a, P> = ChannelManager<
13781 &'a ChainMonitor<InMemorySigner, &'a test_utils::TestChainSource,
13782 &'a test_utils::TestBroadcaster, &'a test_utils::TestFeeEstimator,
13783 &'a test_utils::TestLogger, &'a P>,
13784 &'a test_utils::TestBroadcaster, &'a KeysManager, &'a KeysManager, &'a KeysManager,
13785 &'a test_utils::TestFeeEstimator, &'a test_utils::TestRouter<'a>,
13786 &'a test_utils::TestLogger>;
13788 struct ANodeHolder<'node_cfg, 'chan_mon_cfg: 'node_cfg, P: Persist<InMemorySigner>> {
13789 node: &'node_cfg Manager<'chan_mon_cfg, P>,
13791 impl<'node_cfg, 'chan_mon_cfg: 'node_cfg, P: Persist<InMemorySigner>> NodeHolder for ANodeHolder<'node_cfg, 'chan_mon_cfg, P> {
13792 type CM = Manager<'chan_mon_cfg, P>;
13794 fn node(&self) -> &Manager<'chan_mon_cfg, P> { self.node }
13796 fn chain_monitor(&self) -> Option<&test_utils::TestChainMonitor> { None }
13799 pub fn bench_sends(bench: &mut Criterion) {
13800 bench_two_sends(bench, "bench_sends", test_utils::TestPersister::new(), test_utils::TestPersister::new());
13803 pub fn bench_two_sends<P: Persist<InMemorySigner>>(bench: &mut Criterion, bench_name: &str, persister_a: P, persister_b: P) {
13804 // Do a simple benchmark of sending a payment back and forth between two nodes.
13805 // Note that this is unrealistic as each payment send will require at least two fsync
13807 let network = bitcoin::Network::Testnet;
13808 let genesis_block = bitcoin::blockdata::constants::genesis_block(network);
13810 let tx_broadcaster = test_utils::TestBroadcaster::new(network);
13811 let fee_estimator = test_utils::TestFeeEstimator { sat_per_kw: Mutex::new(253) };
13812 let logger_a = test_utils::TestLogger::with_id("node a".to_owned());
13813 let scorer = RwLock::new(test_utils::TestScorer::new());
13814 let router = test_utils::TestRouter::new(Arc::new(NetworkGraph::new(network, &logger_a)), &logger_a, &scorer);
13816 let mut config: UserConfig = Default::default();
13817 config.channel_config.max_dust_htlc_exposure = MaxDustHTLCExposure::FeeRateMultiplier(5_000_000 / 253);
13818 config.channel_handshake_config.minimum_depth = 1;
13820 let chain_monitor_a = ChainMonitor::new(None, &tx_broadcaster, &logger_a, &fee_estimator, &persister_a);
13821 let seed_a = [1u8; 32];
13822 let keys_manager_a = KeysManager::new(&seed_a, 42, 42);
13823 let node_a = ChannelManager::new(&fee_estimator, &chain_monitor_a, &tx_broadcaster, &router, &logger_a, &keys_manager_a, &keys_manager_a, &keys_manager_a, config.clone(), ChainParameters {
13825 best_block: BestBlock::from_network(network),
13826 }, genesis_block.header.time);
13827 let node_a_holder = ANodeHolder { node: &node_a };
13829 let logger_b = test_utils::TestLogger::with_id("node a".to_owned());
13830 let chain_monitor_b = ChainMonitor::new(None, &tx_broadcaster, &logger_a, &fee_estimator, &persister_b);
13831 let seed_b = [2u8; 32];
13832 let keys_manager_b = KeysManager::new(&seed_b, 42, 42);
13833 let node_b = ChannelManager::new(&fee_estimator, &chain_monitor_b, &tx_broadcaster, &router, &logger_b, &keys_manager_b, &keys_manager_b, &keys_manager_b, config.clone(), ChainParameters {
13835 best_block: BestBlock::from_network(network),
13836 }, genesis_block.header.time);
13837 let node_b_holder = ANodeHolder { node: &node_b };
13839 node_a.peer_connected(&node_b.get_our_node_id(), &Init {
13840 features: node_b.init_features(), networks: None, remote_network_address: None
13842 node_b.peer_connected(&node_a.get_our_node_id(), &Init {
13843 features: node_a.init_features(), networks: None, remote_network_address: None
13844 }, false).unwrap();
13845 node_a.create_channel(node_b.get_our_node_id(), 8_000_000, 100_000_000, 42, None, None).unwrap();
13846 node_b.handle_open_channel(&node_a.get_our_node_id(), &get_event_msg!(node_a_holder, MessageSendEvent::SendOpenChannel, node_b.get_our_node_id()));
13847 node_a.handle_accept_channel(&node_b.get_our_node_id(), &get_event_msg!(node_b_holder, MessageSendEvent::SendAcceptChannel, node_a.get_our_node_id()));
13850 if let Event::FundingGenerationReady { temporary_channel_id, output_script, .. } = get_event!(node_a_holder, Event::FundingGenerationReady) {
13851 tx = Transaction { version: 2, lock_time: LockTime::ZERO, input: Vec::new(), output: vec![TxOut {
13852 value: 8_000_000, script_pubkey: output_script,
13854 node_a.funding_transaction_generated(&temporary_channel_id, &node_b.get_our_node_id(), tx.clone()).unwrap();
13855 } else { panic!(); }
13857 node_b.handle_funding_created(&node_a.get_our_node_id(), &get_event_msg!(node_a_holder, MessageSendEvent::SendFundingCreated, node_b.get_our_node_id()));
13858 let events_b = node_b.get_and_clear_pending_events();
13859 assert_eq!(events_b.len(), 1);
13860 match events_b[0] {
13861 Event::ChannelPending{ ref counterparty_node_id, .. } => {
13862 assert_eq!(*counterparty_node_id, node_a.get_our_node_id());
13864 _ => panic!("Unexpected event"),
13867 node_a.handle_funding_signed(&node_b.get_our_node_id(), &get_event_msg!(node_b_holder, MessageSendEvent::SendFundingSigned, node_a.get_our_node_id()));
13868 let events_a = node_a.get_and_clear_pending_events();
13869 assert_eq!(events_a.len(), 1);
13870 match events_a[0] {
13871 Event::ChannelPending{ ref counterparty_node_id, .. } => {
13872 assert_eq!(*counterparty_node_id, node_b.get_our_node_id());
13874 _ => panic!("Unexpected event"),
13877 assert_eq!(&tx_broadcaster.txn_broadcasted.lock().unwrap()[..], &[tx.clone()]);
13879 let block = create_dummy_block(BestBlock::from_network(network).block_hash, 42, vec![tx]);
13880 Listen::block_connected(&node_a, &block, 1);
13881 Listen::block_connected(&node_b, &block, 1);
13883 node_a.handle_channel_ready(&node_b.get_our_node_id(), &get_event_msg!(node_b_holder, MessageSendEvent::SendChannelReady, node_a.get_our_node_id()));
13884 let msg_events = node_a.get_and_clear_pending_msg_events();
13885 assert_eq!(msg_events.len(), 2);
13886 match msg_events[0] {
13887 MessageSendEvent::SendChannelReady { ref msg, .. } => {
13888 node_b.handle_channel_ready(&node_a.get_our_node_id(), msg);
13889 get_event_msg!(node_b_holder, MessageSendEvent::SendChannelUpdate, node_a.get_our_node_id());
13893 match msg_events[1] {
13894 MessageSendEvent::SendChannelUpdate { .. } => {},
13898 let events_a = node_a.get_and_clear_pending_events();
13899 assert_eq!(events_a.len(), 1);
13900 match events_a[0] {
13901 Event::ChannelReady{ ref counterparty_node_id, .. } => {
13902 assert_eq!(*counterparty_node_id, node_b.get_our_node_id());
13904 _ => panic!("Unexpected event"),
13907 let events_b = node_b.get_and_clear_pending_events();
13908 assert_eq!(events_b.len(), 1);
13909 match events_b[0] {
13910 Event::ChannelReady{ ref counterparty_node_id, .. } => {
13911 assert_eq!(*counterparty_node_id, node_a.get_our_node_id());
13913 _ => panic!("Unexpected event"),
13916 let mut payment_count: u64 = 0;
13917 macro_rules! send_payment {
13918 ($node_a: expr, $node_b: expr) => {
13919 let payment_params = PaymentParameters::from_node_id($node_b.get_our_node_id(), TEST_FINAL_CLTV)
13920 .with_bolt11_features($node_b.bolt11_invoice_features()).unwrap();
13921 let mut payment_preimage = PaymentPreimage([0; 32]);
13922 payment_preimage.0[0..8].copy_from_slice(&payment_count.to_le_bytes());
13923 payment_count += 1;
13924 let payment_hash = PaymentHash(Sha256::hash(&payment_preimage.0[..]).to_byte_array());
13925 let payment_secret = $node_b.create_inbound_payment_for_hash(payment_hash, None, 7200, None).unwrap();
13927 $node_a.send_payment(payment_hash, RecipientOnionFields::secret_only(payment_secret),
13928 PaymentId(payment_hash.0),
13929 RouteParameters::from_payment_params_and_value(payment_params, 10_000),
13930 Retry::Attempts(0)).unwrap();
13931 let payment_event = SendEvent::from_event($node_a.get_and_clear_pending_msg_events().pop().unwrap());
13932 $node_b.handle_update_add_htlc(&$node_a.get_our_node_id(), &payment_event.msgs[0]);
13933 $node_b.handle_commitment_signed(&$node_a.get_our_node_id(), &payment_event.commitment_msg);
13934 let (raa, cs) = get_revoke_commit_msgs(&ANodeHolder { node: &$node_b }, &$node_a.get_our_node_id());
13935 $node_a.handle_revoke_and_ack(&$node_b.get_our_node_id(), &raa);
13936 $node_a.handle_commitment_signed(&$node_b.get_our_node_id(), &cs);
13937 $node_b.handle_revoke_and_ack(&$node_a.get_our_node_id(), &get_event_msg!(ANodeHolder { node: &$node_a }, MessageSendEvent::SendRevokeAndACK, $node_b.get_our_node_id()));
13939 expect_pending_htlcs_forwardable!(ANodeHolder { node: &$node_b });
13940 expect_payment_claimable!(ANodeHolder { node: &$node_b }, payment_hash, payment_secret, 10_000);
13941 $node_b.claim_funds(payment_preimage);
13942 expect_payment_claimed!(ANodeHolder { node: &$node_b }, payment_hash, 10_000);
13944 match $node_b.get_and_clear_pending_msg_events().pop().unwrap() {
13945 MessageSendEvent::UpdateHTLCs { node_id, updates } => {
13946 assert_eq!(node_id, $node_a.get_our_node_id());
13947 $node_a.handle_update_fulfill_htlc(&$node_b.get_our_node_id(), &updates.update_fulfill_htlcs[0]);
13948 $node_a.handle_commitment_signed(&$node_b.get_our_node_id(), &updates.commitment_signed);
13950 _ => panic!("Failed to generate claim event"),
13953 let (raa, cs) = get_revoke_commit_msgs(&ANodeHolder { node: &$node_a }, &$node_b.get_our_node_id());
13954 $node_b.handle_revoke_and_ack(&$node_a.get_our_node_id(), &raa);
13955 $node_b.handle_commitment_signed(&$node_a.get_our_node_id(), &cs);
13956 $node_a.handle_revoke_and_ack(&$node_b.get_our_node_id(), &get_event_msg!(ANodeHolder { node: &$node_b }, MessageSendEvent::SendRevokeAndACK, $node_a.get_our_node_id()));
13958 expect_payment_sent!(ANodeHolder { node: &$node_a }, payment_preimage);
13962 bench.bench_function(bench_name, |b| b.iter(|| {
13963 send_payment!(node_a, node_b);
13964 send_payment!(node_b, node_a);