439b5444a547f5cfda5b90378e4ba325cca40119
[rust-lightning] / lightning / src / ln / channelmanager.rs
1 // This file is Copyright its original authors, visible in version control
2 // history.
3 //
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
8 // licenses.
9
10 //! The top-level channel management and payment tracking stuff lives here.
11 //!
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).
15 //!
16 //! It does not manage routing logic (see routing::router::get_route 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).
19 //!
20
21 use bitcoin::blockdata::block::{Block, BlockHeader};
22 use bitcoin::blockdata::transaction::Transaction;
23 use bitcoin::blockdata::constants::genesis_block;
24 use bitcoin::network::constants::Network;
25
26 use bitcoin::hashes::{Hash, HashEngine};
27 use bitcoin::hashes::hmac::{Hmac, HmacEngine};
28 use bitcoin::hashes::sha256::Hash as Sha256;
29 use bitcoin::hashes::sha256d::Hash as Sha256dHash;
30 use bitcoin::hashes::cmp::fixed_time_eq;
31 use bitcoin::hash_types::{BlockHash, Txid};
32
33 use bitcoin::secp256k1::key::{SecretKey,PublicKey};
34 use bitcoin::secp256k1::Secp256k1;
35 use bitcoin::secp256k1::ecdh::SharedSecret;
36 use bitcoin::secp256k1;
37
38 use chain;
39 use chain::{Confirm, Watch, BestBlock};
40 use chain::chaininterface::{BroadcasterInterface, FeeEstimator};
41 use chain::channelmonitor::{ChannelMonitor, ChannelMonitorUpdate, ChannelMonitorUpdateStep, ChannelMonitorUpdateErr, HTLC_FAIL_BACK_BUFFER, CLTV_CLAIM_BUFFER, LATENCY_GRACE_PERIOD_BLOCKS, ANTI_REORG_DELAY, MonitorEvent, CLOSED_CHANNEL_UPDATE_ID};
42 use chain::transaction::{OutPoint, TransactionData};
43 // Since this struct is returned in `list_channels` methods, expose it here in case users want to
44 // construct one themselves.
45 use ln::{PaymentHash, PaymentPreimage, PaymentSecret};
46 pub use ln::channel::CounterpartyForwardingInfo;
47 use ln::channel::{Channel, ChannelError, ChannelUpdateStatus, UpdateFulfillCommitFetch};
48 use ln::features::{InitFeatures, NodeFeatures};
49 use routing::router::{Route, RouteHop};
50 use ln::msgs;
51 use ln::msgs::NetAddress;
52 use ln::onion_utils;
53 use ln::msgs::{ChannelMessageHandler, DecodeError, LightningError, OptionalField};
54 use chain::keysinterface::{Sign, KeysInterface, KeysManager, InMemorySigner};
55 use util::config::UserConfig;
56 use util::events::{EventHandler, EventsProvider, MessageSendEvent, MessageSendEventsProvider};
57 use util::{byte_utils, events};
58 use util::ser::{Readable, ReadableArgs, MaybeReadable, Writeable, Writer};
59 use util::chacha20::{ChaCha20, ChaChaReader};
60 use util::logger::{Logger, Level};
61 use util::errors::APIError;
62
63 use io;
64 use prelude::*;
65 use core::{cmp, mem};
66 use core::cell::RefCell;
67 use io::{Cursor, Read};
68 use sync::{Arc, Condvar, Mutex, MutexGuard, RwLock, RwLockReadGuard};
69 use core::sync::atomic::{AtomicUsize, Ordering};
70 use core::time::Duration;
71 #[cfg(any(test, feature = "allow_wallclock_use"))]
72 use std::time::Instant;
73 use core::ops::Deref;
74 use bitcoin::hashes::hex::ToHex;
75
76 // We hold various information about HTLC relay in the HTLC objects in Channel itself:
77 //
78 // Upon receipt of an HTLC from a peer, we'll give it a PendingHTLCStatus indicating if it should
79 // forward the HTLC with information it will give back to us when it does so, or if it should Fail
80 // the HTLC with the relevant message for the Channel to handle giving to the remote peer.
81 //
82 // Once said HTLC is committed in the Channel, if the PendingHTLCStatus indicated Forward, the
83 // Channel will return the PendingHTLCInfo back to us, and we will create an HTLCForwardInfo
84 // with it to track where it came from (in case of onwards-forward error), waiting a random delay
85 // before we forward it.
86 //
87 // We will then use HTLCForwardInfo's PendingHTLCInfo to construct an outbound HTLC, with a
88 // relevant HTLCSource::PreviousHopData filled in to indicate where it came from (which we can use
89 // to either fail-backwards or fulfill the HTLC backwards along the relevant path).
90 // Alternatively, we can fill an outbound HTLC with a HTLCSource::OutboundRoute indicating this is
91 // our payment, which we can use to decode errors or inform the user that the payment was sent.
92
93 #[derive(Clone)] // See Channel::revoke_and_ack for why, tl;dr: Rust bug
94 enum PendingHTLCRouting {
95         Forward {
96                 onion_packet: msgs::OnionPacket,
97                 short_channel_id: u64, // This should be NonZero<u64> eventually when we bump MSRV
98         },
99         Receive {
100                 payment_data: msgs::FinalOnionHopData,
101                 incoming_cltv_expiry: u32, // Used to track when we should expire pending HTLCs that go unclaimed
102         },
103         ReceiveKeysend {
104                 payment_preimage: PaymentPreimage,
105                 incoming_cltv_expiry: u32, // Used to track when we should expire pending HTLCs that go unclaimed
106         },
107 }
108
109 #[derive(Clone)] // See Channel::revoke_and_ack for why, tl;dr: Rust bug
110 pub(super) struct PendingHTLCInfo {
111         routing: PendingHTLCRouting,
112         incoming_shared_secret: [u8; 32],
113         payment_hash: PaymentHash,
114         pub(super) amt_to_forward: u64,
115         pub(super) outgoing_cltv_value: u32,
116 }
117
118 #[derive(Clone)] // See Channel::revoke_and_ack for why, tl;dr: Rust bug
119 pub(super) enum HTLCFailureMsg {
120         Relay(msgs::UpdateFailHTLC),
121         Malformed(msgs::UpdateFailMalformedHTLC),
122 }
123
124 /// Stores whether we can't forward an HTLC or relevant forwarding info
125 #[derive(Clone)] // See Channel::revoke_and_ack for why, tl;dr: Rust bug
126 pub(super) enum PendingHTLCStatus {
127         Forward(PendingHTLCInfo),
128         Fail(HTLCFailureMsg),
129 }
130
131 pub(super) enum HTLCForwardInfo {
132         AddHTLC {
133                 forward_info: PendingHTLCInfo,
134
135                 // These fields are produced in `forward_htlcs()` and consumed in
136                 // `process_pending_htlc_forwards()` for constructing the
137                 // `HTLCSource::PreviousHopData` for failed and forwarded
138                 // HTLCs.
139                 prev_short_channel_id: u64,
140                 prev_htlc_id: u64,
141                 prev_funding_outpoint: OutPoint,
142         },
143         FailHTLC {
144                 htlc_id: u64,
145                 err_packet: msgs::OnionErrorPacket,
146         },
147 }
148
149 /// Tracks the inbound corresponding to an outbound HTLC
150 #[derive(Clone, PartialEq)]
151 pub(crate) struct HTLCPreviousHopData {
152         short_channel_id: u64,
153         htlc_id: u64,
154         incoming_packet_shared_secret: [u8; 32],
155
156         // This field is consumed by `claim_funds_from_hop()` when updating a force-closed backwards
157         // channel with a preimage provided by the forward channel.
158         outpoint: OutPoint,
159 }
160
161 enum OnionPayload {
162         /// Contains a total_msat (which may differ from value if this is a Multi-Path Payment) and a
163         /// payment_secret which prevents path-probing attacks and can associate different HTLCs which
164         /// are part of the same payment.
165         Invoice(msgs::FinalOnionHopData),
166         /// Contains the payer-provided preimage.
167         Spontaneous(PaymentPreimage),
168 }
169
170 struct ClaimableHTLC {
171         prev_hop: HTLCPreviousHopData,
172         cltv_expiry: u32,
173         value: u64,
174         onion_payload: OnionPayload,
175 }
176
177 /// Tracks the inbound corresponding to an outbound HTLC
178 #[derive(Clone, PartialEq)]
179 pub(crate) enum HTLCSource {
180         PreviousHopData(HTLCPreviousHopData),
181         OutboundRoute {
182                 path: Vec<RouteHop>,
183                 session_priv: SecretKey,
184                 /// Technically we can recalculate this from the route, but we cache it here to avoid
185                 /// doing a double-pass on route when we get a failure back
186                 first_hop_htlc_msat: u64,
187         },
188 }
189 #[cfg(test)]
190 impl HTLCSource {
191         pub fn dummy() -> Self {
192                 HTLCSource::OutboundRoute {
193                         path: Vec::new(),
194                         session_priv: SecretKey::from_slice(&[1; 32]).unwrap(),
195                         first_hop_htlc_msat: 0,
196                 }
197         }
198 }
199
200 #[derive(Clone)] // See Channel::revoke_and_ack for why, tl;dr: Rust bug
201 pub(super) enum HTLCFailReason {
202         LightningError {
203                 err: msgs::OnionErrorPacket,
204         },
205         Reason {
206                 failure_code: u16,
207                 data: Vec<u8>,
208         }
209 }
210
211 /// Return value for claim_funds_from_hop
212 enum ClaimFundsFromHop {
213         PrevHopForceClosed,
214         MonitorUpdateFail(PublicKey, MsgHandleErrInternal, Option<u64>),
215         Success(u64),
216         DuplicateClaim,
217 }
218
219 type ShutdownResult = (Option<(OutPoint, ChannelMonitorUpdate)>, Vec<(HTLCSource, PaymentHash)>);
220
221 /// Error type returned across the channel_state mutex boundary. When an Err is generated for a
222 /// Channel, we generally end up with a ChannelError::Close for which we have to close the channel
223 /// immediately (ie with no further calls on it made). Thus, this step happens inside a
224 /// channel_state lock. We then return the set of things that need to be done outside the lock in
225 /// this struct and call handle_error!() on it.
226
227 struct MsgHandleErrInternal {
228         err: msgs::LightningError,
229         shutdown_finish: Option<(ShutdownResult, Option<msgs::ChannelUpdate>)>,
230 }
231 impl MsgHandleErrInternal {
232         #[inline]
233         fn send_err_msg_no_close(err: String, channel_id: [u8; 32]) -> Self {
234                 Self {
235                         err: LightningError {
236                                 err: err.clone(),
237                                 action: msgs::ErrorAction::SendErrorMessage {
238                                         msg: msgs::ErrorMessage {
239                                                 channel_id,
240                                                 data: err
241                                         },
242                                 },
243                         },
244                         shutdown_finish: None,
245                 }
246         }
247         #[inline]
248         fn ignore_no_close(err: String) -> Self {
249                 Self {
250                         err: LightningError {
251                                 err,
252                                 action: msgs::ErrorAction::IgnoreError,
253                         },
254                         shutdown_finish: None,
255                 }
256         }
257         #[inline]
258         fn from_no_close(err: msgs::LightningError) -> Self {
259                 Self { err, shutdown_finish: None }
260         }
261         #[inline]
262         fn from_finish_shutdown(err: String, channel_id: [u8; 32], shutdown_res: ShutdownResult, channel_update: Option<msgs::ChannelUpdate>) -> Self {
263                 Self {
264                         err: LightningError {
265                                 err: err.clone(),
266                                 action: msgs::ErrorAction::SendErrorMessage {
267                                         msg: msgs::ErrorMessage {
268                                                 channel_id,
269                                                 data: err
270                                         },
271                                 },
272                         },
273                         shutdown_finish: Some((shutdown_res, channel_update)),
274                 }
275         }
276         #[inline]
277         fn from_chan_no_close(err: ChannelError, channel_id: [u8; 32]) -> Self {
278                 Self {
279                         err: match err {
280                                 ChannelError::Ignore(msg) => LightningError {
281                                         err: msg,
282                                         action: msgs::ErrorAction::IgnoreError,
283                                 },
284                                 ChannelError::Close(msg) => LightningError {
285                                         err: msg.clone(),
286                                         action: msgs::ErrorAction::SendErrorMessage {
287                                                 msg: msgs::ErrorMessage {
288                                                         channel_id,
289                                                         data: msg
290                                                 },
291                                         },
292                                 },
293                                 ChannelError::CloseDelayBroadcast(msg) => LightningError {
294                                         err: msg.clone(),
295                                         action: msgs::ErrorAction::SendErrorMessage {
296                                                 msg: msgs::ErrorMessage {
297                                                         channel_id,
298                                                         data: msg
299                                                 },
300                                         },
301                                 },
302                         },
303                         shutdown_finish: None,
304                 }
305         }
306 }
307
308 /// We hold back HTLCs we intend to relay for a random interval greater than this (see
309 /// Event::PendingHTLCsForwardable for the API guidelines indicating how long should be waited).
310 /// This provides some limited amount of privacy. Ideally this would range from somewhere like one
311 /// second to 30 seconds, but people expect lightning to be, you know, kinda fast, sadly.
312 const MIN_HTLC_RELAY_HOLDING_CELL_MILLIS: u64 = 100;
313
314 /// For events which result in both a RevokeAndACK and a CommitmentUpdate, by default they should
315 /// be sent in the order they appear in the return value, however sometimes the order needs to be
316 /// variable at runtime (eg Channel::channel_reestablish needs to re-send messages in the order
317 /// they were originally sent). In those cases, this enum is also returned.
318 #[derive(Clone, PartialEq)]
319 pub(super) enum RAACommitmentOrder {
320         /// Send the CommitmentUpdate messages first
321         CommitmentFirst,
322         /// Send the RevokeAndACK message first
323         RevokeAndACKFirst,
324 }
325
326 // Note this is only exposed in cfg(test):
327 pub(super) struct ChannelHolder<Signer: Sign> {
328         pub(super) by_id: HashMap<[u8; 32], Channel<Signer>>,
329         pub(super) short_to_id: HashMap<u64, [u8; 32]>,
330         /// short channel id -> forward infos. Key of 0 means payments received
331         /// Note that while this is held in the same mutex as the channels themselves, no consistency
332         /// guarantees are made about the existence of a channel with the short id here, nor the short
333         /// ids in the PendingHTLCInfo!
334         pub(super) forward_htlcs: HashMap<u64, Vec<HTLCForwardInfo>>,
335         /// Map from payment hash to any HTLCs which are to us and can be failed/claimed by the user.
336         /// Note that while this is held in the same mutex as the channels themselves, no consistency
337         /// guarantees are made about the channels given here actually existing anymore by the time you
338         /// go to read them!
339         claimable_htlcs: HashMap<PaymentHash, Vec<ClaimableHTLC>>,
340         /// Messages to send to peers - pushed to in the same lock that they are generated in (except
341         /// for broadcast messages, where ordering isn't as strict).
342         pub(super) pending_msg_events: Vec<MessageSendEvent>,
343 }
344
345 /// Events which we process internally but cannot be procsesed immediately at the generation site
346 /// for some reason. They are handled in timer_tick_occurred, so may be processed with
347 /// quite some time lag.
348 enum BackgroundEvent {
349         /// Handle a ChannelMonitorUpdate that closes a channel, broadcasting its current latest holder
350         /// commitment transaction.
351         ClosingMonitorUpdate((OutPoint, ChannelMonitorUpdate)),
352 }
353
354 /// State we hold per-peer. In the future we should put channels in here, but for now we only hold
355 /// the latest Init features we heard from the peer.
356 struct PeerState {
357         latest_features: InitFeatures,
358 }
359
360 /// Stores a PaymentSecret and any other data we may need to validate an inbound payment is
361 /// actually ours and not some duplicate HTLC sent to us by a node along the route.
362 ///
363 /// For users who don't want to bother doing their own payment preimage storage, we also store that
364 /// here.
365 struct PendingInboundPayment {
366         /// The payment secret that the sender must use for us to accept this payment
367         payment_secret: PaymentSecret,
368         /// Time at which this HTLC expires - blocks with a header time above this value will result in
369         /// this payment being removed.
370         expiry_time: u64,
371         /// Arbitrary identifier the user specifies (or not)
372         user_payment_id: u64,
373         // Other required attributes of the payment, optionally enforced:
374         payment_preimage: Option<PaymentPreimage>,
375         min_value_msat: Option<u64>,
376 }
377
378 /// SimpleArcChannelManager is useful when you need a ChannelManager with a static lifetime, e.g.
379 /// when you're using lightning-net-tokio (since tokio::spawn requires parameters with static
380 /// lifetimes). Other times you can afford a reference, which is more efficient, in which case
381 /// SimpleRefChannelManager is the more appropriate type. Defining these type aliases prevents
382 /// issues such as overly long function definitions. Note that the ChannelManager can take any
383 /// type that implements KeysInterface for its keys manager, but this type alias chooses the
384 /// concrete type of the KeysManager.
385 pub type SimpleArcChannelManager<M, T, F, L> = ChannelManager<InMemorySigner, Arc<M>, Arc<T>, Arc<KeysManager>, Arc<F>, Arc<L>>;
386
387 /// SimpleRefChannelManager is a type alias for a ChannelManager reference, and is the reference
388 /// counterpart to the SimpleArcChannelManager type alias. Use this type by default when you don't
389 /// need a ChannelManager with a static lifetime. You'll need a static lifetime in cases such as
390 /// usage of lightning-net-tokio (since tokio::spawn requires parameters with static lifetimes).
391 /// But if this is not necessary, using a reference is more efficient. Defining these type aliases
392 /// helps with issues such as long function definitions. Note that the ChannelManager can take any
393 /// type that implements KeysInterface for its keys manager, but this type alias chooses the
394 /// concrete type of the KeysManager.
395 pub type SimpleRefChannelManager<'a, 'b, 'c, 'd, 'e, M, T, F, L> = ChannelManager<InMemorySigner, &'a M, &'b T, &'c KeysManager, &'d F, &'e L>;
396
397 /// Manager which keeps track of a number of channels and sends messages to the appropriate
398 /// channel, also tracking HTLC preimages and forwarding onion packets appropriately.
399 ///
400 /// Implements ChannelMessageHandler, handling the multi-channel parts and passing things through
401 /// to individual Channels.
402 ///
403 /// Implements Writeable to write out all channel state to disk. Implies peer_disconnected() for
404 /// all peers during write/read (though does not modify this instance, only the instance being
405 /// serialized). This will result in any channels which have not yet exchanged funding_created (ie
406 /// called funding_transaction_generated for outbound channels).
407 ///
408 /// Note that you can be a bit lazier about writing out ChannelManager than you can be with
409 /// ChannelMonitors. With ChannelMonitors you MUST write each monitor update out to disk before
410 /// returning from chain::Watch::watch_/update_channel, with ChannelManagers, writing updates
411 /// happens out-of-band (and will prevent any other ChannelManager operations from occurring during
412 /// the serialization process). If the deserialized version is out-of-date compared to the
413 /// ChannelMonitors passed by reference to read(), those channels will be force-closed based on the
414 /// ChannelMonitor state and no funds will be lost (mod on-chain transaction fees).
415 ///
416 /// Note that the deserializer is only implemented for (BlockHash, ChannelManager), which
417 /// tells you the last block hash which was block_connect()ed. You MUST rescan any blocks along
418 /// the "reorg path" (ie call block_disconnected() until you get to a common block and then call
419 /// block_connected() to step towards your best block) upon deserialization before using the
420 /// object!
421 ///
422 /// Note that ChannelManager is responsible for tracking liveness of its channels and generating
423 /// ChannelUpdate messages informing peers that the channel is temporarily disabled. To avoid
424 /// spam due to quick disconnection/reconnection, updates are not sent until the channel has been
425 /// offline for a full minute. In order to track this, you must call
426 /// timer_tick_occurred roughly once per minute, though it doesn't have to be perfect.
427 ///
428 /// Rather than using a plain ChannelManager, it is preferable to use either a SimpleArcChannelManager
429 /// a SimpleRefChannelManager, for conciseness. See their documentation for more details, but
430 /// essentially you should default to using a SimpleRefChannelManager, and use a
431 /// SimpleArcChannelManager when you require a ChannelManager with a static lifetime, such as when
432 /// you're using lightning-net-tokio.
433 pub struct ChannelManager<Signer: Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref>
434         where M::Target: chain::Watch<Signer>,
435         T::Target: BroadcasterInterface,
436         K::Target: KeysInterface<Signer = Signer>,
437         F::Target: FeeEstimator,
438                                 L::Target: Logger,
439 {
440         default_configuration: UserConfig,
441         genesis_hash: BlockHash,
442         fee_estimator: F,
443         chain_monitor: M,
444         tx_broadcaster: T,
445
446         #[cfg(test)]
447         pub(super) best_block: RwLock<BestBlock>,
448         #[cfg(not(test))]
449         best_block: RwLock<BestBlock>,
450         secp_ctx: Secp256k1<secp256k1::All>,
451
452         #[cfg(any(test, feature = "_test_utils"))]
453         pub(super) channel_state: Mutex<ChannelHolder<Signer>>,
454         #[cfg(not(any(test, feature = "_test_utils")))]
455         channel_state: Mutex<ChannelHolder<Signer>>,
456
457         /// Storage for PaymentSecrets and any requirements on future inbound payments before we will
458         /// expose them to users via a PaymentReceived event. HTLCs which do not meet the requirements
459         /// here are failed when we process them as pending-forwardable-HTLCs, and entries are removed
460         /// after we generate a PaymentReceived upon receipt of all MPP parts or when they time out.
461         /// Locked *after* channel_state.
462         pending_inbound_payments: Mutex<HashMap<PaymentHash, PendingInboundPayment>>,
463
464         /// The session_priv bytes of outbound payments which are pending resolution.
465         /// The authoritative state of these HTLCs resides either within Channels or ChannelMonitors
466         /// (if the channel has been force-closed), however we track them here to prevent duplicative
467         /// PaymentSent/PaymentFailed events. Specifically, in the case of a duplicative
468         /// update_fulfill_htlc message after a reconnect, we may "claim" a payment twice.
469         /// Additionally, because ChannelMonitors are often not re-serialized after connecting block(s)
470         /// which may generate a claim event, we may receive similar duplicate claim/fail MonitorEvents
471         /// after reloading from disk while replaying blocks against ChannelMonitors.
472         ///
473         /// Locked *after* channel_state.
474         pending_outbound_payments: Mutex<HashSet<[u8; 32]>>,
475
476         our_network_key: SecretKey,
477         our_network_pubkey: PublicKey,
478
479         /// Used to track the last value sent in a node_announcement "timestamp" field. We ensure this
480         /// value increases strictly since we don't assume access to a time source.
481         last_node_announcement_serial: AtomicUsize,
482
483         /// The highest block timestamp we've seen, which is usually a good guess at the current time.
484         /// Assuming most miners are generating blocks with reasonable timestamps, this shouldn't be
485         /// very far in the past, and can only ever be up to two hours in the future.
486         highest_seen_timestamp: AtomicUsize,
487
488         /// The bulk of our storage will eventually be here (channels and message queues and the like).
489         /// If we are connected to a peer we always at least have an entry here, even if no channels
490         /// are currently open with that peer.
491         /// Because adding or removing an entry is rare, we usually take an outer read lock and then
492         /// operate on the inner value freely. Sadly, this prevents parallel operation when opening a
493         /// new channel.
494         ///
495         /// If also holding `channel_state` lock, must lock `channel_state` prior to `per_peer_state`.
496         per_peer_state: RwLock<HashMap<PublicKey, Mutex<PeerState>>>,
497
498         pending_events: Mutex<Vec<events::Event>>,
499         pending_background_events: Mutex<Vec<BackgroundEvent>>,
500         /// Used when we have to take a BIG lock to make sure everything is self-consistent.
501         /// Essentially just when we're serializing ourselves out.
502         /// Taken first everywhere where we are making changes before any other locks.
503         /// When acquiring this lock in read mode, rather than acquiring it directly, call
504         /// `PersistenceNotifierGuard::notify_on_drop(..)` and pass the lock to it, to ensure the
505         /// PersistenceNotifier the lock contains sends out a notification when the lock is released.
506         total_consistency_lock: RwLock<()>,
507
508         persistence_notifier: PersistenceNotifier,
509
510         keys_manager: K,
511
512         logger: L,
513 }
514
515 /// Chain-related parameters used to construct a new `ChannelManager`.
516 ///
517 /// Typically, the block-specific parameters are derived from the best block hash for the network,
518 /// as a newly constructed `ChannelManager` will not have created any channels yet. These parameters
519 /// are not needed when deserializing a previously constructed `ChannelManager`.
520 #[derive(Clone, Copy, PartialEq)]
521 pub struct ChainParameters {
522         /// The network for determining the `chain_hash` in Lightning messages.
523         pub network: Network,
524
525         /// The hash and height of the latest block successfully connected.
526         ///
527         /// Used to track on-chain channel funding outputs and send payments with reliable timelocks.
528         pub best_block: BestBlock,
529 }
530
531 #[derive(Copy, Clone, PartialEq)]
532 enum NotifyOption {
533         DoPersist,
534         SkipPersist,
535 }
536
537 /// Whenever we release the `ChannelManager`'s `total_consistency_lock`, from read mode, it is
538 /// desirable to notify any listeners on `await_persistable_update_timeout`/
539 /// `await_persistable_update` when new updates are available for persistence. Therefore, this
540 /// struct is responsible for locking the total consistency lock and, upon going out of scope,
541 /// sending the aforementioned notification (since the lock being released indicates that the
542 /// updates are ready for persistence).
543 ///
544 /// We allow callers to either always notify by constructing with `notify_on_drop` or choose to
545 /// notify or not based on whether relevant changes have been made, providing a closure to
546 /// `optionally_notify` which returns a `NotifyOption`.
547 struct PersistenceNotifierGuard<'a, F: Fn() -> NotifyOption> {
548         persistence_notifier: &'a PersistenceNotifier,
549         should_persist: F,
550         // We hold onto this result so the lock doesn't get released immediately.
551         _read_guard: RwLockReadGuard<'a, ()>,
552 }
553
554 impl<'a> PersistenceNotifierGuard<'a, fn() -> NotifyOption> { // We don't care what the concrete F is here, it's unused
555         fn notify_on_drop(lock: &'a RwLock<()>, notifier: &'a PersistenceNotifier) -> PersistenceNotifierGuard<'a, impl Fn() -> NotifyOption> {
556                 PersistenceNotifierGuard::optionally_notify(lock, notifier, || -> NotifyOption { NotifyOption::DoPersist })
557         }
558
559         fn optionally_notify<F: Fn() -> NotifyOption>(lock: &'a RwLock<()>, notifier: &'a PersistenceNotifier, persist_check: F) -> PersistenceNotifierGuard<'a, F> {
560                 let read_guard = lock.read().unwrap();
561
562                 PersistenceNotifierGuard {
563                         persistence_notifier: notifier,
564                         should_persist: persist_check,
565                         _read_guard: read_guard,
566                 }
567         }
568 }
569
570 impl<'a, F: Fn() -> NotifyOption> Drop for PersistenceNotifierGuard<'a, F> {
571         fn drop(&mut self) {
572                 if (self.should_persist)() == NotifyOption::DoPersist {
573                         self.persistence_notifier.notify();
574                 }
575         }
576 }
577
578 /// The amount of time in blocks we require our counterparty wait to claim their money (ie time
579 /// between when we, or our watchtower, must check for them having broadcast a theft transaction).
580 ///
581 /// This can be increased (but not decreased) through [`ChannelHandshakeConfig::our_to_self_delay`]
582 ///
583 /// [`ChannelHandshakeConfig::our_to_self_delay`]: crate::util::config::ChannelHandshakeConfig::our_to_self_delay
584 pub const BREAKDOWN_TIMEOUT: u16 = 6 * 24;
585 /// The amount of time in blocks we're willing to wait to claim money back to us. This matches
586 /// the maximum required amount in lnd as of March 2021.
587 pub(crate) const MAX_LOCAL_BREAKDOWN_TIMEOUT: u16 = 2 * 6 * 24 * 7;
588
589 /// The minimum number of blocks between an inbound HTLC's CLTV and the corresponding outbound
590 /// HTLC's CLTV. The current default represents roughly seven hours of blocks at six blocks/hour.
591 ///
592 /// This can be increased (but not decreased) through [`ChannelConfig::cltv_expiry_delta`]
593 ///
594 /// [`ChannelConfig::cltv_expiry_delta`]: crate::util::config::ChannelConfig::cltv_expiry_delta
595 // This should always be a few blocks greater than channelmonitor::CLTV_CLAIM_BUFFER,
596 // i.e. the node we forwarded the payment on to should always have enough room to reliably time out
597 // the HTLC via a full update_fail_htlc/commitment_signed dance before we hit the
598 // CLTV_CLAIM_BUFFER point (we static assert that it's at least 3 blocks more).
599 pub const MIN_CLTV_EXPIRY_DELTA: u16 = 6*7;
600 pub(super) const CLTV_FAR_FAR_AWAY: u32 = 6 * 24 * 7; //TODO?
601
602 /// Minimum CLTV difference between the current block height and received inbound payments.
603 /// Invoices generated for payment to us must set their `min_final_cltv_expiry` field to at least
604 /// this value.
605 // Note that we fail if exactly HTLC_FAIL_BACK_BUFFER + 1 was used, so we need to add one for
606 // any payments to succeed. Further, we don't want payments to fail if a block was found while
607 // a payment was being routed, so we add an extra block to be safe.
608 pub const MIN_FINAL_CLTV_EXPIRY: u32 = HTLC_FAIL_BACK_BUFFER + 3;
609
610 // Check that our CLTV_EXPIRY is at least CLTV_CLAIM_BUFFER + ANTI_REORG_DELAY + LATENCY_GRACE_PERIOD_BLOCKS,
611 // ie that if the next-hop peer fails the HTLC within
612 // LATENCY_GRACE_PERIOD_BLOCKS then we'll still have CLTV_CLAIM_BUFFER left to timeout it onchain,
613 // then waiting ANTI_REORG_DELAY to be reorg-safe on the outbound HLTC and
614 // failing the corresponding htlc backward, and us now seeing the last block of ANTI_REORG_DELAY before
615 // LATENCY_GRACE_PERIOD_BLOCKS.
616 #[deny(const_err)]
617 #[allow(dead_code)]
618 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;
619
620 // Check for ability of an attacker to make us fail on-chain by delaying an HTLC claim. See
621 // ChannelMonitor::should_broadcast_holder_commitment_txn for a description of why this is needed.
622 #[deny(const_err)]
623 #[allow(dead_code)]
624 const CHECK_CLTV_EXPIRY_SANITY_2: u32 = MIN_CLTV_EXPIRY_DELTA as u32 - LATENCY_GRACE_PERIOD_BLOCKS - 2*CLTV_CLAIM_BUFFER;
625
626 /// Channel parameters which apply to our counterparty. These are split out from [`ChannelDetails`]
627 /// to better separate parameters.
628 #[derive(Clone, Debug, PartialEq)]
629 pub struct ChannelCounterparty {
630         /// The node_id of our counterparty
631         pub node_id: PublicKey,
632         /// The Features the channel counterparty provided upon last connection.
633         /// Useful for routing as it is the most up-to-date copy of the counterparty's features and
634         /// many routing-relevant features are present in the init context.
635         pub features: InitFeatures,
636         /// The value, in satoshis, that must always be held in the channel for our counterparty. This
637         /// value ensures that if our counterparty broadcasts a revoked state, we can punish them by
638         /// claiming at least this value on chain.
639         ///
640         /// This value is not included in [`inbound_capacity_msat`] as it can never be spent.
641         ///
642         /// [`inbound_capacity_msat`]: ChannelDetails::inbound_capacity_msat
643         pub unspendable_punishment_reserve: u64,
644         /// Information on the fees and requirements that the counterparty requires when forwarding
645         /// payments to us through this channel.
646         pub forwarding_info: Option<CounterpartyForwardingInfo>,
647 }
648
649 /// Details of a channel, as returned by ChannelManager::list_channels and ChannelManager::list_usable_channels
650 #[derive(Clone, Debug, PartialEq)]
651 pub struct ChannelDetails {
652         /// The channel's ID (prior to funding transaction generation, this is a random 32 bytes,
653         /// thereafter this is the txid of the funding transaction xor the funding transaction output).
654         /// Note that this means this value is *not* persistent - it can change once during the
655         /// lifetime of the channel.
656         pub channel_id: [u8; 32],
657         /// Parameters which apply to our counterparty. See individual fields for more information.
658         pub counterparty: ChannelCounterparty,
659         /// The Channel's funding transaction output, if we've negotiated the funding transaction with
660         /// our counterparty already.
661         ///
662         /// Note that, if this has been set, `channel_id` will be equivalent to
663         /// `funding_txo.unwrap().to_channel_id()`.
664         pub funding_txo: Option<OutPoint>,
665         /// The position of the funding transaction in the chain. None if the funding transaction has
666         /// not yet been confirmed and the channel fully opened.
667         pub short_channel_id: Option<u64>,
668         /// The value, in satoshis, of this channel as appears in the funding output
669         pub channel_value_satoshis: u64,
670         /// The value, in satoshis, that must always be held in the channel for us. This value ensures
671         /// that if we broadcast a revoked state, our counterparty can punish us by claiming at least
672         /// this value on chain.
673         ///
674         /// This value is not included in [`outbound_capacity_msat`] as it can never be spent.
675         ///
676         /// This value will be `None` for outbound channels until the counterparty accepts the channel.
677         ///
678         /// [`outbound_capacity_msat`]: ChannelDetails::outbound_capacity_msat
679         pub unspendable_punishment_reserve: Option<u64>,
680         /// The user_id passed in to create_channel, or 0 if the channel was inbound.
681         pub user_id: u64,
682         /// The available outbound capacity for sending HTLCs to the remote peer. This does not include
683         /// any pending HTLCs which are not yet fully resolved (and, thus, who's balance is not
684         /// available for inclusion in new outbound HTLCs). This further does not include any pending
685         /// outgoing HTLCs which are awaiting some other resolution to be sent.
686         ///
687         /// This value is not exact. Due to various in-flight changes, feerate changes, and our
688         /// conflict-avoidance policy, exactly this amount is not likely to be spendable. However, we
689         /// should be able to spend nearly this amount.
690         pub outbound_capacity_msat: u64,
691         /// The available inbound capacity for the remote peer to send HTLCs to us. This does not
692         /// include any pending HTLCs which are not yet fully resolved (and, thus, who's balance is not
693         /// available for inclusion in new inbound HTLCs).
694         /// Note that there are some corner cases not fully handled here, so the actual available
695         /// inbound capacity may be slightly higher than this.
696         ///
697         /// This value is not exact. Due to various in-flight changes, feerate changes, and our
698         /// counterparty's conflict-avoidance policy, exactly this amount is not likely to be spendable.
699         /// However, our counterparty should be able to spend nearly this amount.
700         pub inbound_capacity_msat: u64,
701         /// The number of required confirmations on the funding transaction before the funding will be
702         /// considered "locked". This number is selected by the channel fundee (i.e. us if
703         /// [`is_outbound`] is *not* set), and can be selected for inbound channels with
704         /// [`ChannelHandshakeConfig::minimum_depth`] or limited for outbound channels with
705         /// [`ChannelHandshakeLimits::max_minimum_depth`].
706         ///
707         /// This value will be `None` for outbound channels until the counterparty accepts the channel.
708         ///
709         /// [`is_outbound`]: ChannelDetails::is_outbound
710         /// [`ChannelHandshakeConfig::minimum_depth`]: crate::util::config::ChannelHandshakeConfig::minimum_depth
711         /// [`ChannelHandshakeLimits::max_minimum_depth`]: crate::util::config::ChannelHandshakeLimits::max_minimum_depth
712         pub confirmations_required: Option<u32>,
713         /// The number of blocks (after our commitment transaction confirms) that we will need to wait
714         /// until we can claim our funds after we force-close the channel. During this time our
715         /// counterparty is allowed to punish us if we broadcasted a stale state. If our counterparty
716         /// force-closes the channel and broadcasts a commitment transaction we do not have to wait any
717         /// time to claim our non-HTLC-encumbered funds.
718         ///
719         /// This value will be `None` for outbound channels until the counterparty accepts the channel.
720         pub force_close_spend_delay: Option<u16>,
721         /// True if the channel was initiated (and thus funded) by us.
722         pub is_outbound: bool,
723         /// True if the channel is confirmed, funding_locked messages have been exchanged, and the
724         /// channel is not currently being shut down. `funding_locked` message exchange implies the
725         /// required confirmation count has been reached (and we were connected to the peer at some
726         /// point after the funding transaction received enough confirmations). The required
727         /// confirmation count is provided in [`confirmations_required`].
728         ///
729         /// [`confirmations_required`]: ChannelDetails::confirmations_required
730         pub is_funding_locked: bool,
731         /// True if the channel is (a) confirmed and funding_locked messages have been exchanged, (b)
732         /// the peer is connected, and (c) the channel is not currently negotiating a shutdown.
733         ///
734         /// This is a strict superset of `is_funding_locked`.
735         pub is_usable: bool,
736         /// True if this channel is (or will be) publicly-announced.
737         pub is_public: bool,
738 }
739
740 /// If a payment fails to send, it can be in one of several states. This enum is returned as the
741 /// Err() type describing which state the payment is in, see the description of individual enum
742 /// states for more.
743 #[derive(Clone, Debug)]
744 pub enum PaymentSendFailure {
745         /// A parameter which was passed to send_payment was invalid, preventing us from attempting to
746         /// send the payment at all. No channel state has been changed or messages sent to peers, and
747         /// once you've changed the parameter at error, you can freely retry the payment in full.
748         ParameterError(APIError),
749         /// A parameter in a single path which was passed to send_payment was invalid, preventing us
750         /// from attempting to send the payment at all. No channel state has been changed or messages
751         /// sent to peers, and once you've changed the parameter at error, you can freely retry the
752         /// payment in full.
753         ///
754         /// The results here are ordered the same as the paths in the route object which was passed to
755         /// send_payment.
756         PathParameterError(Vec<Result<(), APIError>>),
757         /// All paths which were attempted failed to send, with no channel state change taking place.
758         /// You can freely retry the payment in full (though you probably want to do so over different
759         /// paths than the ones selected).
760         AllFailedRetrySafe(Vec<APIError>),
761         /// Some paths which were attempted failed to send, though possibly not all. At least some
762         /// paths have irrevocably committed to the HTLC and retrying the payment in full would result
763         /// in over-/re-payment.
764         ///
765         /// The results here are ordered the same as the paths in the route object which was passed to
766         /// send_payment, and any Errs which are not APIError::MonitorUpdateFailed can be safely
767         /// retried (though there is currently no API with which to do so).
768         ///
769         /// Any entries which contain Err(APIError::MonitorUpdateFailed) or Ok(()) MUST NOT be retried
770         /// as they will result in over-/re-payment. These HTLCs all either successfully sent (in the
771         /// case of Ok(())) or will send once channel_monitor_updated is called on the next-hop channel
772         /// with the latest update_id.
773         PartialFailure(Vec<Result<(), APIError>>),
774 }
775
776 macro_rules! handle_error {
777         ($self: ident, $internal: expr, $counterparty_node_id: expr) => {
778                 match $internal {
779                         Ok(msg) => Ok(msg),
780                         Err(MsgHandleErrInternal { err, shutdown_finish }) => {
781                                 #[cfg(debug_assertions)]
782                                 {
783                                         // In testing, ensure there are no deadlocks where the lock is already held upon
784                                         // entering the macro.
785                                         assert!($self.channel_state.try_lock().is_ok());
786                                 }
787
788                                 let mut msg_events = Vec::with_capacity(2);
789
790                                 if let Some((shutdown_res, update_option)) = shutdown_finish {
791                                         $self.finish_force_close_channel(shutdown_res);
792                                         if let Some(update) = update_option {
793                                                 msg_events.push(events::MessageSendEvent::BroadcastChannelUpdate {
794                                                         msg: update
795                                                 });
796                                         }
797                                 }
798
799                                 log_error!($self.logger, "{}", err.err);
800                                 if let msgs::ErrorAction::IgnoreError = err.action {
801                                 } else {
802                                         msg_events.push(events::MessageSendEvent::HandleError {
803                                                 node_id: $counterparty_node_id,
804                                                 action: err.action.clone()
805                                         });
806                                 }
807
808                                 if !msg_events.is_empty() {
809                                         $self.channel_state.lock().unwrap().pending_msg_events.append(&mut msg_events);
810                                 }
811
812                                 // Return error in case higher-API need one
813                                 Err(err)
814                         },
815                 }
816         }
817 }
818
819 /// Returns (boolean indicating if we should remove the Channel object from memory, a mapped error)
820 macro_rules! convert_chan_err {
821         ($self: ident, $err: expr, $short_to_id: expr, $channel: expr, $channel_id: expr) => {
822                 match $err {
823                         ChannelError::Ignore(msg) => {
824                                 (false, MsgHandleErrInternal::from_chan_no_close(ChannelError::Ignore(msg), $channel_id.clone()))
825                         },
826                         ChannelError::Close(msg) => {
827                                 log_error!($self.logger, "Closing channel {} due to close-required error: {}", log_bytes!($channel_id[..]), msg);
828                                 if let Some(short_id) = $channel.get_short_channel_id() {
829                                         $short_to_id.remove(&short_id);
830                                 }
831                                 let shutdown_res = $channel.force_shutdown(true);
832                                 (true, MsgHandleErrInternal::from_finish_shutdown(msg, *$channel_id, shutdown_res, $self.get_channel_update_for_broadcast(&$channel).ok()))
833                         },
834                         ChannelError::CloseDelayBroadcast(msg) => {
835                                 log_error!($self.logger, "Channel {} need to be shutdown but closing transactions not broadcast due to {}", log_bytes!($channel_id[..]), msg);
836                                 if let Some(short_id) = $channel.get_short_channel_id() {
837                                         $short_to_id.remove(&short_id);
838                                 }
839                                 let shutdown_res = $channel.force_shutdown(false);
840                                 (true, MsgHandleErrInternal::from_finish_shutdown(msg, *$channel_id, shutdown_res, $self.get_channel_update_for_broadcast(&$channel).ok()))
841                         }
842                 }
843         }
844 }
845
846 macro_rules! break_chan_entry {
847         ($self: ident, $res: expr, $channel_state: expr, $entry: expr) => {
848                 match $res {
849                         Ok(res) => res,
850                         Err(e) => {
851                                 let (drop, res) = convert_chan_err!($self, e, $channel_state.short_to_id, $entry.get_mut(), $entry.key());
852                                 if drop {
853                                         $entry.remove_entry();
854                                 }
855                                 break Err(res);
856                         }
857                 }
858         }
859 }
860
861 macro_rules! try_chan_entry {
862         ($self: ident, $res: expr, $channel_state: expr, $entry: expr) => {
863                 match $res {
864                         Ok(res) => res,
865                         Err(e) => {
866                                 let (drop, res) = convert_chan_err!($self, e, $channel_state.short_to_id, $entry.get_mut(), $entry.key());
867                                 if drop {
868                                         $entry.remove_entry();
869                                 }
870                                 return Err(res);
871                         }
872                 }
873         }
874 }
875
876 macro_rules! remove_channel {
877         ($channel_state: expr, $entry: expr) => {
878                 {
879                         let channel = $entry.remove_entry().1;
880                         if let Some(short_id) = channel.get_short_channel_id() {
881                                 $channel_state.short_to_id.remove(&short_id);
882                         }
883                         channel
884                 }
885         }
886 }
887
888 macro_rules! handle_monitor_err {
889         ($self: ident, $err: expr, $channel_state: expr, $entry: expr, $action_type: path, $resend_raa: expr, $resend_commitment: expr) => {
890                 handle_monitor_err!($self, $err, $channel_state, $entry, $action_type, $resend_raa, $resend_commitment, Vec::new(), Vec::new())
891         };
892         ($self: ident, $err: expr, $short_to_id: expr, $chan: expr, $action_type: path, $resend_raa: expr, $resend_commitment: expr, $failed_forwards: expr, $failed_fails: expr, $chan_id: expr) => {
893                 match $err {
894                         ChannelMonitorUpdateErr::PermanentFailure => {
895                                 log_error!($self.logger, "Closing channel {} due to monitor update ChannelMonitorUpdateErr::PermanentFailure", log_bytes!($chan_id[..]));
896                                 if let Some(short_id) = $chan.get_short_channel_id() {
897                                         $short_to_id.remove(&short_id);
898                                 }
899                                 // TODO: $failed_fails is dropped here, which will cause other channels to hit the
900                                 // chain in a confused state! We need to move them into the ChannelMonitor which
901                                 // will be responsible for failing backwards once things confirm on-chain.
902                                 // It's ok that we drop $failed_forwards here - at this point we'd rather they
903                                 // broadcast HTLC-Timeout and pay the associated fees to get their funds back than
904                                 // us bother trying to claim it just to forward on to another peer. If we're
905                                 // splitting hairs we'd prefer to claim payments that were to us, but we haven't
906                                 // given up the preimage yet, so might as well just wait until the payment is
907                                 // retried, avoiding the on-chain fees.
908                                 let res: Result<(), _> = Err(MsgHandleErrInternal::from_finish_shutdown("ChannelMonitor storage failure".to_owned(), *$chan_id,
909                                                 $chan.force_shutdown(true), $self.get_channel_update_for_broadcast(&$chan).ok() ));
910                                 (res, true)
911                         },
912                         ChannelMonitorUpdateErr::TemporaryFailure => {
913                                 log_info!($self.logger, "Disabling channel {} due to monitor update TemporaryFailure. On restore will send {} and process {} forwards and {} fails",
914                                                 log_bytes!($chan_id[..]),
915                                                 if $resend_commitment && $resend_raa {
916                                                                 match $action_type {
917                                                                         RAACommitmentOrder::CommitmentFirst => { "commitment then RAA" },
918                                                                         RAACommitmentOrder::RevokeAndACKFirst => { "RAA then commitment" },
919                                                                 }
920                                                         } else if $resend_commitment { "commitment" }
921                                                         else if $resend_raa { "RAA" }
922                                                         else { "nothing" },
923                                                 (&$failed_forwards as &Vec<(PendingHTLCInfo, u64)>).len(),
924                                                 (&$failed_fails as &Vec<(HTLCSource, PaymentHash, HTLCFailReason)>).len());
925                                 if !$resend_commitment {
926                                         debug_assert!($action_type == RAACommitmentOrder::RevokeAndACKFirst || !$resend_raa);
927                                 }
928                                 if !$resend_raa {
929                                         debug_assert!($action_type == RAACommitmentOrder::CommitmentFirst || !$resend_commitment);
930                                 }
931                                 $chan.monitor_update_failed($resend_raa, $resend_commitment, $failed_forwards, $failed_fails);
932                                 (Err(MsgHandleErrInternal::from_chan_no_close(ChannelError::Ignore("Failed to update ChannelMonitor".to_owned()), *$chan_id)), false)
933                         },
934                 }
935         };
936         ($self: ident, $err: expr, $channel_state: expr, $entry: expr, $action_type: path, $resend_raa: expr, $resend_commitment: expr, $failed_forwards: expr, $failed_fails: expr) => { {
937                 let (res, drop) = handle_monitor_err!($self, $err, $channel_state.short_to_id, $entry.get_mut(), $action_type, $resend_raa, $resend_commitment, $failed_forwards, $failed_fails, $entry.key());
938                 if drop {
939                         $entry.remove_entry();
940                 }
941                 res
942         } };
943 }
944
945 macro_rules! return_monitor_err {
946         ($self: ident, $err: expr, $channel_state: expr, $entry: expr, $action_type: path, $resend_raa: expr, $resend_commitment: expr) => {
947                 return handle_monitor_err!($self, $err, $channel_state, $entry, $action_type, $resend_raa, $resend_commitment);
948         };
949         ($self: ident, $err: expr, $channel_state: expr, $entry: expr, $action_type: path, $resend_raa: expr, $resend_commitment: expr, $failed_forwards: expr, $failed_fails: expr) => {
950                 return handle_monitor_err!($self, $err, $channel_state, $entry, $action_type, $resend_raa, $resend_commitment, $failed_forwards, $failed_fails);
951         }
952 }
953
954 // Does not break in case of TemporaryFailure!
955 macro_rules! maybe_break_monitor_err {
956         ($self: ident, $err: expr, $channel_state: expr, $entry: expr, $action_type: path, $resend_raa: expr, $resend_commitment: expr) => {
957                 match (handle_monitor_err!($self, $err, $channel_state, $entry, $action_type, $resend_raa, $resend_commitment), $err) {
958                         (e, ChannelMonitorUpdateErr::PermanentFailure) => {
959                                 break e;
960                         },
961                         (_, ChannelMonitorUpdateErr::TemporaryFailure) => { },
962                 }
963         }
964 }
965
966 macro_rules! handle_chan_restoration_locked {
967         ($self: ident, $channel_lock: expr, $channel_state: expr, $channel_entry: expr,
968          $raa: expr, $commitment_update: expr, $order: expr, $chanmon_update: expr,
969          $pending_forwards: expr, $funding_broadcastable: expr, $funding_locked: expr) => { {
970                 let mut htlc_forwards = None;
971                 let counterparty_node_id = $channel_entry.get().get_counterparty_node_id();
972
973                 let chanmon_update: Option<ChannelMonitorUpdate> = $chanmon_update; // Force type-checking to resolve
974                 let chanmon_update_is_none = chanmon_update.is_none();
975                 let res = loop {
976                         let forwards: Vec<(PendingHTLCInfo, u64)> = $pending_forwards; // Force type-checking to resolve
977                         if !forwards.is_empty() {
978                                 htlc_forwards = Some(($channel_entry.get().get_short_channel_id().expect("We can't have pending forwards before funding confirmation"),
979                                         $channel_entry.get().get_funding_txo().unwrap(), forwards));
980                         }
981
982                         if chanmon_update.is_some() {
983                                 // On reconnect, we, by definition, only resend a funding_locked if there have been
984                                 // no commitment updates, so the only channel monitor update which could also be
985                                 // associated with a funding_locked would be the funding_created/funding_signed
986                                 // monitor update. That monitor update failing implies that we won't send
987                                 // funding_locked until it's been updated, so we can't have a funding_locked and a
988                                 // monitor update here (so we don't bother to handle it correctly below).
989                                 assert!($funding_locked.is_none());
990                                 // A channel monitor update makes no sense without either a funding_locked or a
991                                 // commitment update to process after it. Since we can't have a funding_locked, we
992                                 // only bother to handle the monitor-update + commitment_update case below.
993                                 assert!($commitment_update.is_some());
994                         }
995
996                         if let Some(msg) = $funding_locked {
997                                 // Similar to the above, this implies that we're letting the funding_locked fly
998                                 // before it should be allowed to.
999                                 assert!(chanmon_update.is_none());
1000                                 $channel_state.pending_msg_events.push(events::MessageSendEvent::SendFundingLocked {
1001                                         node_id: counterparty_node_id,
1002                                         msg,
1003                                 });
1004                                 if let Some(announcement_sigs) = $self.get_announcement_sigs($channel_entry.get()) {
1005                                         $channel_state.pending_msg_events.push(events::MessageSendEvent::SendAnnouncementSignatures {
1006                                                 node_id: counterparty_node_id,
1007                                                 msg: announcement_sigs,
1008                                         });
1009                                 }
1010                                 $channel_state.short_to_id.insert($channel_entry.get().get_short_channel_id().unwrap(), $channel_entry.get().channel_id());
1011                         }
1012
1013                         let funding_broadcastable: Option<Transaction> = $funding_broadcastable; // Force type-checking to resolve
1014                         if let Some(monitor_update) = chanmon_update {
1015                                 // We only ever broadcast a funding transaction in response to a funding_signed
1016                                 // message and the resulting monitor update. Thus, on channel_reestablish
1017                                 // message handling we can't have a funding transaction to broadcast. When
1018                                 // processing a monitor update finishing resulting in a funding broadcast, we
1019                                 // cannot have a second monitor update, thus this case would indicate a bug.
1020                                 assert!(funding_broadcastable.is_none());
1021                                 // Given we were just reconnected or finished updating a channel monitor, the
1022                                 // only case where we can get a new ChannelMonitorUpdate would be if we also
1023                                 // have some commitment updates to send as well.
1024                                 assert!($commitment_update.is_some());
1025                                 if let Err(e) = $self.chain_monitor.update_channel($channel_entry.get().get_funding_txo().unwrap(), monitor_update) {
1026                                         // channel_reestablish doesn't guarantee the order it returns is sensical
1027                                         // for the messages it returns, but if we're setting what messages to
1028                                         // re-transmit on monitor update success, we need to make sure it is sane.
1029                                         let mut order = $order;
1030                                         if $raa.is_none() {
1031                                                 order = RAACommitmentOrder::CommitmentFirst;
1032                                         }
1033                                         break handle_monitor_err!($self, e, $channel_state, $channel_entry, order, $raa.is_some(), true);
1034                                 }
1035                         }
1036
1037                         macro_rules! handle_cs { () => {
1038                                 if let Some(update) = $commitment_update {
1039                                         $channel_state.pending_msg_events.push(events::MessageSendEvent::UpdateHTLCs {
1040                                                 node_id: counterparty_node_id,
1041                                                 updates: update,
1042                                         });
1043                                 }
1044                         } }
1045                         macro_rules! handle_raa { () => {
1046                                 if let Some(revoke_and_ack) = $raa {
1047                                         $channel_state.pending_msg_events.push(events::MessageSendEvent::SendRevokeAndACK {
1048                                                 node_id: counterparty_node_id,
1049                                                 msg: revoke_and_ack,
1050                                         });
1051                                 }
1052                         } }
1053                         match $order {
1054                                 RAACommitmentOrder::CommitmentFirst => {
1055                                         handle_cs!();
1056                                         handle_raa!();
1057                                 },
1058                                 RAACommitmentOrder::RevokeAndACKFirst => {
1059                                         handle_raa!();
1060                                         handle_cs!();
1061                                 },
1062                         }
1063                         if let Some(tx) = funding_broadcastable {
1064                                 log_info!($self.logger, "Broadcasting funding transaction with txid {}", tx.txid());
1065                                 $self.tx_broadcaster.broadcast_transaction(&tx);
1066                         }
1067                         break Ok(());
1068                 };
1069
1070                 if chanmon_update_is_none {
1071                         // If there was no ChannelMonitorUpdate, we should never generate an Err in the res loop
1072                         // above. Doing so would imply calling handle_err!() from channel_monitor_updated() which
1073                         // should *never* end up calling back to `chain_monitor.update_channel()`.
1074                         assert!(res.is_ok());
1075                 }
1076
1077                 (htlc_forwards, res, counterparty_node_id)
1078         } }
1079 }
1080
1081 macro_rules! post_handle_chan_restoration {
1082         ($self: ident, $locked_res: expr) => { {
1083                 let (htlc_forwards, res, counterparty_node_id) = $locked_res;
1084
1085                 let _ = handle_error!($self, res, counterparty_node_id);
1086
1087                 if let Some(forwards) = htlc_forwards {
1088                         $self.forward_htlcs(&mut [forwards][..]);
1089                 }
1090         } }
1091 }
1092
1093 impl<Signer: Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref> ChannelManager<Signer, M, T, K, F, L>
1094         where M::Target: chain::Watch<Signer>,
1095         T::Target: BroadcasterInterface,
1096         K::Target: KeysInterface<Signer = Signer>,
1097         F::Target: FeeEstimator,
1098         L::Target: Logger,
1099 {
1100         /// Constructs a new ChannelManager to hold several channels and route between them.
1101         ///
1102         /// This is the main "logic hub" for all channel-related actions, and implements
1103         /// ChannelMessageHandler.
1104         ///
1105         /// Non-proportional fees are fixed according to our risk using the provided fee estimator.
1106         ///
1107         /// panics if channel_value_satoshis is >= `MAX_FUNDING_SATOSHIS`!
1108         ///
1109         /// Users need to notify the new ChannelManager when a new block is connected or
1110         /// disconnected using its `block_connected` and `block_disconnected` methods, starting
1111         /// from after `params.latest_hash`.
1112         pub fn new(fee_est: F, chain_monitor: M, tx_broadcaster: T, logger: L, keys_manager: K, config: UserConfig, params: ChainParameters) -> Self {
1113                 let mut secp_ctx = Secp256k1::new();
1114                 secp_ctx.seeded_randomize(&keys_manager.get_secure_random_bytes());
1115
1116                 ChannelManager {
1117                         default_configuration: config.clone(),
1118                         genesis_hash: genesis_block(params.network).header.block_hash(),
1119                         fee_estimator: fee_est,
1120                         chain_monitor,
1121                         tx_broadcaster,
1122
1123                         best_block: RwLock::new(params.best_block),
1124
1125                         channel_state: Mutex::new(ChannelHolder{
1126                                 by_id: HashMap::new(),
1127                                 short_to_id: HashMap::new(),
1128                                 forward_htlcs: HashMap::new(),
1129                                 claimable_htlcs: HashMap::new(),
1130                                 pending_msg_events: Vec::new(),
1131                         }),
1132                         pending_inbound_payments: Mutex::new(HashMap::new()),
1133                         pending_outbound_payments: Mutex::new(HashSet::new()),
1134
1135                         our_network_key: keys_manager.get_node_secret(),
1136                         our_network_pubkey: PublicKey::from_secret_key(&secp_ctx, &keys_manager.get_node_secret()),
1137                         secp_ctx,
1138
1139                         last_node_announcement_serial: AtomicUsize::new(0),
1140                         highest_seen_timestamp: AtomicUsize::new(0),
1141
1142                         per_peer_state: RwLock::new(HashMap::new()),
1143
1144                         pending_events: Mutex::new(Vec::new()),
1145                         pending_background_events: Mutex::new(Vec::new()),
1146                         total_consistency_lock: RwLock::new(()),
1147                         persistence_notifier: PersistenceNotifier::new(),
1148
1149                         keys_manager,
1150
1151                         logger,
1152                 }
1153         }
1154
1155         /// Gets the current configuration applied to all new channels,  as
1156         pub fn get_current_default_configuration(&self) -> &UserConfig {
1157                 &self.default_configuration
1158         }
1159
1160         /// Creates a new outbound channel to the given remote node and with the given value.
1161         ///
1162         /// user_id will be provided back as user_channel_id in FundingGenerationReady events to allow
1163         /// tracking of which events correspond with which create_channel call. Note that the
1164         /// user_channel_id defaults to 0 for inbound channels, so you may wish to avoid using 0 for
1165         /// user_id here. user_id has no meaning inside of LDK, it is simply copied to events and
1166         /// otherwise ignored.
1167         ///
1168         /// If successful, will generate a SendOpenChannel message event, so you should probably poll
1169         /// PeerManager::process_events afterwards.
1170         ///
1171         /// Raises APIError::APIMisuseError when channel_value_satoshis > 2**24 or push_msat is
1172         /// greater than channel_value_satoshis * 1k or channel_value_satoshis is < 1000.
1173         ///
1174         /// Note that we do not check if you are currently connected to the given peer. If no
1175         /// connection is available, the outbound `open_channel` message may fail to send, resulting in
1176         /// the channel eventually being silently forgotten.
1177         pub fn create_channel(&self, their_network_key: PublicKey, channel_value_satoshis: u64, push_msat: u64, user_id: u64, override_config: Option<UserConfig>) -> Result<(), APIError> {
1178                 if channel_value_satoshis < 1000 {
1179                         return Err(APIError::APIMisuseError { err: format!("Channel value must be at least 1000 satoshis. It was {}", channel_value_satoshis) });
1180                 }
1181
1182                 let channel = {
1183                         let per_peer_state = self.per_peer_state.read().unwrap();
1184                         match per_peer_state.get(&their_network_key) {
1185                                 Some(peer_state) => {
1186                                         let peer_state = peer_state.lock().unwrap();
1187                                         let their_features = &peer_state.latest_features;
1188                                         let config = if override_config.is_some() { override_config.as_ref().unwrap() } else { &self.default_configuration };
1189                                         Channel::new_outbound(&self.fee_estimator, &self.keys_manager, their_network_key, their_features, channel_value_satoshis, push_msat, user_id, config)?
1190                                 },
1191                                 None => return Err(APIError::ChannelUnavailable { err: format!("Not connected to node: {}", their_network_key) }),
1192                         }
1193                 };
1194                 let res = channel.get_open_channel(self.genesis_hash.clone());
1195
1196                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
1197                 // We want to make sure the lock is actually acquired by PersistenceNotifierGuard.
1198                 debug_assert!(&self.total_consistency_lock.try_write().is_err());
1199
1200                 let mut channel_state = self.channel_state.lock().unwrap();
1201                 match channel_state.by_id.entry(channel.channel_id()) {
1202                         hash_map::Entry::Occupied(_) => {
1203                                 if cfg!(feature = "fuzztarget") {
1204                                         return Err(APIError::APIMisuseError { err: "Fuzzy bad RNG".to_owned() });
1205                                 } else {
1206                                         panic!("RNG is bad???");
1207                                 }
1208                         },
1209                         hash_map::Entry::Vacant(entry) => { entry.insert(channel); }
1210                 }
1211                 channel_state.pending_msg_events.push(events::MessageSendEvent::SendOpenChannel {
1212                         node_id: their_network_key,
1213                         msg: res,
1214                 });
1215                 Ok(())
1216         }
1217
1218         fn list_channels_with_filter<Fn: FnMut(&(&[u8; 32], &Channel<Signer>)) -> bool>(&self, f: Fn) -> Vec<ChannelDetails> {
1219                 let mut res = Vec::new();
1220                 {
1221                         let channel_state = self.channel_state.lock().unwrap();
1222                         res.reserve(channel_state.by_id.len());
1223                         for (channel_id, channel) in channel_state.by_id.iter().filter(f) {
1224                                 let (inbound_capacity_msat, outbound_capacity_msat) = channel.get_inbound_outbound_available_balance_msat();
1225                                 let (to_remote_reserve_satoshis, to_self_reserve_satoshis) =
1226                                         channel.get_holder_counterparty_selected_channel_reserve_satoshis();
1227                                 res.push(ChannelDetails {
1228                                         channel_id: (*channel_id).clone(),
1229                                         counterparty: ChannelCounterparty {
1230                                                 node_id: channel.get_counterparty_node_id(),
1231                                                 features: InitFeatures::empty(),
1232                                                 unspendable_punishment_reserve: to_remote_reserve_satoshis,
1233                                                 forwarding_info: channel.counterparty_forwarding_info(),
1234                                         },
1235                                         funding_txo: channel.get_funding_txo(),
1236                                         short_channel_id: channel.get_short_channel_id(),
1237                                         channel_value_satoshis: channel.get_value_satoshis(),
1238                                         unspendable_punishment_reserve: to_self_reserve_satoshis,
1239                                         inbound_capacity_msat,
1240                                         outbound_capacity_msat,
1241                                         user_id: channel.get_user_id(),
1242                                         confirmations_required: channel.minimum_depth(),
1243                                         force_close_spend_delay: channel.get_counterparty_selected_contest_delay(),
1244                                         is_outbound: channel.is_outbound(),
1245                                         is_funding_locked: channel.is_usable(),
1246                                         is_usable: channel.is_live(),
1247                                         is_public: channel.should_announce(),
1248                                 });
1249                         }
1250                 }
1251                 let per_peer_state = self.per_peer_state.read().unwrap();
1252                 for chan in res.iter_mut() {
1253                         if let Some(peer_state) = per_peer_state.get(&chan.counterparty.node_id) {
1254                                 chan.counterparty.features = peer_state.lock().unwrap().latest_features.clone();
1255                         }
1256                 }
1257                 res
1258         }
1259
1260         /// Gets the list of open channels, in random order. See ChannelDetail field documentation for
1261         /// more information.
1262         pub fn list_channels(&self) -> Vec<ChannelDetails> {
1263                 self.list_channels_with_filter(|_| true)
1264         }
1265
1266         /// Gets the list of usable channels, in random order. Useful as an argument to
1267         /// get_route to ensure non-announced channels are used.
1268         ///
1269         /// These are guaranteed to have their [`ChannelDetails::is_usable`] value set to true, see the
1270         /// documentation for [`ChannelDetails::is_usable`] for more info on exactly what the criteria
1271         /// are.
1272         pub fn list_usable_channels(&self) -> Vec<ChannelDetails> {
1273                 // Note we use is_live here instead of usable which leads to somewhat confused
1274                 // internal/external nomenclature, but that's ok cause that's probably what the user
1275                 // really wanted anyway.
1276                 self.list_channels_with_filter(|&(_, ref channel)| channel.is_live())
1277         }
1278
1279         /// Begins the process of closing a channel. After this call (plus some timeout), no new HTLCs
1280         /// will be accepted on the given channel, and after additional timeout/the closing of all
1281         /// pending HTLCs, the channel will be closed on chain.
1282         ///
1283         /// May generate a SendShutdown message event on success, which should be relayed.
1284         pub fn close_channel(&self, channel_id: &[u8; 32]) -> Result<(), APIError> {
1285                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
1286
1287                 let counterparty_node_id;
1288                 let mut failed_htlcs: Vec<(HTLCSource, PaymentHash)>;
1289                 let result: Result<(), _> = loop {
1290                         let mut channel_state_lock = self.channel_state.lock().unwrap();
1291                         let channel_state = &mut *channel_state_lock;
1292                         match channel_state.by_id.entry(channel_id.clone()) {
1293                                 hash_map::Entry::Occupied(mut chan_entry) => {
1294                                         counterparty_node_id = chan_entry.get().get_counterparty_node_id();
1295                                         let per_peer_state = self.per_peer_state.read().unwrap();
1296                                         let (shutdown_msg, monitor_update, htlcs) = match per_peer_state.get(&counterparty_node_id) {
1297                                                 Some(peer_state) => {
1298                                                         let peer_state = peer_state.lock().unwrap();
1299                                                         let their_features = &peer_state.latest_features;
1300                                                         chan_entry.get_mut().get_shutdown(&self.keys_manager, their_features)?
1301                                                 },
1302                                                 None => return Err(APIError::ChannelUnavailable { err: format!("Not connected to node: {}", counterparty_node_id) }),
1303                                         };
1304                                         failed_htlcs = htlcs;
1305
1306                                         // Update the monitor with the shutdown script if necessary.
1307                                         if let Some(monitor_update) = monitor_update {
1308                                                 if let Err(e) = self.chain_monitor.update_channel(chan_entry.get().get_funding_txo().unwrap(), monitor_update) {
1309                                                         let (result, is_permanent) =
1310                                                                 handle_monitor_err!(self, e, channel_state.short_to_id, chan_entry.get_mut(), RAACommitmentOrder::CommitmentFirst, false, false, Vec::new(), Vec::new(), chan_entry.key());
1311                                                         if is_permanent {
1312                                                                 remove_channel!(channel_state, chan_entry);
1313                                                                 break result;
1314                                                         }
1315                                                 }
1316                                         }
1317
1318                                         channel_state.pending_msg_events.push(events::MessageSendEvent::SendShutdown {
1319                                                 node_id: counterparty_node_id,
1320                                                 msg: shutdown_msg
1321                                         });
1322
1323                                         if chan_entry.get().is_shutdown() {
1324                                                 let channel = remove_channel!(channel_state, chan_entry);
1325                                                 if let Ok(channel_update) = self.get_channel_update_for_broadcast(&channel) {
1326                                                         channel_state.pending_msg_events.push(events::MessageSendEvent::BroadcastChannelUpdate {
1327                                                                 msg: channel_update
1328                                                         });
1329                                                 }
1330                                         }
1331                                         break Ok(());
1332                                 },
1333                                 hash_map::Entry::Vacant(_) => return Err(APIError::ChannelUnavailable{err: "No such channel".to_owned()})
1334                         }
1335                 };
1336
1337                 for htlc_source in failed_htlcs.drain(..) {
1338                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), htlc_source.0, &htlc_source.1, HTLCFailReason::Reason { failure_code: 0x4000 | 8, data: Vec::new() });
1339                 }
1340
1341                 let _ = handle_error!(self, result, counterparty_node_id);
1342                 Ok(())
1343         }
1344
1345         #[inline]
1346         fn finish_force_close_channel(&self, shutdown_res: ShutdownResult) {
1347                 let (monitor_update_option, mut failed_htlcs) = shutdown_res;
1348                 log_debug!(self.logger, "Finishing force-closure of channel with {} HTLCs to fail", failed_htlcs.len());
1349                 for htlc_source in failed_htlcs.drain(..) {
1350                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), htlc_source.0, &htlc_source.1, HTLCFailReason::Reason { failure_code: 0x4000 | 8, data: Vec::new() });
1351                 }
1352                 if let Some((funding_txo, monitor_update)) = monitor_update_option {
1353                         // There isn't anything we can do if we get an update failure - we're already
1354                         // force-closing. The monitor update on the required in-memory copy should broadcast
1355                         // the latest local state, which is the best we can do anyway. Thus, it is safe to
1356                         // ignore the result here.
1357                         let _ = self.chain_monitor.update_channel(funding_txo, monitor_update);
1358                 }
1359         }
1360
1361         fn force_close_channel_with_peer(&self, channel_id: &[u8; 32], peer_node_id: Option<&PublicKey>) -> Result<PublicKey, APIError> {
1362                 let mut chan = {
1363                         let mut channel_state_lock = self.channel_state.lock().unwrap();
1364                         let channel_state = &mut *channel_state_lock;
1365                         if let hash_map::Entry::Occupied(chan) = channel_state.by_id.entry(channel_id.clone()) {
1366                                 if let Some(node_id) = peer_node_id {
1367                                         if chan.get().get_counterparty_node_id() != *node_id {
1368                                                 return Err(APIError::ChannelUnavailable{err: "No such channel".to_owned()});
1369                                         }
1370                                 }
1371                                 if let Some(short_id) = chan.get().get_short_channel_id() {
1372                                         channel_state.short_to_id.remove(&short_id);
1373                                 }
1374                                 chan.remove_entry().1
1375                         } else {
1376                                 return Err(APIError::ChannelUnavailable{err: "No such channel".to_owned()});
1377                         }
1378                 };
1379                 log_error!(self.logger, "Force-closing channel {}", log_bytes!(channel_id[..]));
1380                 self.finish_force_close_channel(chan.force_shutdown(true));
1381                 if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
1382                         let mut channel_state = self.channel_state.lock().unwrap();
1383                         channel_state.pending_msg_events.push(events::MessageSendEvent::BroadcastChannelUpdate {
1384                                 msg: update
1385                         });
1386                 }
1387
1388                 Ok(chan.get_counterparty_node_id())
1389         }
1390
1391         /// Force closes a channel, immediately broadcasting the latest local commitment transaction to
1392         /// the chain and rejecting new HTLCs on the given channel. Fails if channel_id is unknown to the manager.
1393         pub fn force_close_channel(&self, channel_id: &[u8; 32]) -> Result<(), APIError> {
1394                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
1395                 match self.force_close_channel_with_peer(channel_id, None) {
1396                         Ok(counterparty_node_id) => {
1397                                 self.channel_state.lock().unwrap().pending_msg_events.push(
1398                                         events::MessageSendEvent::HandleError {
1399                                                 node_id: counterparty_node_id,
1400                                                 action: msgs::ErrorAction::SendErrorMessage {
1401                                                         msg: msgs::ErrorMessage { channel_id: *channel_id, data: "Channel force-closed".to_owned() }
1402                                                 },
1403                                         }
1404                                 );
1405                                 Ok(())
1406                         },
1407                         Err(e) => Err(e)
1408                 }
1409         }
1410
1411         /// Force close all channels, immediately broadcasting the latest local commitment transaction
1412         /// for each to the chain and rejecting new HTLCs on each.
1413         pub fn force_close_all_channels(&self) {
1414                 for chan in self.list_channels() {
1415                         let _ = self.force_close_channel(&chan.channel_id);
1416                 }
1417         }
1418
1419         fn decode_update_add_htlc_onion(&self, msg: &msgs::UpdateAddHTLC) -> (PendingHTLCStatus, MutexGuard<ChannelHolder<Signer>>) {
1420                 macro_rules! return_malformed_err {
1421                         ($msg: expr, $err_code: expr) => {
1422                                 {
1423                                         log_info!(self.logger, "Failed to accept/forward incoming HTLC: {}", $msg);
1424                                         return (PendingHTLCStatus::Fail(HTLCFailureMsg::Malformed(msgs::UpdateFailMalformedHTLC {
1425                                                 channel_id: msg.channel_id,
1426                                                 htlc_id: msg.htlc_id,
1427                                                 sha256_of_onion: Sha256::hash(&msg.onion_routing_packet.hop_data).into_inner(),
1428                                                 failure_code: $err_code,
1429                                         })), self.channel_state.lock().unwrap());
1430                                 }
1431                         }
1432                 }
1433
1434                 if let Err(_) = msg.onion_routing_packet.public_key {
1435                         return_malformed_err!("invalid ephemeral pubkey", 0x8000 | 0x4000 | 6);
1436                 }
1437
1438                 let shared_secret = {
1439                         let mut arr = [0; 32];
1440                         arr.copy_from_slice(&SharedSecret::new(&msg.onion_routing_packet.public_key.unwrap(), &self.our_network_key)[..]);
1441                         arr
1442                 };
1443                 let (rho, mu) = onion_utils::gen_rho_mu_from_shared_secret(&shared_secret);
1444
1445                 if msg.onion_routing_packet.version != 0 {
1446                         //TODO: Spec doesn't indicate if we should only hash hop_data here (and in other
1447                         //sha256_of_onion error data packets), or the entire onion_routing_packet. Either way,
1448                         //the hash doesn't really serve any purpose - in the case of hashing all data, the
1449                         //receiving node would have to brute force to figure out which version was put in the
1450                         //packet by the node that send us the message, in the case of hashing the hop_data, the
1451                         //node knows the HMAC matched, so they already know what is there...
1452                         return_malformed_err!("Unknown onion packet version", 0x8000 | 0x4000 | 4);
1453                 }
1454
1455                 let mut hmac = HmacEngine::<Sha256>::new(&mu);
1456                 hmac.input(&msg.onion_routing_packet.hop_data);
1457                 hmac.input(&msg.payment_hash.0[..]);
1458                 if !fixed_time_eq(&Hmac::from_engine(hmac).into_inner(), &msg.onion_routing_packet.hmac) {
1459                         return_malformed_err!("HMAC Check failed", 0x8000 | 0x4000 | 5);
1460                 }
1461
1462                 let mut channel_state = None;
1463                 macro_rules! return_err {
1464                         ($msg: expr, $err_code: expr, $data: expr) => {
1465                                 {
1466                                         log_info!(self.logger, "Failed to accept/forward incoming HTLC: {}", $msg);
1467                                         if channel_state.is_none() {
1468                                                 channel_state = Some(self.channel_state.lock().unwrap());
1469                                         }
1470                                         return (PendingHTLCStatus::Fail(HTLCFailureMsg::Relay(msgs::UpdateFailHTLC {
1471                                                 channel_id: msg.channel_id,
1472                                                 htlc_id: msg.htlc_id,
1473                                                 reason: onion_utils::build_first_hop_failure_packet(&shared_secret, $err_code, $data),
1474                                         })), channel_state.unwrap());
1475                                 }
1476                         }
1477                 }
1478
1479                 let mut chacha = ChaCha20::new(&rho, &[0u8; 8]);
1480                 let mut chacha_stream = ChaChaReader { chacha: &mut chacha, read: Cursor::new(&msg.onion_routing_packet.hop_data[..]) };
1481                 let (next_hop_data, next_hop_hmac) = {
1482                         match msgs::OnionHopData::read(&mut chacha_stream) {
1483                                 Err(err) => {
1484                                         let error_code = match err {
1485                                                 msgs::DecodeError::UnknownVersion => 0x4000 | 1, // unknown realm byte
1486                                                 msgs::DecodeError::UnknownRequiredFeature|
1487                                                 msgs::DecodeError::InvalidValue|
1488                                                 msgs::DecodeError::ShortRead => 0x4000 | 22, // invalid_onion_payload
1489                                                 _ => 0x2000 | 2, // Should never happen
1490                                         };
1491                                         return_err!("Unable to decode our hop data", error_code, &[0;0]);
1492                                 },
1493                                 Ok(msg) => {
1494                                         let mut hmac = [0; 32];
1495                                         if let Err(_) = chacha_stream.read_exact(&mut hmac[..]) {
1496                                                 return_err!("Unable to decode hop data", 0x4000 | 22, &[0;0]);
1497                                         }
1498                                         (msg, hmac)
1499                                 },
1500                         }
1501                 };
1502
1503                 let pending_forward_info = if next_hop_hmac == [0; 32] {
1504                         #[cfg(test)]
1505                         {
1506                                 // In tests, make sure that the initial onion pcket data is, at least, non-0.
1507                                 // We could do some fancy randomness test here, but, ehh, whatever.
1508                                 // This checks for the issue where you can calculate the path length given the
1509                                 // onion data as all the path entries that the originator sent will be here
1510                                 // as-is (and were originally 0s).
1511                                 // Of course reverse path calculation is still pretty easy given naive routing
1512                                 // algorithms, but this fixes the most-obvious case.
1513                                 let mut next_bytes = [0; 32];
1514                                 chacha_stream.read_exact(&mut next_bytes).unwrap();
1515                                 assert_ne!(next_bytes[..], [0; 32][..]);
1516                                 chacha_stream.read_exact(&mut next_bytes).unwrap();
1517                                 assert_ne!(next_bytes[..], [0; 32][..]);
1518                         }
1519
1520                         // OUR PAYMENT!
1521                         // final_expiry_too_soon
1522                         // We have to have some headroom to broadcast on chain if we have the preimage, so make sure
1523                         // we have at least HTLC_FAIL_BACK_BUFFER blocks to go.
1524                         // Also, ensure that, in the case of an unknown preimage for the received payment hash, our
1525                         // payment logic has enough time to fail the HTLC backward before our onchain logic triggers a
1526                         // channel closure (see HTLC_FAIL_BACK_BUFFER rationale).
1527                         if (msg.cltv_expiry as u64) <= self.best_block.read().unwrap().height() as u64 + HTLC_FAIL_BACK_BUFFER as u64 + 1 {
1528                                 return_err!("The final CLTV expiry is too soon to handle", 17, &[0;0]);
1529                         }
1530                         // final_incorrect_htlc_amount
1531                         if next_hop_data.amt_to_forward > msg.amount_msat {
1532                                 return_err!("Upstream node sent less than we were supposed to receive in payment", 19, &byte_utils::be64_to_array(msg.amount_msat));
1533                         }
1534                         // final_incorrect_cltv_expiry
1535                         if next_hop_data.outgoing_cltv_value != msg.cltv_expiry {
1536                                 return_err!("Upstream node set CLTV to the wrong value", 18, &byte_utils::be32_to_array(msg.cltv_expiry));
1537                         }
1538
1539                         let routing = match next_hop_data.format {
1540                                 msgs::OnionHopDataFormat::Legacy { .. } => return_err!("We require payment_secrets", 0x4000|0x2000|3, &[0;0]),
1541                                 msgs::OnionHopDataFormat::NonFinalNode { .. } => return_err!("Got non final data with an HMAC of 0", 0x4000 | 22, &[0;0]),
1542                                 msgs::OnionHopDataFormat::FinalNode { payment_data, keysend_preimage } => {
1543                                         if payment_data.is_some() && keysend_preimage.is_some() {
1544                                                 return_err!("We don't support MPP keysend payments", 0x4000|22, &[0;0]);
1545                                         } else if let Some(data) = payment_data {
1546                                                 PendingHTLCRouting::Receive {
1547                                                         payment_data: data,
1548                                                         incoming_cltv_expiry: msg.cltv_expiry,
1549                                                 }
1550                                         } else if let Some(payment_preimage) = keysend_preimage {
1551                                                 // We need to check that the sender knows the keysend preimage before processing this
1552                                                 // payment further. Otherwise, an intermediary routing hop forwarding non-keysend-HTLC X
1553                                                 // could discover the final destination of X, by probing the adjacent nodes on the route
1554                                                 // with a keysend payment of identical payment hash to X and observing the processing
1555                                                 // time discrepancies due to a hash collision with X.
1556                                                 let hashed_preimage = PaymentHash(Sha256::hash(&payment_preimage.0).into_inner());
1557                                                 if hashed_preimage != msg.payment_hash {
1558                                                         return_err!("Payment preimage didn't match payment hash", 0x4000|22, &[0;0]);
1559                                                 }
1560
1561                                                 PendingHTLCRouting::ReceiveKeysend {
1562                                                         payment_preimage,
1563                                                         incoming_cltv_expiry: msg.cltv_expiry,
1564                                                 }
1565                                         } else {
1566                                                 return_err!("We require payment_secrets", 0x4000|0x2000|3, &[0;0]);
1567                                         }
1568                                 },
1569                         };
1570
1571                         // Note that we could obviously respond immediately with an update_fulfill_htlc
1572                         // message, however that would leak that we are the recipient of this payment, so
1573                         // instead we stay symmetric with the forwarding case, only responding (after a
1574                         // delay) once they've send us a commitment_signed!
1575
1576                         PendingHTLCStatus::Forward(PendingHTLCInfo {
1577                                 routing,
1578                                 payment_hash: msg.payment_hash.clone(),
1579                                 incoming_shared_secret: shared_secret,
1580                                 amt_to_forward: next_hop_data.amt_to_forward,
1581                                 outgoing_cltv_value: next_hop_data.outgoing_cltv_value,
1582                         })
1583                 } else {
1584                         let mut new_packet_data = [0; 20*65];
1585                         let read_pos = chacha_stream.read(&mut new_packet_data).unwrap();
1586                         #[cfg(debug_assertions)]
1587                         {
1588                                 // Check two things:
1589                                 // a) that the behavior of our stream here will return Ok(0) even if the TLV
1590                                 //    read above emptied out our buffer and the unwrap() wont needlessly panic
1591                                 // b) that we didn't somehow magically end up with extra data.
1592                                 let mut t = [0; 1];
1593                                 debug_assert!(chacha_stream.read(&mut t).unwrap() == 0);
1594                         }
1595                         // Once we've emptied the set of bytes our peer gave us, encrypt 0 bytes until we
1596                         // fill the onion hop data we'll forward to our next-hop peer.
1597                         chacha_stream.chacha.process_in_place(&mut new_packet_data[read_pos..]);
1598
1599                         let mut new_pubkey = msg.onion_routing_packet.public_key.unwrap();
1600
1601                         let blinding_factor = {
1602                                 let mut sha = Sha256::engine();
1603                                 sha.input(&new_pubkey.serialize()[..]);
1604                                 sha.input(&shared_secret);
1605                                 Sha256::from_engine(sha).into_inner()
1606                         };
1607
1608                         let public_key = if let Err(e) = new_pubkey.mul_assign(&self.secp_ctx, &blinding_factor[..]) {
1609                                 Err(e)
1610                         } else { Ok(new_pubkey) };
1611
1612                         let outgoing_packet = msgs::OnionPacket {
1613                                 version: 0,
1614                                 public_key,
1615                                 hop_data: new_packet_data,
1616                                 hmac: next_hop_hmac.clone(),
1617                         };
1618
1619                         let short_channel_id = match next_hop_data.format {
1620                                 msgs::OnionHopDataFormat::Legacy { short_channel_id } => short_channel_id,
1621                                 msgs::OnionHopDataFormat::NonFinalNode { short_channel_id } => short_channel_id,
1622                                 msgs::OnionHopDataFormat::FinalNode { .. } => {
1623                                         return_err!("Final Node OnionHopData provided for us as an intermediary node", 0x4000 | 22, &[0;0]);
1624                                 },
1625                         };
1626
1627                         PendingHTLCStatus::Forward(PendingHTLCInfo {
1628                                 routing: PendingHTLCRouting::Forward {
1629                                         onion_packet: outgoing_packet,
1630                                         short_channel_id,
1631                                 },
1632                                 payment_hash: msg.payment_hash.clone(),
1633                                 incoming_shared_secret: shared_secret,
1634                                 amt_to_forward: next_hop_data.amt_to_forward,
1635                                 outgoing_cltv_value: next_hop_data.outgoing_cltv_value,
1636                         })
1637                 };
1638
1639                 channel_state = Some(self.channel_state.lock().unwrap());
1640                 if let &PendingHTLCStatus::Forward(PendingHTLCInfo { ref routing, ref amt_to_forward, ref outgoing_cltv_value, .. }) = &pending_forward_info {
1641                         // If short_channel_id is 0 here, we'll reject the HTLC as there cannot be a channel
1642                         // with a short_channel_id of 0. This is important as various things later assume
1643                         // short_channel_id is non-0 in any ::Forward.
1644                         if let &PendingHTLCRouting::Forward { ref short_channel_id, .. } = routing {
1645                                 let id_option = channel_state.as_ref().unwrap().short_to_id.get(&short_channel_id).cloned();
1646                                 if let Some((err, code, chan_update)) = loop {
1647                                         let forwarding_id = match id_option {
1648                                                 None => { // unknown_next_peer
1649                                                         break Some(("Don't have available channel for forwarding as requested.", 0x4000 | 10, None));
1650                                                 },
1651                                                 Some(id) => id.clone(),
1652                                         };
1653
1654                                         let chan = channel_state.as_mut().unwrap().by_id.get_mut(&forwarding_id).unwrap();
1655
1656                                         if !chan.should_announce() && !self.default_configuration.accept_forwards_to_priv_channels {
1657                                                 // Note that the behavior here should be identical to the above block - we
1658                                                 // should NOT reveal the existence or non-existence of a private channel if
1659                                                 // we don't allow forwards outbound over them.
1660                                                 break Some(("Don't have available channel for forwarding as requested.", 0x4000 | 10, None));
1661                                         }
1662
1663                                         // Note that we could technically not return an error yet here and just hope
1664                                         // that the connection is reestablished or monitor updated by the time we get
1665                                         // around to doing the actual forward, but better to fail early if we can and
1666                                         // hopefully an attacker trying to path-trace payments cannot make this occur
1667                                         // on a small/per-node/per-channel scale.
1668                                         if !chan.is_live() { // channel_disabled
1669                                                 break Some(("Forwarding channel is not in a ready state.", 0x1000 | 20, Some(self.get_channel_update_for_unicast(chan).unwrap())));
1670                                         }
1671                                         if *amt_to_forward < chan.get_counterparty_htlc_minimum_msat() { // amount_below_minimum
1672                                                 break Some(("HTLC amount was below the htlc_minimum_msat", 0x1000 | 11, Some(self.get_channel_update_for_unicast(chan).unwrap())));
1673                                         }
1674                                         let fee = amt_to_forward.checked_mul(chan.get_fee_proportional_millionths() as u64)
1675                                                 .and_then(|prop_fee| { (prop_fee / 1000000)
1676                                                 .checked_add(chan.get_outbound_forwarding_fee_base_msat() as u64) });
1677                                         if fee.is_none() || msg.amount_msat < fee.unwrap() || (msg.amount_msat - fee.unwrap()) < *amt_to_forward { // fee_insufficient
1678                                                 break Some(("Prior hop has deviated from specified fees parameters or origin node has obsolete ones", 0x1000 | 12, Some(self.get_channel_update_for_unicast(chan).unwrap())));
1679                                         }
1680                                         if (msg.cltv_expiry as u64) < (*outgoing_cltv_value) as u64 + chan.get_cltv_expiry_delta() as u64 { // incorrect_cltv_expiry
1681                                                 break Some(("Forwarding node has tampered with the intended HTLC values or origin node has an obsolete cltv_expiry_delta", 0x1000 | 13, Some(self.get_channel_update_for_unicast(chan).unwrap())));
1682                                         }
1683                                         let cur_height = self.best_block.read().unwrap().height() + 1;
1684                                         // Theoretically, channel counterparty shouldn't send us a HTLC expiring now, but we want to be robust wrt to counterparty
1685                                         // packet sanitization (see HTLC_FAIL_BACK_BUFFER rational)
1686                                         if msg.cltv_expiry <= cur_height + HTLC_FAIL_BACK_BUFFER as u32 { // expiry_too_soon
1687                                                 break Some(("CLTV expiry is too close", 0x1000 | 14, Some(self.get_channel_update_for_unicast(chan).unwrap())));
1688                                         }
1689                                         if msg.cltv_expiry > cur_height + CLTV_FAR_FAR_AWAY as u32 { // expiry_too_far
1690                                                 break Some(("CLTV expiry is too far in the future", 21, None));
1691                                         }
1692                                         // In theory, we would be safe against unintentional channel-closure, if we only required a margin of LATENCY_GRACE_PERIOD_BLOCKS.
1693                                         // But, to be safe against policy reception, we use a longer delay.
1694                                         if (*outgoing_cltv_value) as u64 <= (cur_height + HTLC_FAIL_BACK_BUFFER) as u64 {
1695                                                 break Some(("Outgoing CLTV value is too soon", 0x1000 | 14, Some(self.get_channel_update_for_unicast(chan).unwrap())));
1696                                         }
1697
1698                                         break None;
1699                                 }
1700                                 {
1701                                         let mut res = Vec::with_capacity(8 + 128);
1702                                         if let Some(chan_update) = chan_update {
1703                                                 if code == 0x1000 | 11 || code == 0x1000 | 12 {
1704                                                         res.extend_from_slice(&byte_utils::be64_to_array(msg.amount_msat));
1705                                                 }
1706                                                 else if code == 0x1000 | 13 {
1707                                                         res.extend_from_slice(&byte_utils::be32_to_array(msg.cltv_expiry));
1708                                                 }
1709                                                 else if code == 0x1000 | 20 {
1710                                                         // TODO: underspecified, follow https://github.com/lightningnetwork/lightning-rfc/issues/791
1711                                                         res.extend_from_slice(&byte_utils::be16_to_array(0));
1712                                                 }
1713                                                 res.extend_from_slice(&chan_update.encode_with_len()[..]);
1714                                         }
1715                                         return_err!(err, code, &res[..]);
1716                                 }
1717                         }
1718                 }
1719
1720                 (pending_forward_info, channel_state.unwrap())
1721         }
1722
1723         /// Gets the current channel_update for the given channel. This first checks if the channel is
1724         /// public, and thus should be called whenever the result is going to be passed out in a
1725         /// [`MessageSendEvent::BroadcastChannelUpdate`] event.
1726         ///
1727         /// May be called with channel_state already locked!
1728         fn get_channel_update_for_broadcast(&self, chan: &Channel<Signer>) -> Result<msgs::ChannelUpdate, LightningError> {
1729                 if !chan.should_announce() {
1730                         return Err(LightningError {
1731                                 err: "Cannot broadcast a channel_update for a private channel".to_owned(),
1732                                 action: msgs::ErrorAction::IgnoreError
1733                         });
1734                 }
1735                 log_trace!(self.logger, "Attempting to generate broadcast channel update for channel {}", log_bytes!(chan.channel_id()));
1736                 self.get_channel_update_for_unicast(chan)
1737         }
1738
1739         /// Gets the current channel_update for the given channel. This does not check if the channel
1740         /// is public (only returning an Err if the channel does not yet have an assigned short_id),
1741         /// and thus MUST NOT be called unless the recipient of the resulting message has already
1742         /// provided evidence that they know about the existence of the channel.
1743         /// May be called with channel_state already locked!
1744         fn get_channel_update_for_unicast(&self, chan: &Channel<Signer>) -> Result<msgs::ChannelUpdate, LightningError> {
1745                 log_trace!(self.logger, "Attempting to generate channel update for channel {}", log_bytes!(chan.channel_id()));
1746                 let short_channel_id = match chan.get_short_channel_id() {
1747                         None => return Err(LightningError{err: "Channel not yet established".to_owned(), action: msgs::ErrorAction::IgnoreError}),
1748                         Some(id) => id,
1749                 };
1750
1751                 let were_node_one = PublicKey::from_secret_key(&self.secp_ctx, &self.our_network_key).serialize()[..] < chan.get_counterparty_node_id().serialize()[..];
1752
1753                 let unsigned = msgs::UnsignedChannelUpdate {
1754                         chain_hash: self.genesis_hash,
1755                         short_channel_id,
1756                         timestamp: chan.get_update_time_counter(),
1757                         flags: (!were_node_one) as u8 | ((!chan.is_live() as u8) << 1),
1758                         cltv_expiry_delta: chan.get_cltv_expiry_delta(),
1759                         htlc_minimum_msat: chan.get_counterparty_htlc_minimum_msat(),
1760                         htlc_maximum_msat: OptionalField::Present(chan.get_announced_htlc_max_msat()),
1761                         fee_base_msat: chan.get_outbound_forwarding_fee_base_msat(),
1762                         fee_proportional_millionths: chan.get_fee_proportional_millionths(),
1763                         excess_data: Vec::new(),
1764                 };
1765
1766                 let msg_hash = Sha256dHash::hash(&unsigned.encode()[..]);
1767                 let sig = self.secp_ctx.sign(&hash_to_message!(&msg_hash[..]), &self.our_network_key);
1768
1769                 Ok(msgs::ChannelUpdate {
1770                         signature: sig,
1771                         contents: unsigned
1772                 })
1773         }
1774
1775         // Only public for testing, this should otherwise never be called direcly
1776         pub(crate) fn send_payment_along_path(&self, path: &Vec<RouteHop>, payment_hash: &PaymentHash, payment_secret: &Option<PaymentSecret>, total_value: u64, cur_height: u32, keysend_preimage: &Option<PaymentPreimage>) -> Result<(), APIError> {
1777                 log_trace!(self.logger, "Attempting to send payment for path with next hop {}", path.first().unwrap().short_channel_id);
1778                 let prng_seed = self.keys_manager.get_secure_random_bytes();
1779                 let session_priv_bytes = self.keys_manager.get_secure_random_bytes();
1780                 let session_priv = SecretKey::from_slice(&session_priv_bytes[..]).expect("RNG is busted");
1781
1782                 let onion_keys = onion_utils::construct_onion_keys(&self.secp_ctx, &path, &session_priv)
1783                         .map_err(|_| APIError::RouteError{err: "Pubkey along hop was maliciously selected"})?;
1784                 let (onion_payloads, htlc_msat, htlc_cltv) = onion_utils::build_onion_payloads(path, total_value, payment_secret, cur_height, keysend_preimage)?;
1785                 if onion_utils::route_size_insane(&onion_payloads) {
1786                         return Err(APIError::RouteError{err: "Route size too large considering onion data"});
1787                 }
1788                 let onion_packet = onion_utils::construct_onion_packet(onion_payloads, onion_keys, prng_seed, payment_hash);
1789
1790                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
1791                 assert!(self.pending_outbound_payments.lock().unwrap().insert(session_priv_bytes));
1792
1793                 let err: Result<(), _> = loop {
1794                         let mut channel_lock = self.channel_state.lock().unwrap();
1795                         let id = match channel_lock.short_to_id.get(&path.first().unwrap().short_channel_id) {
1796                                 None => return Err(APIError::ChannelUnavailable{err: "No channel available with first hop!".to_owned()}),
1797                                 Some(id) => id.clone(),
1798                         };
1799
1800                         let channel_state = &mut *channel_lock;
1801                         if let hash_map::Entry::Occupied(mut chan) = channel_state.by_id.entry(id) {
1802                                 match {
1803                                         if chan.get().get_counterparty_node_id() != path.first().unwrap().pubkey {
1804                                                 return Err(APIError::RouteError{err: "Node ID mismatch on first hop!"});
1805                                         }
1806                                         if !chan.get().is_live() {
1807                                                 return Err(APIError::ChannelUnavailable{err: "Peer for first hop currently disconnected/pending monitor update!".to_owned()});
1808                                         }
1809                                         break_chan_entry!(self, chan.get_mut().send_htlc_and_commit(htlc_msat, payment_hash.clone(), htlc_cltv, HTLCSource::OutboundRoute {
1810                                                 path: path.clone(),
1811                                                 session_priv: session_priv.clone(),
1812                                                 first_hop_htlc_msat: htlc_msat,
1813                                         }, onion_packet, &self.logger), channel_state, chan)
1814                                 } {
1815                                         Some((update_add, commitment_signed, monitor_update)) => {
1816                                                 if let Err(e) = self.chain_monitor.update_channel(chan.get().get_funding_txo().unwrap(), monitor_update) {
1817                                                         maybe_break_monitor_err!(self, e, channel_state, chan, RAACommitmentOrder::CommitmentFirst, false, true);
1818                                                         // Note that MonitorUpdateFailed here indicates (per function docs)
1819                                                         // that we will resend the commitment update once monitor updating
1820                                                         // is restored. Therefore, we must return an error indicating that
1821                                                         // it is unsafe to retry the payment wholesale, which we do in the
1822                                                         // send_payment check for MonitorUpdateFailed, below.
1823                                                         return Err(APIError::MonitorUpdateFailed);
1824                                                 }
1825
1826                                                 log_debug!(self.logger, "Sending payment along path resulted in a commitment_signed for channel {}", log_bytes!(chan.get().channel_id()));
1827                                                 channel_state.pending_msg_events.push(events::MessageSendEvent::UpdateHTLCs {
1828                                                         node_id: path.first().unwrap().pubkey,
1829                                                         updates: msgs::CommitmentUpdate {
1830                                                                 update_add_htlcs: vec![update_add],
1831                                                                 update_fulfill_htlcs: Vec::new(),
1832                                                                 update_fail_htlcs: Vec::new(),
1833                                                                 update_fail_malformed_htlcs: Vec::new(),
1834                                                                 update_fee: None,
1835                                                                 commitment_signed,
1836                                                         },
1837                                                 });
1838                                         },
1839                                         None => {},
1840                                 }
1841                         } else { unreachable!(); }
1842                         return Ok(());
1843                 };
1844
1845                 match handle_error!(self, err, path.first().unwrap().pubkey) {
1846                         Ok(_) => unreachable!(),
1847                         Err(e) => {
1848                                 Err(APIError::ChannelUnavailable { err: e.err })
1849                         },
1850                 }
1851         }
1852
1853         /// Sends a payment along a given route.
1854         ///
1855         /// Value parameters are provided via the last hop in route, see documentation for RouteHop
1856         /// fields for more info.
1857         ///
1858         /// Note that if the payment_hash already exists elsewhere (eg you're sending a duplicative
1859         /// payment), we don't do anything to stop you! We always try to ensure that if the provided
1860         /// next hop knows the preimage to payment_hash they can claim an additional amount as
1861         /// specified in the last hop in the route! Thus, you should probably do your own
1862         /// payment_preimage tracking (which you should already be doing as they represent "proof of
1863         /// payment") and prevent double-sends yourself.
1864         ///
1865         /// May generate SendHTLCs message(s) event on success, which should be relayed.
1866         ///
1867         /// Each path may have a different return value, and PaymentSendValue may return a Vec with
1868         /// each entry matching the corresponding-index entry in the route paths, see
1869         /// PaymentSendFailure for more info.
1870         ///
1871         /// In general, a path may raise:
1872         ///  * APIError::RouteError when an invalid route or forwarding parameter (cltv_delta, fee,
1873         ///    node public key) is specified.
1874         ///  * APIError::ChannelUnavailable if the next-hop channel is not available for updates
1875         ///    (including due to previous monitor update failure or new permanent monitor update
1876         ///    failure).
1877         ///  * APIError::MonitorUpdateFailed if a new monitor update failure prevented sending the
1878         ///    relevant updates.
1879         ///
1880         /// Note that depending on the type of the PaymentSendFailure the HTLC may have been
1881         /// irrevocably committed to on our end. In such a case, do NOT retry the payment with a
1882         /// different route unless you intend to pay twice!
1883         ///
1884         /// payment_secret is unrelated to payment_hash (or PaymentPreimage) and exists to authenticate
1885         /// the sender to the recipient and prevent payment-probing (deanonymization) attacks. For
1886         /// newer nodes, it will be provided to you in the invoice. If you do not have one, the Route
1887         /// must not contain multiple paths as multi-path payments require a recipient-provided
1888         /// payment_secret.
1889         /// If a payment_secret *is* provided, we assume that the invoice had the payment_secret feature
1890         /// bit set (either as required or as available). If multiple paths are present in the Route,
1891         /// we assume the invoice had the basic_mpp feature set.
1892         pub fn send_payment(&self, route: &Route, payment_hash: PaymentHash, payment_secret: &Option<PaymentSecret>) -> Result<(), PaymentSendFailure> {
1893                 self.send_payment_internal(route, payment_hash, payment_secret, None)
1894         }
1895
1896         fn send_payment_internal(&self, route: &Route, payment_hash: PaymentHash, payment_secret: &Option<PaymentSecret>, keysend_preimage: Option<PaymentPreimage>) -> Result<(), PaymentSendFailure> {
1897                 if route.paths.len() < 1 {
1898                         return Err(PaymentSendFailure::ParameterError(APIError::RouteError{err: "There must be at least one path to send over"}));
1899                 }
1900                 if route.paths.len() > 10 {
1901                         // This limit is completely arbitrary - there aren't any real fundamental path-count
1902                         // limits. After we support retrying individual paths we should likely bump this, but
1903                         // for now more than 10 paths likely carries too much one-path failure.
1904                         return Err(PaymentSendFailure::ParameterError(APIError::RouteError{err: "Sending over more than 10 paths is not currently supported"}));
1905                 }
1906                 if payment_secret.is_none() && route.paths.len() > 1 {
1907                         return Err(PaymentSendFailure::ParameterError(APIError::APIMisuseError{err: "Payment secret is required for multi-path payments".to_string()}));
1908                 }
1909                 let mut total_value = 0;
1910                 let our_node_id = self.get_our_node_id();
1911                 let mut path_errs = Vec::with_capacity(route.paths.len());
1912                 'path_check: for path in route.paths.iter() {
1913                         if path.len() < 1 || path.len() > 20 {
1914                                 path_errs.push(Err(APIError::RouteError{err: "Path didn't go anywhere/had bogus size"}));
1915                                 continue 'path_check;
1916                         }
1917                         for (idx, hop) in path.iter().enumerate() {
1918                                 if idx != path.len() - 1 && hop.pubkey == our_node_id {
1919                                         path_errs.push(Err(APIError::RouteError{err: "Path went through us but wasn't a simple rebalance loop to us"}));
1920                                         continue 'path_check;
1921                                 }
1922                         }
1923                         total_value += path.last().unwrap().fee_msat;
1924                         path_errs.push(Ok(()));
1925                 }
1926                 if path_errs.iter().any(|e| e.is_err()) {
1927                         return Err(PaymentSendFailure::PathParameterError(path_errs));
1928                 }
1929
1930                 let cur_height = self.best_block.read().unwrap().height() + 1;
1931                 let mut results = Vec::new();
1932                 for path in route.paths.iter() {
1933                         results.push(self.send_payment_along_path(&path, &payment_hash, payment_secret, total_value, cur_height, &keysend_preimage));
1934                 }
1935                 let mut has_ok = false;
1936                 let mut has_err = false;
1937                 for res in results.iter() {
1938                         if res.is_ok() { has_ok = true; }
1939                         if res.is_err() { has_err = true; }
1940                         if let &Err(APIError::MonitorUpdateFailed) = res {
1941                                 // MonitorUpdateFailed is inherently unsafe to retry, so we call it a
1942                                 // PartialFailure.
1943                                 has_err = true;
1944                                 has_ok = true;
1945                                 break;
1946                         }
1947                 }
1948                 if has_err && has_ok {
1949                         Err(PaymentSendFailure::PartialFailure(results))
1950                 } else if has_err {
1951                         Err(PaymentSendFailure::AllFailedRetrySafe(results.drain(..).map(|r| r.unwrap_err()).collect()))
1952                 } else {
1953                         Ok(())
1954                 }
1955         }
1956
1957         /// Send a spontaneous payment, which is a payment that does not require the recipient to have
1958         /// generated an invoice. Optionally, you may specify the preimage. If you do choose to specify
1959         /// the preimage, it must be a cryptographically secure random value that no intermediate node
1960         /// would be able to guess -- otherwise, an intermediate node may claim the payment and it will
1961         /// never reach the recipient.
1962         ///
1963         /// See [`send_payment`] documentation for more details on the return value of this function.
1964         ///
1965         /// Similar to regular payments, you MUST NOT reuse a `payment_preimage` value. See
1966         /// [`send_payment`] for more information about the risks of duplicate preimage usage.
1967         ///
1968         /// Note that `route` must have exactly one path.
1969         ///
1970         /// [`send_payment`]: Self::send_payment
1971         pub fn send_spontaneous_payment(&self, route: &Route, payment_preimage: Option<PaymentPreimage>) -> Result<PaymentHash, PaymentSendFailure> {
1972                 let preimage = match payment_preimage {
1973                         Some(p) => p,
1974                         None => PaymentPreimage(self.keys_manager.get_secure_random_bytes()),
1975                 };
1976                 let payment_hash = PaymentHash(Sha256::hash(&preimage.0).into_inner());
1977                 match self.send_payment_internal(route, payment_hash, &None, Some(preimage)) {
1978                         Ok(()) => Ok(payment_hash),
1979                         Err(e) => Err(e)
1980                 }
1981         }
1982
1983         /// Handles the generation of a funding transaction, optionally (for tests) with a function
1984         /// which checks the correctness of the funding transaction given the associated channel.
1985         fn funding_transaction_generated_intern<FundingOutput: Fn(&Channel<Signer>, &Transaction) -> Result<OutPoint, APIError>>
1986                         (&self, temporary_channel_id: &[u8; 32], funding_transaction: Transaction, find_funding_output: FundingOutput) -> Result<(), APIError> {
1987                 let (chan, msg) = {
1988                         let (res, chan) = match self.channel_state.lock().unwrap().by_id.remove(temporary_channel_id) {
1989                                 Some(mut chan) => {
1990                                         let funding_txo = find_funding_output(&chan, &funding_transaction)?;
1991
1992                                         (chan.get_outbound_funding_created(funding_transaction, funding_txo, &self.logger)
1993                                                 .map_err(|e| if let ChannelError::Close(msg) = e {
1994                                                         MsgHandleErrInternal::from_finish_shutdown(msg, chan.channel_id(), chan.force_shutdown(true), None)
1995                                                 } else { unreachable!(); })
1996                                         , chan)
1997                                 },
1998                                 None => { return Err(APIError::ChannelUnavailable { err: "No such channel".to_owned() }) },
1999                         };
2000                         match handle_error!(self, res, chan.get_counterparty_node_id()) {
2001                                 Ok(funding_msg) => {
2002                                         (chan, funding_msg)
2003                                 },
2004                                 Err(_) => { return Err(APIError::ChannelUnavailable {
2005                                         err: "Error deriving keys or signing initial commitment transactions - either our RNG or our counterparty's RNG is broken or the Signer refused to sign".to_owned()
2006                                 }) },
2007                         }
2008                 };
2009
2010                 let mut channel_state = self.channel_state.lock().unwrap();
2011                 channel_state.pending_msg_events.push(events::MessageSendEvent::SendFundingCreated {
2012                         node_id: chan.get_counterparty_node_id(),
2013                         msg,
2014                 });
2015                 match channel_state.by_id.entry(chan.channel_id()) {
2016                         hash_map::Entry::Occupied(_) => {
2017                                 panic!("Generated duplicate funding txid?");
2018                         },
2019                         hash_map::Entry::Vacant(e) => {
2020                                 e.insert(chan);
2021                         }
2022                 }
2023                 Ok(())
2024         }
2025
2026         #[cfg(test)]
2027         pub(crate) fn funding_transaction_generated_unchecked(&self, temporary_channel_id: &[u8; 32], funding_transaction: Transaction, output_index: u16) -> Result<(), APIError> {
2028                 self.funding_transaction_generated_intern(temporary_channel_id, funding_transaction, |_, tx| {
2029                         Ok(OutPoint { txid: tx.txid(), index: output_index })
2030                 })
2031         }
2032
2033         /// Call this upon creation of a funding transaction for the given channel.
2034         ///
2035         /// Returns an [`APIError::APIMisuseError`] if the funding_transaction spent non-SegWit outputs
2036         /// or if no output was found which matches the parameters in [`Event::FundingGenerationReady`].
2037         ///
2038         /// Panics if a funding transaction has already been provided for this channel.
2039         ///
2040         /// May panic if the output found in the funding transaction is duplicative with some other
2041         /// channel (note that this should be trivially prevented by using unique funding transaction
2042         /// keys per-channel).
2043         ///
2044         /// Do NOT broadcast the funding transaction yourself. When we have safely received our
2045         /// counterparty's signature the funding transaction will automatically be broadcast via the
2046         /// [`BroadcasterInterface`] provided when this `ChannelManager` was constructed.
2047         ///
2048         /// Note that this includes RBF or similar transaction replacement strategies - lightning does
2049         /// not currently support replacing a funding transaction on an existing channel. Instead,
2050         /// create a new channel with a conflicting funding transaction.
2051         ///
2052         /// [`Event::FundingGenerationReady`]: crate::util::events::Event::FundingGenerationReady
2053         pub fn funding_transaction_generated(&self, temporary_channel_id: &[u8; 32], funding_transaction: Transaction) -> Result<(), APIError> {
2054                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
2055
2056                 for inp in funding_transaction.input.iter() {
2057                         if inp.witness.is_empty() {
2058                                 return Err(APIError::APIMisuseError {
2059                                         err: "Funding transaction must be fully signed and spend Segwit outputs".to_owned()
2060                                 });
2061                         }
2062                 }
2063                 self.funding_transaction_generated_intern(temporary_channel_id, funding_transaction, |chan, tx| {
2064                         let mut output_index = None;
2065                         let expected_spk = chan.get_funding_redeemscript().to_v0_p2wsh();
2066                         for (idx, outp) in tx.output.iter().enumerate() {
2067                                 if outp.script_pubkey == expected_spk && outp.value == chan.get_value_satoshis() {
2068                                         if output_index.is_some() {
2069                                                 return Err(APIError::APIMisuseError {
2070                                                         err: "Multiple outputs matched the expected script and value".to_owned()
2071                                                 });
2072                                         }
2073                                         if idx > u16::max_value() as usize {
2074                                                 return Err(APIError::APIMisuseError {
2075                                                         err: "Transaction had more than 2^16 outputs, which is not supported".to_owned()
2076                                                 });
2077                                         }
2078                                         output_index = Some(idx as u16);
2079                                 }
2080                         }
2081                         if output_index.is_none() {
2082                                 return Err(APIError::APIMisuseError {
2083                                         err: "No output matched the script_pubkey and value in the FundingGenerationReady event".to_owned()
2084                                 });
2085                         }
2086                         Ok(OutPoint { txid: tx.txid(), index: output_index.unwrap() })
2087                 })
2088         }
2089
2090         fn get_announcement_sigs(&self, chan: &Channel<Signer>) -> Option<msgs::AnnouncementSignatures> {
2091                 if !chan.should_announce() {
2092                         log_trace!(self.logger, "Can't send announcement_signatures for private channel {}", log_bytes!(chan.channel_id()));
2093                         return None
2094                 }
2095
2096                 let (announcement, our_bitcoin_sig) = match chan.get_channel_announcement(self.get_our_node_id(), self.genesis_hash.clone()) {
2097                         Ok(res) => res,
2098                         Err(_) => return None, // Only in case of state precondition violations eg channel is closing
2099                 };
2100                 let msghash = hash_to_message!(&Sha256dHash::hash(&announcement.encode()[..])[..]);
2101                 let our_node_sig = self.secp_ctx.sign(&msghash, &self.our_network_key);
2102
2103                 Some(msgs::AnnouncementSignatures {
2104                         channel_id: chan.channel_id(),
2105                         short_channel_id: chan.get_short_channel_id().unwrap(),
2106                         node_signature: our_node_sig,
2107                         bitcoin_signature: our_bitcoin_sig,
2108                 })
2109         }
2110
2111         #[allow(dead_code)]
2112         // Messages of up to 64KB should never end up more than half full with addresses, as that would
2113         // be absurd. We ensure this by checking that at least 500 (our stated public contract on when
2114         // broadcast_node_announcement panics) of the maximum-length addresses would fit in a 64KB
2115         // message...
2116         const HALF_MESSAGE_IS_ADDRS: u32 = ::core::u16::MAX as u32 / (NetAddress::MAX_LEN as u32 + 1) / 2;
2117         #[deny(const_err)]
2118         #[allow(dead_code)]
2119         // ...by failing to compile if the number of addresses that would be half of a message is
2120         // smaller than 500:
2121         const STATIC_ASSERT: u32 = Self::HALF_MESSAGE_IS_ADDRS - 500;
2122
2123         /// Regenerates channel_announcements and generates a signed node_announcement from the given
2124         /// arguments, providing them in corresponding events via
2125         /// [`get_and_clear_pending_msg_events`], if at least one public channel has been confirmed
2126         /// on-chain. This effectively re-broadcasts all channel announcements and sends our node
2127         /// announcement to ensure that the lightning P2P network is aware of the channels we have and
2128         /// our network addresses.
2129         ///
2130         /// `rgb` is a node "color" and `alias` is a printable human-readable string to describe this
2131         /// node to humans. They carry no in-protocol meaning.
2132         ///
2133         /// `addresses` represent the set (possibly empty) of socket addresses on which this node
2134         /// accepts incoming connections. These will be included in the node_announcement, publicly
2135         /// tying these addresses together and to this node. If you wish to preserve user privacy,
2136         /// addresses should likely contain only Tor Onion addresses.
2137         ///
2138         /// Panics if `addresses` is absurdly large (more than 500).
2139         ///
2140         /// [`get_and_clear_pending_msg_events`]: MessageSendEventsProvider::get_and_clear_pending_msg_events
2141         pub fn broadcast_node_announcement(&self, rgb: [u8; 3], alias: [u8; 32], mut addresses: Vec<NetAddress>) {
2142                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
2143
2144                 if addresses.len() > 500 {
2145                         panic!("More than half the message size was taken up by public addresses!");
2146                 }
2147
2148                 // While all existing nodes handle unsorted addresses just fine, the spec requires that
2149                 // addresses be sorted for future compatibility.
2150                 addresses.sort_by_key(|addr| addr.get_id());
2151
2152                 let announcement = msgs::UnsignedNodeAnnouncement {
2153                         features: NodeFeatures::known(),
2154                         timestamp: self.last_node_announcement_serial.fetch_add(1, Ordering::AcqRel) as u32,
2155                         node_id: self.get_our_node_id(),
2156                         rgb, alias, addresses,
2157                         excess_address_data: Vec::new(),
2158                         excess_data: Vec::new(),
2159                 };
2160                 let msghash = hash_to_message!(&Sha256dHash::hash(&announcement.encode()[..])[..]);
2161                 let node_announce_sig = self.secp_ctx.sign(&msghash, &self.our_network_key);
2162
2163                 let mut channel_state_lock = self.channel_state.lock().unwrap();
2164                 let channel_state = &mut *channel_state_lock;
2165
2166                 let mut announced_chans = false;
2167                 for (_, chan) in channel_state.by_id.iter() {
2168                         if let Some(msg) = chan.get_signed_channel_announcement(&self.our_network_key, self.get_our_node_id(), self.genesis_hash.clone()) {
2169                                 channel_state.pending_msg_events.push(events::MessageSendEvent::BroadcastChannelAnnouncement {
2170                                         msg,
2171                                         update_msg: match self.get_channel_update_for_broadcast(chan) {
2172                                                 Ok(msg) => msg,
2173                                                 Err(_) => continue,
2174                                         },
2175                                 });
2176                                 announced_chans = true;
2177                         } else {
2178                                 // If the channel is not public or has not yet reached funding_locked, check the
2179                                 // next channel. If we don't yet have any public channels, we'll skip the broadcast
2180                                 // below as peers may not accept it without channels on chain first.
2181                         }
2182                 }
2183
2184                 if announced_chans {
2185                         channel_state.pending_msg_events.push(events::MessageSendEvent::BroadcastNodeAnnouncement {
2186                                 msg: msgs::NodeAnnouncement {
2187                                         signature: node_announce_sig,
2188                                         contents: announcement
2189                                 },
2190                         });
2191                 }
2192         }
2193
2194         /// Processes HTLCs which are pending waiting on random forward delay.
2195         ///
2196         /// Should only really ever be called in response to a PendingHTLCsForwardable event.
2197         /// Will likely generate further events.
2198         pub fn process_pending_htlc_forwards(&self) {
2199                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
2200
2201                 let mut new_events = Vec::new();
2202                 let mut failed_forwards = Vec::new();
2203                 let mut handle_errors = Vec::new();
2204                 {
2205                         let mut channel_state_lock = self.channel_state.lock().unwrap();
2206                         let channel_state = &mut *channel_state_lock;
2207
2208                         for (short_chan_id, mut pending_forwards) in channel_state.forward_htlcs.drain() {
2209                                 if short_chan_id != 0 {
2210                                         let forward_chan_id = match channel_state.short_to_id.get(&short_chan_id) {
2211                                                 Some(chan_id) => chan_id.clone(),
2212                                                 None => {
2213                                                         failed_forwards.reserve(pending_forwards.len());
2214                                                         for forward_info in pending_forwards.drain(..) {
2215                                                                 match forward_info {
2216                                                                         HTLCForwardInfo::AddHTLC { prev_short_channel_id, prev_htlc_id, forward_info,
2217                                                                                                    prev_funding_outpoint } => {
2218                                                                                 let htlc_source = HTLCSource::PreviousHopData(HTLCPreviousHopData {
2219                                                                                         short_channel_id: prev_short_channel_id,
2220                                                                                         outpoint: prev_funding_outpoint,
2221                                                                                         htlc_id: prev_htlc_id,
2222                                                                                         incoming_packet_shared_secret: forward_info.incoming_shared_secret,
2223                                                                                 });
2224                                                                                 failed_forwards.push((htlc_source, forward_info.payment_hash,
2225                                                                                         HTLCFailReason::Reason { failure_code: 0x4000 | 10, data: Vec::new() }
2226                                                                                 ));
2227                                                                         },
2228                                                                         HTLCForwardInfo::FailHTLC { .. } => {
2229                                                                                 // Channel went away before we could fail it. This implies
2230                                                                                 // the channel is now on chain and our counterparty is
2231                                                                                 // trying to broadcast the HTLC-Timeout, but that's their
2232                                                                                 // problem, not ours.
2233                                                                         }
2234                                                                 }
2235                                                         }
2236                                                         continue;
2237                                                 }
2238                                         };
2239                                         if let hash_map::Entry::Occupied(mut chan) = channel_state.by_id.entry(forward_chan_id) {
2240                                                 let mut add_htlc_msgs = Vec::new();
2241                                                 let mut fail_htlc_msgs = Vec::new();
2242                                                 for forward_info in pending_forwards.drain(..) {
2243                                                         match forward_info {
2244                                                                 HTLCForwardInfo::AddHTLC { prev_short_channel_id, prev_htlc_id, forward_info: PendingHTLCInfo {
2245                                                                                 routing: PendingHTLCRouting::Forward {
2246                                                                                         onion_packet, ..
2247                                                                                 }, incoming_shared_secret, payment_hash, amt_to_forward, outgoing_cltv_value },
2248                                                                                 prev_funding_outpoint } => {
2249                                                                         log_trace!(self.logger, "Adding HTLC from short id {} with payment_hash {} to channel with short id {} after delay", prev_short_channel_id, log_bytes!(payment_hash.0), short_chan_id);
2250                                                                         let htlc_source = HTLCSource::PreviousHopData(HTLCPreviousHopData {
2251                                                                                 short_channel_id: prev_short_channel_id,
2252                                                                                 outpoint: prev_funding_outpoint,
2253                                                                                 htlc_id: prev_htlc_id,
2254                                                                                 incoming_packet_shared_secret: incoming_shared_secret,
2255                                                                         });
2256                                                                         match chan.get_mut().send_htlc(amt_to_forward, payment_hash, outgoing_cltv_value, htlc_source.clone(), onion_packet) {
2257                                                                                 Err(e) => {
2258                                                                                         if let ChannelError::Ignore(msg) = e {
2259                                                                                                 log_trace!(self.logger, "Failed to forward HTLC with payment_hash {}: {}", log_bytes!(payment_hash.0), msg);
2260                                                                                         } else {
2261                                                                                                 panic!("Stated return value requirements in send_htlc() were not met");
2262                                                                                         }
2263                                                                                         let chan_update = self.get_channel_update_for_unicast(chan.get()).unwrap();
2264                                                                                         failed_forwards.push((htlc_source, payment_hash,
2265                                                                                                 HTLCFailReason::Reason { failure_code: 0x1000 | 7, data: chan_update.encode_with_len() }
2266                                                                                         ));
2267                                                                                         continue;
2268                                                                                 },
2269                                                                                 Ok(update_add) => {
2270                                                                                         match update_add {
2271                                                                                                 Some(msg) => { add_htlc_msgs.push(msg); },
2272                                                                                                 None => {
2273                                                                                                         // Nothing to do here...we're waiting on a remote
2274                                                                                                         // revoke_and_ack before we can add anymore HTLCs. The Channel
2275                                                                                                         // will automatically handle building the update_add_htlc and
2276                                                                                                         // commitment_signed messages when we can.
2277                                                                                                         // TODO: Do some kind of timer to set the channel as !is_live()
2278                                                                                                         // as we don't really want others relying on us relaying through
2279                                                                                                         // this channel currently :/.
2280                                                                                                 }
2281                                                                                         }
2282                                                                                 }
2283                                                                         }
2284                                                                 },
2285                                                                 HTLCForwardInfo::AddHTLC { .. } => {
2286                                                                         panic!("short_channel_id != 0 should imply any pending_forward entries are of type Forward");
2287                                                                 },
2288                                                                 HTLCForwardInfo::FailHTLC { htlc_id, err_packet } => {
2289                                                                         log_trace!(self.logger, "Failing HTLC back to channel with short id {} (backward HTLC ID {}) after delay", short_chan_id, htlc_id);
2290                                                                         match chan.get_mut().get_update_fail_htlc(htlc_id, err_packet, &self.logger) {
2291                                                                                 Err(e) => {
2292                                                                                         if let ChannelError::Ignore(msg) = e {
2293                                                                                                 log_trace!(self.logger, "Failed to fail HTLC with ID {} backwards to short_id {}: {}", htlc_id, short_chan_id, msg);
2294                                                                                         } else {
2295                                                                                                 panic!("Stated return value requirements in get_update_fail_htlc() were not met");
2296                                                                                         }
2297                                                                                         // fail-backs are best-effort, we probably already have one
2298                                                                                         // pending, and if not that's OK, if not, the channel is on
2299                                                                                         // the chain and sending the HTLC-Timeout is their problem.
2300                                                                                         continue;
2301                                                                                 },
2302                                                                                 Ok(Some(msg)) => { fail_htlc_msgs.push(msg); },
2303                                                                                 Ok(None) => {
2304                                                                                         // Nothing to do here...we're waiting on a remote
2305                                                                                         // revoke_and_ack before we can update the commitment
2306                                                                                         // transaction. The Channel will automatically handle
2307                                                                                         // building the update_fail_htlc and commitment_signed
2308                                                                                         // messages when we can.
2309                                                                                         // We don't need any kind of timer here as they should fail
2310                                                                                         // the channel onto the chain if they can't get our
2311                                                                                         // update_fail_htlc in time, it's not our problem.
2312                                                                                 }
2313                                                                         }
2314                                                                 },
2315                                                         }
2316                                                 }
2317
2318                                                 if !add_htlc_msgs.is_empty() || !fail_htlc_msgs.is_empty() {
2319                                                         let (commitment_msg, monitor_update) = match chan.get_mut().send_commitment(&self.logger) {
2320                                                                 Ok(res) => res,
2321                                                                 Err(e) => {
2322                                                                         // We surely failed send_commitment due to bad keys, in that case
2323                                                                         // close channel and then send error message to peer.
2324                                                                         let counterparty_node_id = chan.get().get_counterparty_node_id();
2325                                                                         let err: Result<(), _>  = match e {
2326                                                                                 ChannelError::Ignore(_) => {
2327                                                                                         panic!("Stated return value requirements in send_commitment() were not met");
2328                                                                                 },
2329                                                                                 ChannelError::Close(msg) => {
2330                                                                                         log_trace!(self.logger, "Closing channel {} due to Close-required error: {}", log_bytes!(chan.key()[..]), msg);
2331                                                                                         let (channel_id, mut channel) = chan.remove_entry();
2332                                                                                         if let Some(short_id) = channel.get_short_channel_id() {
2333                                                                                                 channel_state.short_to_id.remove(&short_id);
2334                                                                                         }
2335                                                                                         Err(MsgHandleErrInternal::from_finish_shutdown(msg, channel_id, channel.force_shutdown(true), self.get_channel_update_for_broadcast(&channel).ok()))
2336                                                                                 },
2337                                                                                 ChannelError::CloseDelayBroadcast(_) => { panic!("Wait is only generated on receipt of channel_reestablish, which is handled by try_chan_entry, we don't bother to support it here"); }
2338                                                                         };
2339                                                                         handle_errors.push((counterparty_node_id, err));
2340                                                                         continue;
2341                                                                 }
2342                                                         };
2343                                                         if let Err(e) = self.chain_monitor.update_channel(chan.get().get_funding_txo().unwrap(), monitor_update) {
2344                                                                 handle_errors.push((chan.get().get_counterparty_node_id(), handle_monitor_err!(self, e, channel_state, chan, RAACommitmentOrder::CommitmentFirst, false, true)));
2345                                                                 continue;
2346                                                         }
2347                                                         log_debug!(self.logger, "Forwarding HTLCs resulted in a commitment update with {} HTLCs added and {} HTLCs failed for channel {}",
2348                                                                 add_htlc_msgs.len(), fail_htlc_msgs.len(), log_bytes!(chan.get().channel_id()));
2349                                                         channel_state.pending_msg_events.push(events::MessageSendEvent::UpdateHTLCs {
2350                                                                 node_id: chan.get().get_counterparty_node_id(),
2351                                                                 updates: msgs::CommitmentUpdate {
2352                                                                         update_add_htlcs: add_htlc_msgs,
2353                                                                         update_fulfill_htlcs: Vec::new(),
2354                                                                         update_fail_htlcs: fail_htlc_msgs,
2355                                                                         update_fail_malformed_htlcs: Vec::new(),
2356                                                                         update_fee: None,
2357                                                                         commitment_signed: commitment_msg,
2358                                                                 },
2359                                                         });
2360                                                 }
2361                                         } else {
2362                                                 unreachable!();
2363                                         }
2364                                 } else {
2365                                         for forward_info in pending_forwards.drain(..) {
2366                                                 match forward_info {
2367                                                         HTLCForwardInfo::AddHTLC { prev_short_channel_id, prev_htlc_id, forward_info: PendingHTLCInfo {
2368                                                                         routing, incoming_shared_secret, payment_hash, amt_to_forward, .. },
2369                                                                         prev_funding_outpoint } => {
2370                                                                 let (cltv_expiry, onion_payload) = match routing {
2371                                                                         PendingHTLCRouting::Receive { payment_data, incoming_cltv_expiry } =>
2372                                                                                 (incoming_cltv_expiry, OnionPayload::Invoice(payment_data)),
2373                                                                         PendingHTLCRouting::ReceiveKeysend { payment_preimage, incoming_cltv_expiry } =>
2374                                                                                 (incoming_cltv_expiry, OnionPayload::Spontaneous(payment_preimage)),
2375                                                                         _ => {
2376                                                                                 panic!("short_channel_id == 0 should imply any pending_forward entries are of type Receive");
2377                                                                         }
2378                                                                 };
2379                                                                 let claimable_htlc = ClaimableHTLC {
2380                                                                         prev_hop: HTLCPreviousHopData {
2381                                                                                 short_channel_id: prev_short_channel_id,
2382                                                                                 outpoint: prev_funding_outpoint,
2383                                                                                 htlc_id: prev_htlc_id,
2384                                                                                 incoming_packet_shared_secret: incoming_shared_secret,
2385                                                                         },
2386                                                                         value: amt_to_forward,
2387                                                                         cltv_expiry,
2388                                                                         onion_payload,
2389                                                                 };
2390
2391                                                                 macro_rules! fail_htlc {
2392                                                                         ($htlc: expr) => {
2393                                                                                 let mut htlc_msat_height_data = byte_utils::be64_to_array($htlc.value).to_vec();
2394                                                                                 htlc_msat_height_data.extend_from_slice(
2395                                                                                         &byte_utils::be32_to_array(self.best_block.read().unwrap().height()),
2396                                                                                 );
2397                                                                                 failed_forwards.push((HTLCSource::PreviousHopData(HTLCPreviousHopData {
2398                                                                                                 short_channel_id: $htlc.prev_hop.short_channel_id,
2399                                                                                                 outpoint: prev_funding_outpoint,
2400                                                                                                 htlc_id: $htlc.prev_hop.htlc_id,
2401                                                                                                 incoming_packet_shared_secret: $htlc.prev_hop.incoming_packet_shared_secret,
2402                                                                                         }), payment_hash,
2403                                                                                         HTLCFailReason::Reason { failure_code: 0x4000 | 15, data: htlc_msat_height_data }
2404                                                                                 ));
2405                                                                         }
2406                                                                 }
2407
2408                                                                 // Check that the payment hash and secret are known. Note that we
2409                                                                 // MUST take care to handle the "unknown payment hash" and
2410                                                                 // "incorrect payment secret" cases here identically or we'd expose
2411                                                                 // that we are the ultimate recipient of the given payment hash.
2412                                                                 // Further, we must not expose whether we have any other HTLCs
2413                                                                 // associated with the same payment_hash pending or not.
2414                                                                 let mut payment_secrets = self.pending_inbound_payments.lock().unwrap();
2415                                                                 match payment_secrets.entry(payment_hash) {
2416                                                                         hash_map::Entry::Vacant(_) => {
2417                                                                                 match claimable_htlc.onion_payload {
2418                                                                                         OnionPayload::Invoice(_) => {
2419                                                                                                 log_trace!(self.logger, "Failing new HTLC with payment_hash {} as we didn't have a corresponding inbound payment.", log_bytes!(payment_hash.0));
2420                                                                                                 fail_htlc!(claimable_htlc);
2421                                                                                         },
2422                                                                                         OnionPayload::Spontaneous(preimage) => {
2423                                                                                                 match channel_state.claimable_htlcs.entry(payment_hash) {
2424                                                                                                         hash_map::Entry::Vacant(e) => {
2425                                                                                                                 e.insert(vec![claimable_htlc]);
2426                                                                                                                 new_events.push(events::Event::PaymentReceived {
2427                                                                                                                         payment_hash,
2428                                                                                                                         amt: amt_to_forward,
2429                                                                                                                         purpose: events::PaymentPurpose::SpontaneousPayment(preimage),
2430                                                                                                                 });
2431                                                                                                         },
2432                                                                                                         hash_map::Entry::Occupied(_) => {
2433                                                                                                                 log_trace!(self.logger, "Failing new keysend HTLC with payment_hash {} for a duplicative payment hash", log_bytes!(payment_hash.0));
2434                                                                                                                 fail_htlc!(claimable_htlc);
2435                                                                                                         }
2436                                                                                                 }
2437                                                                                         }
2438                                                                                 }
2439                                                                         },
2440                                                                         hash_map::Entry::Occupied(inbound_payment) => {
2441                                                                                 let payment_data =
2442                                                                                         if let OnionPayload::Invoice(ref data) = claimable_htlc.onion_payload {
2443                                                                                                 data.clone()
2444                                                                                         } else {
2445                                                                                                 log_trace!(self.logger, "Failing new keysend HTLC with payment_hash {} because we already have an inbound payment with the same payment hash", log_bytes!(payment_hash.0));
2446                                                                                                 fail_htlc!(claimable_htlc);
2447                                                                                                 continue
2448                                                                                         };
2449                                                                                 if inbound_payment.get().payment_secret != payment_data.payment_secret {
2450                                                                                         log_trace!(self.logger, "Failing new HTLC with payment_hash {} as it didn't match our expected payment secret.", log_bytes!(payment_hash.0));
2451                                                                                         fail_htlc!(claimable_htlc);
2452                                                                                 } else if inbound_payment.get().min_value_msat.is_some() && payment_data.total_msat < inbound_payment.get().min_value_msat.unwrap() {
2453                                                                                         log_trace!(self.logger, "Failing new HTLC with payment_hash {} as it didn't match our minimum value (had {}, needed {}).",
2454                                                                                                 log_bytes!(payment_hash.0), payment_data.total_msat, inbound_payment.get().min_value_msat.unwrap());
2455                                                                                         fail_htlc!(claimable_htlc);
2456                                                                                 } else {
2457                                                                                         let mut total_value = 0;
2458                                                                                         let htlcs = channel_state.claimable_htlcs.entry(payment_hash)
2459                                                                                                 .or_insert(Vec::new());
2460                                                                                         if htlcs.len() == 1 {
2461                                                                                                 if let OnionPayload::Spontaneous(_) = htlcs[0].onion_payload {
2462                                                                                                         log_trace!(self.logger, "Failing new HTLC with payment_hash {} as we already had an existing keysend HTLC with the same payment hash", log_bytes!(payment_hash.0));
2463                                                                                                         fail_htlc!(claimable_htlc);
2464                                                                                                         continue
2465                                                                                                 }
2466                                                                                         }
2467                                                                                         htlcs.push(claimable_htlc);
2468                                                                                         for htlc in htlcs.iter() {
2469                                                                                                 total_value += htlc.value;
2470                                                                                                 match &htlc.onion_payload {
2471                                                                                                         OnionPayload::Invoice(htlc_payment_data) => {
2472                                                                                                                 if htlc_payment_data.total_msat != payment_data.total_msat {
2473                                                                                                                         log_trace!(self.logger, "Failing HTLCs with payment_hash {} as the HTLCs had inconsistent total values (eg {} and {})",
2474                                                                                                                                                                  log_bytes!(payment_hash.0), payment_data.total_msat, htlc_payment_data.total_msat);
2475                                                                                                                         total_value = msgs::MAX_VALUE_MSAT;
2476                                                                                                                 }
2477                                                                                                                 if total_value >= msgs::MAX_VALUE_MSAT { break; }
2478                                                                                                         },
2479                                                                                                         _ => unreachable!(),
2480                                                                                                 }
2481                                                                                         }
2482                                                                                         if total_value >= msgs::MAX_VALUE_MSAT || total_value > payment_data.total_msat {
2483                                                                                                 log_trace!(self.logger, "Failing HTLCs with payment_hash {} as the total value {} ran over expected value {} (or HTLCs were inconsistent)",
2484                                                                                                         log_bytes!(payment_hash.0), total_value, payment_data.total_msat);
2485                                                                                                 for htlc in htlcs.iter() {
2486                                                                                                         fail_htlc!(htlc);
2487                                                                                                 }
2488                                                                                         } else if total_value == payment_data.total_msat {
2489                                                                                                 new_events.push(events::Event::PaymentReceived {
2490                                                                                                         payment_hash,
2491                                                                                                         purpose: events::PaymentPurpose::InvoicePayment {
2492                                                                                                                 payment_preimage: inbound_payment.get().payment_preimage,
2493                                                                                                                 payment_secret: payment_data.payment_secret,
2494                                                                                                                 user_payment_id: inbound_payment.get().user_payment_id,
2495                                                                                                         },
2496                                                                                                         amt: total_value,
2497                                                                                                 });
2498                                                                                                 // Only ever generate at most one PaymentReceived
2499                                                                                                 // per registered payment_hash, even if it isn't
2500                                                                                                 // claimed.
2501                                                                                                 inbound_payment.remove_entry();
2502                                                                                         } else {
2503                                                                                                 // Nothing to do - we haven't reached the total
2504                                                                                                 // payment value yet, wait until we receive more
2505                                                                                                 // MPP parts.
2506                                                                                         }
2507                                                                                 }
2508                                                                         },
2509                                                                 };
2510                                                         },
2511                                                         HTLCForwardInfo::FailHTLC { .. } => {
2512                                                                 panic!("Got pending fail of our own HTLC");
2513                                                         }
2514                                                 }
2515                                         }
2516                                 }
2517                         }
2518                 }
2519
2520                 for (htlc_source, payment_hash, failure_reason) in failed_forwards.drain(..) {
2521                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), htlc_source, &payment_hash, failure_reason);
2522                 }
2523
2524                 for (counterparty_node_id, err) in handle_errors.drain(..) {
2525                         let _ = handle_error!(self, err, counterparty_node_id);
2526                 }
2527
2528                 if new_events.is_empty() { return }
2529                 let mut events = self.pending_events.lock().unwrap();
2530                 events.append(&mut new_events);
2531         }
2532
2533         /// Free the background events, generally called from timer_tick_occurred.
2534         ///
2535         /// Exposed for testing to allow us to process events quickly without generating accidental
2536         /// BroadcastChannelUpdate events in timer_tick_occurred.
2537         ///
2538         /// Expects the caller to have a total_consistency_lock read lock.
2539         fn process_background_events(&self) -> bool {
2540                 let mut background_events = Vec::new();
2541                 mem::swap(&mut *self.pending_background_events.lock().unwrap(), &mut background_events);
2542                 if background_events.is_empty() {
2543                         return false;
2544                 }
2545
2546                 for event in background_events.drain(..) {
2547                         match event {
2548                                 BackgroundEvent::ClosingMonitorUpdate((funding_txo, update)) => {
2549                                         // The channel has already been closed, so no use bothering to care about the
2550                                         // monitor updating completing.
2551                                         let _ = self.chain_monitor.update_channel(funding_txo, update);
2552                                 },
2553                         }
2554                 }
2555                 true
2556         }
2557
2558         #[cfg(any(test, feature = "_test_utils"))]
2559         /// Process background events, for functional testing
2560         pub fn test_process_background_events(&self) {
2561                 self.process_background_events();
2562         }
2563
2564         /// If a peer is disconnected we mark any channels with that peer as 'disabled'.
2565         /// After some time, if channels are still disabled we need to broadcast a ChannelUpdate
2566         /// to inform the network about the uselessness of these channels.
2567         ///
2568         /// This method handles all the details, and must be called roughly once per minute.
2569         ///
2570         /// Note that in some rare cases this may generate a `chain::Watch::update_channel` call.
2571         pub fn timer_tick_occurred(&self) {
2572                 PersistenceNotifierGuard::optionally_notify(&self.total_consistency_lock, &self.persistence_notifier, || {
2573                         let mut should_persist = NotifyOption::SkipPersist;
2574                         if self.process_background_events() { should_persist = NotifyOption::DoPersist; }
2575
2576                         let mut channel_state_lock = self.channel_state.lock().unwrap();
2577                         let channel_state = &mut *channel_state_lock;
2578                         for (_, chan) in channel_state.by_id.iter_mut() {
2579                                 match chan.channel_update_status() {
2580                                         ChannelUpdateStatus::Enabled if !chan.is_live() => chan.set_channel_update_status(ChannelUpdateStatus::DisabledStaged),
2581                                         ChannelUpdateStatus::Disabled if chan.is_live() => chan.set_channel_update_status(ChannelUpdateStatus::EnabledStaged),
2582                                         ChannelUpdateStatus::DisabledStaged if chan.is_live() => chan.set_channel_update_status(ChannelUpdateStatus::Enabled),
2583                                         ChannelUpdateStatus::EnabledStaged if !chan.is_live() => chan.set_channel_update_status(ChannelUpdateStatus::Disabled),
2584                                         ChannelUpdateStatus::DisabledStaged if !chan.is_live() => {
2585                                                 if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
2586                                                         channel_state.pending_msg_events.push(events::MessageSendEvent::BroadcastChannelUpdate {
2587                                                                 msg: update
2588                                                         });
2589                                                 }
2590                                                 should_persist = NotifyOption::DoPersist;
2591                                                 chan.set_channel_update_status(ChannelUpdateStatus::Disabled);
2592                                         },
2593                                         ChannelUpdateStatus::EnabledStaged if chan.is_live() => {
2594                                                 if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
2595                                                         channel_state.pending_msg_events.push(events::MessageSendEvent::BroadcastChannelUpdate {
2596                                                                 msg: update
2597                                                         });
2598                                                 }
2599                                                 should_persist = NotifyOption::DoPersist;
2600                                                 chan.set_channel_update_status(ChannelUpdateStatus::Enabled);
2601                                         },
2602                                         _ => {},
2603                                 }
2604                         }
2605
2606                         should_persist
2607                 });
2608         }
2609
2610         /// Indicates that the preimage for payment_hash is unknown or the received amount is incorrect
2611         /// after a PaymentReceived event, failing the HTLC back to its origin and freeing resources
2612         /// along the path (including in our own channel on which we received it).
2613         /// Returns false if no payment was found to fail backwards, true if the process of failing the
2614         /// HTLC backwards has been started.
2615         pub fn fail_htlc_backwards(&self, payment_hash: &PaymentHash) -> bool {
2616                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
2617
2618                 let mut channel_state = Some(self.channel_state.lock().unwrap());
2619                 let removed_source = channel_state.as_mut().unwrap().claimable_htlcs.remove(payment_hash);
2620                 if let Some(mut sources) = removed_source {
2621                         for htlc in sources.drain(..) {
2622                                 if channel_state.is_none() { channel_state = Some(self.channel_state.lock().unwrap()); }
2623                                 let mut htlc_msat_height_data = byte_utils::be64_to_array(htlc.value).to_vec();
2624                                 htlc_msat_height_data.extend_from_slice(&byte_utils::be32_to_array(
2625                                                 self.best_block.read().unwrap().height()));
2626                                 self.fail_htlc_backwards_internal(channel_state.take().unwrap(),
2627                                                 HTLCSource::PreviousHopData(htlc.prev_hop), payment_hash,
2628                                                 HTLCFailReason::Reason { failure_code: 0x4000 | 15, data: htlc_msat_height_data });
2629                         }
2630                         true
2631                 } else { false }
2632         }
2633
2634         // Fail a list of HTLCs that were just freed from the holding cell. The HTLCs need to be
2635         // failed backwards or, if they were one of our outgoing HTLCs, then their failure needs to
2636         // be surfaced to the user.
2637         fn fail_holding_cell_htlcs(&self, mut htlcs_to_fail: Vec<(HTLCSource, PaymentHash)>, channel_id: [u8; 32]) {
2638                 for (htlc_src, payment_hash) in htlcs_to_fail.drain(..) {
2639                         match htlc_src {
2640                                 HTLCSource::PreviousHopData(HTLCPreviousHopData { .. }) => {
2641                                         let (failure_code, onion_failure_data) =
2642                                                 match self.channel_state.lock().unwrap().by_id.entry(channel_id) {
2643                                                         hash_map::Entry::Occupied(chan_entry) => {
2644                                                                 if let Ok(upd) = self.get_channel_update_for_unicast(&chan_entry.get()) {
2645                                                                         (0x1000|7, upd.encode_with_len())
2646                                                                 } else {
2647                                                                         (0x4000|10, Vec::new())
2648                                                                 }
2649                                                         },
2650                                                         hash_map::Entry::Vacant(_) => (0x4000|10, Vec::new())
2651                                                 };
2652                                         let channel_state = self.channel_state.lock().unwrap();
2653                                         self.fail_htlc_backwards_internal(channel_state,
2654                                                 htlc_src, &payment_hash, HTLCFailReason::Reason { failure_code, data: onion_failure_data});
2655                                 },
2656                                 HTLCSource::OutboundRoute { session_priv, .. } => {
2657                                         if {
2658                                                 let mut session_priv_bytes = [0; 32];
2659                                                 session_priv_bytes.copy_from_slice(&session_priv[..]);
2660                                                 self.pending_outbound_payments.lock().unwrap().remove(&session_priv_bytes)
2661                                         } {
2662                                                 self.pending_events.lock().unwrap().push(
2663                                                         events::Event::PaymentFailed {
2664                                                                 payment_hash,
2665                                                                 rejected_by_dest: false,
2666 #[cfg(test)]
2667                                                                 error_code: None,
2668 #[cfg(test)]
2669                                                                 error_data: None,
2670                                                         }
2671                                                 )
2672                                         } else {
2673                                                 log_trace!(self.logger, "Received duplicative fail for HTLC with payment_hash {}", log_bytes!(payment_hash.0));
2674                                         }
2675                                 },
2676                         };
2677                 }
2678         }
2679
2680         /// Fails an HTLC backwards to the sender of it to us.
2681         /// Note that while we take a channel_state lock as input, we do *not* assume consistency here.
2682         /// There are several callsites that do stupid things like loop over a list of payment_hashes
2683         /// to fail and take the channel_state lock for each iteration (as we take ownership and may
2684         /// drop it). In other words, no assumptions are made that entries in claimable_htlcs point to
2685         /// still-available channels.
2686         fn fail_htlc_backwards_internal(&self, mut channel_state_lock: MutexGuard<ChannelHolder<Signer>>, source: HTLCSource, payment_hash: &PaymentHash, onion_error: HTLCFailReason) {
2687                 //TODO: There is a timing attack here where if a node fails an HTLC back to us they can
2688                 //identify whether we sent it or not based on the (I presume) very different runtime
2689                 //between the branches here. We should make this async and move it into the forward HTLCs
2690                 //timer handling.
2691
2692                 // Note that we MUST NOT end up calling methods on self.chain_monitor here - we're called
2693                 // from block_connected which may run during initialization prior to the chain_monitor
2694                 // being fully configured. See the docs for `ChannelManagerReadArgs` for more.
2695                 match source {
2696                         HTLCSource::OutboundRoute { ref path, session_priv, .. } => {
2697                                 if {
2698                                         let mut session_priv_bytes = [0; 32];
2699                                         session_priv_bytes.copy_from_slice(&session_priv[..]);
2700                                         !self.pending_outbound_payments.lock().unwrap().remove(&session_priv_bytes)
2701                                 } {
2702                                         log_trace!(self.logger, "Received duplicative fail for HTLC with payment_hash {}", log_bytes!(payment_hash.0));
2703                                         return;
2704                                 }
2705                                 log_trace!(self.logger, "Failing outbound payment HTLC with payment_hash {}", log_bytes!(payment_hash.0));
2706                                 mem::drop(channel_state_lock);
2707                                 match &onion_error {
2708                                         &HTLCFailReason::LightningError { ref err } => {
2709 #[cfg(test)]
2710                                                 let (channel_update, payment_retryable, onion_error_code, onion_error_data) = onion_utils::process_onion_failure(&self.secp_ctx, &self.logger, &source, err.data.clone());
2711 #[cfg(not(test))]
2712                                                 let (channel_update, payment_retryable, _, _) = onion_utils::process_onion_failure(&self.secp_ctx, &self.logger, &source, err.data.clone());
2713                                                 // TODO: If we decided to blame ourselves (or one of our channels) in
2714                                                 // process_onion_failure we should close that channel as it implies our
2715                                                 // next-hop is needlessly blaming us!
2716                                                 if let Some(update) = channel_update {
2717                                                         self.channel_state.lock().unwrap().pending_msg_events.push(
2718                                                                 events::MessageSendEvent::PaymentFailureNetworkUpdate {
2719                                                                         update,
2720                                                                 }
2721                                                         );
2722                                                 }
2723                                                 self.pending_events.lock().unwrap().push(
2724                                                         events::Event::PaymentFailed {
2725                                                                 payment_hash: payment_hash.clone(),
2726                                                                 rejected_by_dest: !payment_retryable,
2727 #[cfg(test)]
2728                                                                 error_code: onion_error_code,
2729 #[cfg(test)]
2730                                                                 error_data: onion_error_data
2731                                                         }
2732                                                 );
2733                                         },
2734                                         &HTLCFailReason::Reason {
2735 #[cfg(test)]
2736                                                         ref failure_code,
2737 #[cfg(test)]
2738                                                         ref data,
2739                                                         .. } => {
2740                                                 // we get a fail_malformed_htlc from the first hop
2741                                                 // TODO: We'd like to generate a PaymentFailureNetworkUpdate for temporary
2742                                                 // failures here, but that would be insufficient as get_route
2743                                                 // generally ignores its view of our own channels as we provide them via
2744                                                 // ChannelDetails.
2745                                                 // TODO: For non-temporary failures, we really should be closing the
2746                                                 // channel here as we apparently can't relay through them anyway.
2747                                                 self.pending_events.lock().unwrap().push(
2748                                                         events::Event::PaymentFailed {
2749                                                                 payment_hash: payment_hash.clone(),
2750                                                                 rejected_by_dest: path.len() == 1,
2751 #[cfg(test)]
2752                                                                 error_code: Some(*failure_code),
2753 #[cfg(test)]
2754                                                                 error_data: Some(data.clone()),
2755                                                         }
2756                                                 );
2757                                         }
2758                                 }
2759                         },
2760                         HTLCSource::PreviousHopData(HTLCPreviousHopData { short_channel_id, htlc_id, incoming_packet_shared_secret, .. }) => {
2761                                 let err_packet = match onion_error {
2762                                         HTLCFailReason::Reason { failure_code, data } => {
2763                                                 log_trace!(self.logger, "Failing HTLC with payment_hash {} backwards from us with code {}", log_bytes!(payment_hash.0), failure_code);
2764                                                 let packet = onion_utils::build_failure_packet(&incoming_packet_shared_secret, failure_code, &data[..]).encode();
2765                                                 onion_utils::encrypt_failure_packet(&incoming_packet_shared_secret, &packet)
2766                                         },
2767                                         HTLCFailReason::LightningError { err } => {
2768                                                 log_trace!(self.logger, "Failing HTLC with payment_hash {} backwards with pre-built LightningError", log_bytes!(payment_hash.0));
2769                                                 onion_utils::encrypt_failure_packet(&incoming_packet_shared_secret, &err.data)
2770                                         }
2771                                 };
2772
2773                                 let mut forward_event = None;
2774                                 if channel_state_lock.forward_htlcs.is_empty() {
2775                                         forward_event = Some(Duration::from_millis(MIN_HTLC_RELAY_HOLDING_CELL_MILLIS));
2776                                 }
2777                                 match channel_state_lock.forward_htlcs.entry(short_channel_id) {
2778                                         hash_map::Entry::Occupied(mut entry) => {
2779                                                 entry.get_mut().push(HTLCForwardInfo::FailHTLC { htlc_id, err_packet });
2780                                         },
2781                                         hash_map::Entry::Vacant(entry) => {
2782                                                 entry.insert(vec!(HTLCForwardInfo::FailHTLC { htlc_id, err_packet }));
2783                                         }
2784                                 }
2785                                 mem::drop(channel_state_lock);
2786                                 if let Some(time) = forward_event {
2787                                         let mut pending_events = self.pending_events.lock().unwrap();
2788                                         pending_events.push(events::Event::PendingHTLCsForwardable {
2789                                                 time_forwardable: time
2790                                         });
2791                                 }
2792                         },
2793                 }
2794         }
2795
2796         /// Provides a payment preimage in response to a PaymentReceived event, returning true and
2797         /// generating message events for the net layer to claim the payment, if possible. Thus, you
2798         /// should probably kick the net layer to go send messages if this returns true!
2799         ///
2800         /// Note that if you did not set an `amount_msat` when calling [`create_inbound_payment`] or
2801         /// [`create_inbound_payment_for_hash`] you must check that the amount in the `PaymentReceived`
2802         /// event matches your expectation. If you fail to do so and call this method, you may provide
2803         /// the sender "proof-of-payment" when they did not fulfill the full expected payment.
2804         ///
2805         /// May panic if called except in response to a PaymentReceived event.
2806         ///
2807         /// [`create_inbound_payment`]: Self::create_inbound_payment
2808         /// [`create_inbound_payment_for_hash`]: Self::create_inbound_payment_for_hash
2809         pub fn claim_funds(&self, payment_preimage: PaymentPreimage) -> bool {
2810                 let payment_hash = PaymentHash(Sha256::hash(&payment_preimage.0).into_inner());
2811
2812                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
2813
2814                 let mut channel_state = Some(self.channel_state.lock().unwrap());
2815                 let removed_source = channel_state.as_mut().unwrap().claimable_htlcs.remove(&payment_hash);
2816                 if let Some(mut sources) = removed_source {
2817                         assert!(!sources.is_empty());
2818
2819                         // If we are claiming an MPP payment, we have to take special care to ensure that each
2820                         // channel exists before claiming all of the payments (inside one lock).
2821                         // Note that channel existance is sufficient as we should always get a monitor update
2822                         // which will take care of the real HTLC claim enforcement.
2823                         //
2824                         // If we find an HTLC which we would need to claim but for which we do not have a
2825                         // channel, we will fail all parts of the MPP payment. While we could wait and see if
2826                         // the sender retries the already-failed path(s), it should be a pretty rare case where
2827                         // we got all the HTLCs and then a channel closed while we were waiting for the user to
2828                         // provide the preimage, so worrying too much about the optimal handling isn't worth
2829                         // it.
2830                         let mut valid_mpp = true;
2831                         for htlc in sources.iter() {
2832                                 if let None = channel_state.as_ref().unwrap().short_to_id.get(&htlc.prev_hop.short_channel_id) {
2833                                         valid_mpp = false;
2834                                         break;
2835                                 }
2836                         }
2837
2838                         let mut errs = Vec::new();
2839                         let mut claimed_any_htlcs = false;
2840                         for htlc in sources.drain(..) {
2841                                 if !valid_mpp {
2842                                         if channel_state.is_none() { channel_state = Some(self.channel_state.lock().unwrap()); }
2843                                         let mut htlc_msat_height_data = byte_utils::be64_to_array(htlc.value).to_vec();
2844                                         htlc_msat_height_data.extend_from_slice(&byte_utils::be32_to_array(
2845                                                         self.best_block.read().unwrap().height()));
2846                                         self.fail_htlc_backwards_internal(channel_state.take().unwrap(),
2847                                                                          HTLCSource::PreviousHopData(htlc.prev_hop), &payment_hash,
2848                                                                          HTLCFailReason::Reason { failure_code: 0x4000|15, data: htlc_msat_height_data });
2849                                 } else {
2850                                         match self.claim_funds_from_hop(channel_state.as_mut().unwrap(), htlc.prev_hop, payment_preimage) {
2851                                                 ClaimFundsFromHop::MonitorUpdateFail(pk, err, _) => {
2852                                                         if let msgs::ErrorAction::IgnoreError = err.err.action {
2853                                                                 // We got a temporary failure updating monitor, but will claim the
2854                                                                 // HTLC when the monitor updating is restored (or on chain).
2855                                                                 log_error!(self.logger, "Temporary failure claiming HTLC, treating as success: {}", err.err.err);
2856                                                                 claimed_any_htlcs = true;
2857                                                         } else { errs.push((pk, err)); }
2858                                                 },
2859                                                 ClaimFundsFromHop::PrevHopForceClosed => unreachable!("We already checked for channel existence, we can't fail here!"),
2860                                                 ClaimFundsFromHop::DuplicateClaim => {
2861                                                         // While we should never get here in most cases, if we do, it likely
2862                                                         // indicates that the HTLC was timed out some time ago and is no longer
2863                                                         // available to be claimed. Thus, it does not make sense to set
2864                                                         // `claimed_any_htlcs`.
2865                                                 },
2866                                                 ClaimFundsFromHop::Success(_) => claimed_any_htlcs = true,
2867                                         }
2868                                 }
2869                         }
2870
2871                         // Now that we've done the entire above loop in one lock, we can handle any errors
2872                         // which were generated.
2873                         channel_state.take();
2874
2875                         for (counterparty_node_id, err) in errs.drain(..) {
2876                                 let res: Result<(), _> = Err(err);
2877                                 let _ = handle_error!(self, res, counterparty_node_id);
2878                         }
2879
2880                         claimed_any_htlcs
2881                 } else { false }
2882         }
2883
2884         fn claim_funds_from_hop(&self, channel_state_lock: &mut MutexGuard<ChannelHolder<Signer>>, prev_hop: HTLCPreviousHopData, payment_preimage: PaymentPreimage) -> ClaimFundsFromHop {
2885                 //TODO: Delay the claimed_funds relaying just like we do outbound relay!
2886                 let channel_state = &mut **channel_state_lock;
2887                 let chan_id = match channel_state.short_to_id.get(&prev_hop.short_channel_id) {
2888                         Some(chan_id) => chan_id.clone(),
2889                         None => {
2890                                 return ClaimFundsFromHop::PrevHopForceClosed
2891                         }
2892                 };
2893
2894                 if let hash_map::Entry::Occupied(mut chan) = channel_state.by_id.entry(chan_id) {
2895                         match chan.get_mut().get_update_fulfill_htlc_and_commit(prev_hop.htlc_id, payment_preimage, &self.logger) {
2896                                 Ok(msgs_monitor_option) => {
2897                                         if let UpdateFulfillCommitFetch::NewClaim { msgs, htlc_value_msat, monitor_update } = msgs_monitor_option {
2898                                                 if let Err(e) = self.chain_monitor.update_channel(chan.get().get_funding_txo().unwrap(), monitor_update) {
2899                                                         log_given_level!(self.logger, if e == ChannelMonitorUpdateErr::PermanentFailure { Level::Error } else { Level::Debug },
2900                                                                 "Failed to update channel monitor with preimage {:?}: {:?}",
2901                                                                 payment_preimage, e);
2902                                                         return ClaimFundsFromHop::MonitorUpdateFail(
2903                                                                 chan.get().get_counterparty_node_id(),
2904                                                                 handle_monitor_err!(self, e, channel_state, chan, RAACommitmentOrder::CommitmentFirst, false, msgs.is_some()).unwrap_err(),
2905                                                                 Some(htlc_value_msat)
2906                                                         );
2907                                                 }
2908                                                 if let Some((msg, commitment_signed)) = msgs {
2909                                                         log_debug!(self.logger, "Claiming funds for HTLC with preimage {} resulted in a commitment_signed for channel {}",
2910                                                                 log_bytes!(payment_preimage.0), log_bytes!(chan.get().channel_id()));
2911                                                         channel_state.pending_msg_events.push(events::MessageSendEvent::UpdateHTLCs {
2912                                                                 node_id: chan.get().get_counterparty_node_id(),
2913                                                                 updates: msgs::CommitmentUpdate {
2914                                                                         update_add_htlcs: Vec::new(),
2915                                                                         update_fulfill_htlcs: vec![msg],
2916                                                                         update_fail_htlcs: Vec::new(),
2917                                                                         update_fail_malformed_htlcs: Vec::new(),
2918                                                                         update_fee: None,
2919                                                                         commitment_signed,
2920                                                                 }
2921                                                         });
2922                                                 }
2923                                                 return ClaimFundsFromHop::Success(htlc_value_msat);
2924                                         } else {
2925                                                 return ClaimFundsFromHop::DuplicateClaim;
2926                                         }
2927                                 },
2928                                 Err((e, monitor_update)) => {
2929                                         if let Err(e) = self.chain_monitor.update_channel(chan.get().get_funding_txo().unwrap(), monitor_update) {
2930                                                 log_given_level!(self.logger, if e == ChannelMonitorUpdateErr::PermanentFailure { Level::Error } else { Level::Info },
2931                                                         "Failed to update channel monitor with preimage {:?} immediately prior to force-close: {:?}",
2932                                                         payment_preimage, e);
2933                                         }
2934                                         let counterparty_node_id = chan.get().get_counterparty_node_id();
2935                                         let (drop, res) = convert_chan_err!(self, e, channel_state.short_to_id, chan.get_mut(), &chan_id);
2936                                         if drop {
2937                                                 chan.remove_entry();
2938                                         }
2939                                         return ClaimFundsFromHop::MonitorUpdateFail(counterparty_node_id, res, None);
2940                                 },
2941                         }
2942                 } else { unreachable!(); }
2943         }
2944
2945         fn claim_funds_internal(&self, mut channel_state_lock: MutexGuard<ChannelHolder<Signer>>, source: HTLCSource, payment_preimage: PaymentPreimage, forwarded_htlc_value_msat: Option<u64>, from_onchain: bool) {
2946                 match source {
2947                         HTLCSource::OutboundRoute { session_priv, .. } => {
2948                                 mem::drop(channel_state_lock);
2949                                 if {
2950                                         let mut session_priv_bytes = [0; 32];
2951                                         session_priv_bytes.copy_from_slice(&session_priv[..]);
2952                                         self.pending_outbound_payments.lock().unwrap().remove(&session_priv_bytes)
2953                                 } {
2954                                         let mut pending_events = self.pending_events.lock().unwrap();
2955                                         pending_events.push(events::Event::PaymentSent {
2956                                                 payment_preimage
2957                                         });
2958                                 } else {
2959                                         log_trace!(self.logger, "Received duplicative fulfill for HTLC with payment_preimage {}", log_bytes!(payment_preimage.0));
2960                                 }
2961                         },
2962                         HTLCSource::PreviousHopData(hop_data) => {
2963                                 let prev_outpoint = hop_data.outpoint;
2964                                 let res = self.claim_funds_from_hop(&mut channel_state_lock, hop_data, payment_preimage);
2965                                 let claimed_htlc = if let ClaimFundsFromHop::DuplicateClaim = res { false } else { true };
2966                                 let htlc_claim_value_msat = match res {
2967                                         ClaimFundsFromHop::MonitorUpdateFail(_, _, amt_opt) => amt_opt,
2968                                         ClaimFundsFromHop::Success(amt) => Some(amt),
2969                                         _ => None,
2970                                 };
2971                                 if let ClaimFundsFromHop::PrevHopForceClosed = res {
2972                                         let preimage_update = ChannelMonitorUpdate {
2973                                                 update_id: CLOSED_CHANNEL_UPDATE_ID,
2974                                                 updates: vec![ChannelMonitorUpdateStep::PaymentPreimage {
2975                                                         payment_preimage: payment_preimage.clone(),
2976                                                 }],
2977                                         };
2978                                         // We update the ChannelMonitor on the backward link, after
2979                                         // receiving an offchain preimage event from the forward link (the
2980                                         // event being update_fulfill_htlc).
2981                                         if let Err(e) = self.chain_monitor.update_channel(prev_outpoint, preimage_update) {
2982                                                 log_error!(self.logger, "Critical error: failed to update channel monitor with preimage {:?}: {:?}",
2983                                                                                          payment_preimage, e);
2984                                         }
2985                                         // Note that we do *not* set `claimed_htlc` to false here. In fact, this
2986                                         // totally could be a duplicate claim, but we have no way of knowing
2987                                         // without interrogating the `ChannelMonitor` we've provided the above
2988                                         // update to. Instead, we simply document in `PaymentForwarded` that this
2989                                         // can happen.
2990                                 }
2991                                 mem::drop(channel_state_lock);
2992                                 if let ClaimFundsFromHop::MonitorUpdateFail(pk, err, _) = res {
2993                                         let result: Result<(), _> = Err(err);
2994                                         let _ = handle_error!(self, result, pk);
2995                                 }
2996
2997                                 if claimed_htlc {
2998                                         if let Some(forwarded_htlc_value) = forwarded_htlc_value_msat {
2999                                                 let fee_earned_msat = if let Some(claimed_htlc_value) = htlc_claim_value_msat {
3000                                                         Some(claimed_htlc_value - forwarded_htlc_value)
3001                                                 } else { None };
3002
3003                                                 let mut pending_events = self.pending_events.lock().unwrap();
3004                                                 pending_events.push(events::Event::PaymentForwarded {
3005                                                         fee_earned_msat,
3006                                                         claim_from_onchain_tx: from_onchain,
3007                                                 });
3008                                         }
3009                                 }
3010                         },
3011                 }
3012         }
3013
3014         /// Gets the node_id held by this ChannelManager
3015         pub fn get_our_node_id(&self) -> PublicKey {
3016                 self.our_network_pubkey.clone()
3017         }
3018
3019         /// Restores a single, given channel to normal operation after a
3020         /// ChannelMonitorUpdateErr::TemporaryFailure was returned from a channel monitor update
3021         /// operation.
3022         ///
3023         /// All ChannelMonitor updates up to and including highest_applied_update_id must have been
3024         /// fully committed in every copy of the given channels' ChannelMonitors.
3025         ///
3026         /// Note that there is no effect to calling with a highest_applied_update_id other than the
3027         /// current latest ChannelMonitorUpdate and one call to this function after multiple
3028         /// ChannelMonitorUpdateErr::TemporaryFailures is fine. The highest_applied_update_id field
3029         /// exists largely only to prevent races between this and concurrent update_monitor calls.
3030         ///
3031         /// Thus, the anticipated use is, at a high level:
3032         ///  1) You register a chain::Watch with this ChannelManager,
3033         ///  2) it stores each update to disk, and begins updating any remote (eg watchtower) copies of
3034         ///     said ChannelMonitors as it can, returning ChannelMonitorUpdateErr::TemporaryFailures
3035         ///     any time it cannot do so instantly,
3036         ///  3) update(s) are applied to each remote copy of a ChannelMonitor,
3037         ///  4) once all remote copies are updated, you call this function with the update_id that
3038         ///     completed, and once it is the latest the Channel will be re-enabled.
3039         pub fn channel_monitor_updated(&self, funding_txo: &OutPoint, highest_applied_update_id: u64) {
3040                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
3041
3042                 let chan_restoration_res;
3043                 let mut pending_failures = {
3044                         let mut channel_lock = self.channel_state.lock().unwrap();
3045                         let channel_state = &mut *channel_lock;
3046                         let mut channel = match channel_state.by_id.entry(funding_txo.to_channel_id()) {
3047                                 hash_map::Entry::Occupied(chan) => chan,
3048                                 hash_map::Entry::Vacant(_) => return,
3049                         };
3050                         if !channel.get().is_awaiting_monitor_update() || channel.get().get_latest_monitor_update_id() != highest_applied_update_id {
3051                                 return;
3052                         }
3053
3054                         let (raa, commitment_update, order, pending_forwards, pending_failures, funding_broadcastable, funding_locked) = channel.get_mut().monitor_updating_restored(&self.logger);
3055                         let channel_update = if funding_locked.is_some() && channel.get().is_usable() && !channel.get().should_announce() {
3056                                 // We only send a channel_update in the case where we are just now sending a
3057                                 // funding_locked and the channel is in a usable state. Further, we rely on the
3058                                 // normal announcement_signatures process to send a channel_update for public
3059                                 // channels, only generating a unicast channel_update if this is a private channel.
3060                                 Some(events::MessageSendEvent::SendChannelUpdate {
3061                                         node_id: channel.get().get_counterparty_node_id(),
3062                                         msg: self.get_channel_update_for_unicast(channel.get()).unwrap(),
3063                                 })
3064                         } else { None };
3065                         chan_restoration_res = handle_chan_restoration_locked!(self, channel_lock, channel_state, channel, raa, commitment_update, order, None, pending_forwards, funding_broadcastable, funding_locked);
3066                         if let Some(upd) = channel_update {
3067                                 channel_state.pending_msg_events.push(upd);
3068                         }
3069                         pending_failures
3070                 };
3071                 post_handle_chan_restoration!(self, chan_restoration_res);
3072                 for failure in pending_failures.drain(..) {
3073                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), failure.0, &failure.1, failure.2);
3074                 }
3075         }
3076
3077         fn internal_open_channel(&self, counterparty_node_id: &PublicKey, their_features: InitFeatures, msg: &msgs::OpenChannel) -> Result<(), MsgHandleErrInternal> {
3078                 if msg.chain_hash != self.genesis_hash {
3079                         return Err(MsgHandleErrInternal::send_err_msg_no_close("Unknown genesis block hash".to_owned(), msg.temporary_channel_id.clone()));
3080                 }
3081
3082                 let channel = Channel::new_from_req(&self.fee_estimator, &self.keys_manager, counterparty_node_id.clone(), &their_features, msg, 0, &self.default_configuration)
3083                         .map_err(|e| MsgHandleErrInternal::from_chan_no_close(e, msg.temporary_channel_id))?;
3084                 let mut channel_state_lock = self.channel_state.lock().unwrap();
3085                 let channel_state = &mut *channel_state_lock;
3086                 match channel_state.by_id.entry(channel.channel_id()) {
3087                         hash_map::Entry::Occupied(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("temporary_channel_id collision!".to_owned(), msg.temporary_channel_id.clone())),
3088                         hash_map::Entry::Vacant(entry) => {
3089                                 channel_state.pending_msg_events.push(events::MessageSendEvent::SendAcceptChannel {
3090                                         node_id: counterparty_node_id.clone(),
3091                                         msg: channel.get_accept_channel(),
3092                                 });
3093                                 entry.insert(channel);
3094                         }
3095                 }
3096                 Ok(())
3097         }
3098
3099         fn internal_accept_channel(&self, counterparty_node_id: &PublicKey, their_features: InitFeatures, msg: &msgs::AcceptChannel) -> Result<(), MsgHandleErrInternal> {
3100                 let (value, output_script, user_id) = {
3101                         let mut channel_lock = self.channel_state.lock().unwrap();
3102                         let channel_state = &mut *channel_lock;
3103                         match channel_state.by_id.entry(msg.temporary_channel_id) {
3104                                 hash_map::Entry::Occupied(mut chan) => {
3105                                         if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3106                                                 return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.temporary_channel_id));
3107                                         }
3108                                         try_chan_entry!(self, chan.get_mut().accept_channel(&msg, &self.default_configuration, &their_features), channel_state, chan);
3109                                         (chan.get().get_value_satoshis(), chan.get().get_funding_redeemscript().to_v0_p2wsh(), chan.get().get_user_id())
3110                                 },
3111                                 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.temporary_channel_id))
3112                         }
3113                 };
3114                 let mut pending_events = self.pending_events.lock().unwrap();
3115                 pending_events.push(events::Event::FundingGenerationReady {
3116                         temporary_channel_id: msg.temporary_channel_id,
3117                         channel_value_satoshis: value,
3118                         output_script,
3119                         user_channel_id: user_id,
3120                 });
3121                 Ok(())
3122         }
3123
3124         fn internal_funding_created(&self, counterparty_node_id: &PublicKey, msg: &msgs::FundingCreated) -> Result<(), MsgHandleErrInternal> {
3125                 let ((funding_msg, monitor), mut chan) = {
3126                         let best_block = *self.best_block.read().unwrap();
3127                         let mut channel_lock = self.channel_state.lock().unwrap();
3128                         let channel_state = &mut *channel_lock;
3129                         match channel_state.by_id.entry(msg.temporary_channel_id.clone()) {
3130                                 hash_map::Entry::Occupied(mut chan) => {
3131                                         if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3132                                                 return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.temporary_channel_id));
3133                                         }
3134                                         (try_chan_entry!(self, chan.get_mut().funding_created(msg, best_block, &self.logger), channel_state, chan), chan.remove())
3135                                 },
3136                                 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.temporary_channel_id))
3137                         }
3138                 };
3139                 // Because we have exclusive ownership of the channel here we can release the channel_state
3140                 // lock before watch_channel
3141                 if let Err(e) = self.chain_monitor.watch_channel(monitor.get_funding_txo().0, monitor) {
3142                         match e {
3143                                 ChannelMonitorUpdateErr::PermanentFailure => {
3144                                         // Note that we reply with the new channel_id in error messages if we gave up on the
3145                                         // channel, not the temporary_channel_id. This is compatible with ourselves, but the
3146                                         // spec is somewhat ambiguous here. Not a huge deal since we'll send error messages for
3147                                         // any messages referencing a previously-closed channel anyway.
3148                                         // We do not do a force-close here as that would generate a monitor update for
3149                                         // a monitor that we didn't manage to store (and that we don't care about - we
3150                                         // don't respond with the funding_signed so the channel can never go on chain).
3151                                         let (_monitor_update, failed_htlcs) = chan.force_shutdown(true);
3152                                         assert!(failed_htlcs.is_empty());
3153                                         return Err(MsgHandleErrInternal::send_err_msg_no_close("ChannelMonitor storage failure".to_owned(), funding_msg.channel_id));
3154                                 },
3155                                 ChannelMonitorUpdateErr::TemporaryFailure => {
3156                                         // There's no problem signing a counterparty's funding transaction if our monitor
3157                                         // hasn't persisted to disk yet - we can't lose money on a transaction that we haven't
3158                                         // accepted payment from yet. We do, however, need to wait to send our funding_locked
3159                                         // until we have persisted our monitor.
3160                                         chan.monitor_update_failed(false, false, Vec::new(), Vec::new());
3161                                 },
3162                         }
3163                 }
3164                 let mut channel_state_lock = self.channel_state.lock().unwrap();
3165                 let channel_state = &mut *channel_state_lock;
3166                 match channel_state.by_id.entry(funding_msg.channel_id) {
3167                         hash_map::Entry::Occupied(_) => {
3168                                 return Err(MsgHandleErrInternal::send_err_msg_no_close("Already had channel with the new channel_id".to_owned(), funding_msg.channel_id))
3169                         },
3170                         hash_map::Entry::Vacant(e) => {
3171                                 channel_state.pending_msg_events.push(events::MessageSendEvent::SendFundingSigned {
3172                                         node_id: counterparty_node_id.clone(),
3173                                         msg: funding_msg,
3174                                 });
3175                                 e.insert(chan);
3176                         }
3177                 }
3178                 Ok(())
3179         }
3180
3181         fn internal_funding_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::FundingSigned) -> Result<(), MsgHandleErrInternal> {
3182                 let funding_tx = {
3183                         let best_block = *self.best_block.read().unwrap();
3184                         let mut channel_lock = self.channel_state.lock().unwrap();
3185                         let channel_state = &mut *channel_lock;
3186                         match channel_state.by_id.entry(msg.channel_id) {
3187                                 hash_map::Entry::Occupied(mut chan) => {
3188                                         if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3189                                                 return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3190                                         }
3191                                         let (monitor, funding_tx) = match chan.get_mut().funding_signed(&msg, best_block, &self.logger) {
3192                                                 Ok(update) => update,
3193                                                 Err(e) => try_chan_entry!(self, Err(e), channel_state, chan),
3194                                         };
3195                                         if let Err(e) = self.chain_monitor.watch_channel(chan.get().get_funding_txo().unwrap(), monitor) {
3196                                                 return_monitor_err!(self, e, channel_state, chan, RAACommitmentOrder::RevokeAndACKFirst, false, false);
3197                                         }
3198                                         funding_tx
3199                                 },
3200                                 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3201                         }
3202                 };
3203                 log_info!(self.logger, "Broadcasting funding transaction with txid {}", funding_tx.txid());
3204                 self.tx_broadcaster.broadcast_transaction(&funding_tx);
3205                 Ok(())
3206         }
3207
3208         fn internal_funding_locked(&self, counterparty_node_id: &PublicKey, msg: &msgs::FundingLocked) -> Result<(), MsgHandleErrInternal> {
3209                 let mut channel_state_lock = self.channel_state.lock().unwrap();
3210                 let channel_state = &mut *channel_state_lock;
3211                 match channel_state.by_id.entry(msg.channel_id) {
3212                         hash_map::Entry::Occupied(mut chan) => {
3213                                 if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3214                                         return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3215                                 }
3216                                 try_chan_entry!(self, chan.get_mut().funding_locked(&msg, &self.logger), channel_state, chan);
3217                                 if let Some(announcement_sigs) = self.get_announcement_sigs(chan.get()) {
3218                                         log_trace!(self.logger, "Sending announcement_signatures for {} in response to funding_locked", log_bytes!(chan.get().channel_id()));
3219                                         // If we see locking block before receiving remote funding_locked, we broadcast our
3220                                         // announcement_sigs at remote funding_locked reception. If we receive remote
3221                                         // funding_locked before seeing locking block, we broadcast our announcement_sigs at locking
3222                                         // block connection. We should guanrantee to broadcast announcement_sigs to our peer whatever
3223                                         // the order of the events but our peer may not receive it due to disconnection. The specs
3224                                         // lacking an acknowledgement for announcement_sigs we may have to re-send them at peer
3225                                         // connection in the future if simultaneous misses by both peers due to network/hardware
3226                                         // failures is an issue. Note, to achieve its goal, only one of the announcement_sigs needs
3227                                         // to be received, from then sigs are going to be flood to the whole network.
3228                                         channel_state.pending_msg_events.push(events::MessageSendEvent::SendAnnouncementSignatures {
3229                                                 node_id: counterparty_node_id.clone(),
3230                                                 msg: announcement_sigs,
3231                                         });
3232                                 } else if chan.get().is_usable() {
3233                                         channel_state.pending_msg_events.push(events::MessageSendEvent::SendChannelUpdate {
3234                                                 node_id: counterparty_node_id.clone(),
3235                                                 msg: self.get_channel_update_for_unicast(chan.get()).unwrap(),
3236                                         });
3237                                 }
3238                                 Ok(())
3239                         },
3240                         hash_map::Entry::Vacant(_) => Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3241                 }
3242         }
3243
3244         fn internal_shutdown(&self, counterparty_node_id: &PublicKey, their_features: &InitFeatures, msg: &msgs::Shutdown) -> Result<(), MsgHandleErrInternal> {
3245                 let mut dropped_htlcs: Vec<(HTLCSource, PaymentHash)>;
3246                 let result: Result<(), _> = loop {
3247                         let mut channel_state_lock = self.channel_state.lock().unwrap();
3248                         let channel_state = &mut *channel_state_lock;
3249
3250                         match channel_state.by_id.entry(msg.channel_id.clone()) {
3251                                 hash_map::Entry::Occupied(mut chan_entry) => {
3252                                         if chan_entry.get().get_counterparty_node_id() != *counterparty_node_id {
3253                                                 return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3254                                         }
3255
3256                                         let (shutdown, closing_signed, monitor_update, htlcs) = try_chan_entry!(self, chan_entry.get_mut().shutdown(&self.fee_estimator, &self.keys_manager, &their_features, &msg), channel_state, chan_entry);
3257                                         dropped_htlcs = htlcs;
3258
3259                                         // Update the monitor with the shutdown script if necessary.
3260                                         if let Some(monitor_update) = monitor_update {
3261                                                 if let Err(e) = self.chain_monitor.update_channel(chan_entry.get().get_funding_txo().unwrap(), monitor_update) {
3262                                                         let (result, is_permanent) =
3263                                                                 handle_monitor_err!(self, e, channel_state.short_to_id, chan_entry.get_mut(), RAACommitmentOrder::CommitmentFirst, false, false, Vec::new(), Vec::new(), chan_entry.key());
3264                                                         if is_permanent {
3265                                                                 remove_channel!(channel_state, chan_entry);
3266                                                                 break result;
3267                                                         }
3268                                                 }
3269                                         }
3270
3271                                         if let Some(msg) = shutdown {
3272                                                 channel_state.pending_msg_events.push(events::MessageSendEvent::SendShutdown {
3273                                                         node_id: *counterparty_node_id,
3274                                                         msg,
3275                                                 });
3276                                         }
3277                                         if let Some(msg) = closing_signed {
3278                                                 // TODO: Do not send this if the monitor update failed.
3279                                                 channel_state.pending_msg_events.push(events::MessageSendEvent::SendClosingSigned {
3280                                                         node_id: *counterparty_node_id,
3281                                                         msg,
3282                                                 });
3283                                         }
3284
3285                                         break Ok(());
3286                                 },
3287                                 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3288                         }
3289                 };
3290                 for htlc_source in dropped_htlcs.drain(..) {
3291                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), htlc_source.0, &htlc_source.1, HTLCFailReason::Reason { failure_code: 0x4000 | 8, data: Vec::new() });
3292                 }
3293
3294                 let _ = handle_error!(self, result, *counterparty_node_id);
3295                 Ok(())
3296         }
3297
3298         fn internal_closing_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::ClosingSigned) -> Result<(), MsgHandleErrInternal> {
3299                 let (tx, chan_option) = {
3300                         let mut channel_state_lock = self.channel_state.lock().unwrap();
3301                         let channel_state = &mut *channel_state_lock;
3302                         match channel_state.by_id.entry(msg.channel_id.clone()) {
3303                                 hash_map::Entry::Occupied(mut chan_entry) => {
3304                                         if chan_entry.get().get_counterparty_node_id() != *counterparty_node_id {
3305                                                 return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3306                                         }
3307                                         let (closing_signed, tx) = try_chan_entry!(self, chan_entry.get_mut().closing_signed(&self.fee_estimator, &msg), channel_state, chan_entry);
3308                                         if let Some(msg) = closing_signed {
3309                                                 channel_state.pending_msg_events.push(events::MessageSendEvent::SendClosingSigned {
3310                                                         node_id: counterparty_node_id.clone(),
3311                                                         msg,
3312                                                 });
3313                                         }
3314                                         if tx.is_some() {
3315                                                 // We're done with this channel, we've got a signed closing transaction and
3316                                                 // will send the closing_signed back to the remote peer upon return. This
3317                                                 // also implies there are no pending HTLCs left on the channel, so we can
3318                                                 // fully delete it from tracking (the channel monitor is still around to
3319                                                 // watch for old state broadcasts)!
3320                                                 if let Some(short_id) = chan_entry.get().get_short_channel_id() {
3321                                                         channel_state.short_to_id.remove(&short_id);
3322                                                 }
3323                                                 (tx, Some(chan_entry.remove_entry().1))
3324                                         } else { (tx, None) }
3325                                 },
3326                                 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3327                         }
3328                 };
3329                 if let Some(broadcast_tx) = tx {
3330                         log_info!(self.logger, "Broadcasting {}", log_tx!(broadcast_tx));
3331                         self.tx_broadcaster.broadcast_transaction(&broadcast_tx);
3332                 }
3333                 if let Some(chan) = chan_option {
3334                         if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
3335                                 let mut channel_state = self.channel_state.lock().unwrap();
3336                                 channel_state.pending_msg_events.push(events::MessageSendEvent::BroadcastChannelUpdate {
3337                                         msg: update
3338                                 });
3339                         }
3340                 }
3341                 Ok(())
3342         }
3343
3344         fn internal_update_add_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateAddHTLC) -> Result<(), MsgHandleErrInternal> {
3345                 //TODO: BOLT 4 points out a specific attack where a peer may re-send an onion packet and
3346                 //determine the state of the payment based on our response/if we forward anything/the time
3347                 //we take to respond. We should take care to avoid allowing such an attack.
3348                 //
3349                 //TODO: There exists a further attack where a node may garble the onion data, forward it to
3350                 //us repeatedly garbled in different ways, and compare our error messages, which are
3351                 //encrypted with the same key. It's not immediately obvious how to usefully exploit that,
3352                 //but we should prevent it anyway.
3353
3354                 let (pending_forward_info, mut channel_state_lock) = self.decode_update_add_htlc_onion(msg);
3355                 let channel_state = &mut *channel_state_lock;
3356
3357                 match channel_state.by_id.entry(msg.channel_id) {
3358                         hash_map::Entry::Occupied(mut chan) => {
3359                                 if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3360                                         return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3361                                 }
3362
3363                                 let create_pending_htlc_status = |chan: &Channel<Signer>, pending_forward_info: PendingHTLCStatus, error_code: u16| {
3364                                         // Ensure error_code has the UPDATE flag set, since by default we send a
3365                                         // channel update along as part of failing the HTLC.
3366                                         assert!((error_code & 0x1000) != 0);
3367                                         // If the update_add is completely bogus, the call will Err and we will close,
3368                                         // but if we've sent a shutdown and they haven't acknowledged it yet, we just
3369                                         // want to reject the new HTLC and fail it backwards instead of forwarding.
3370                                         match pending_forward_info {
3371                                                 PendingHTLCStatus::Forward(PendingHTLCInfo { ref incoming_shared_secret, .. }) => {
3372                                                         let reason = if let Ok(upd) = self.get_channel_update_for_unicast(chan) {
3373                                                                 onion_utils::build_first_hop_failure_packet(incoming_shared_secret, error_code, &{
3374                                                                         let mut res = Vec::with_capacity(8 + 128);
3375                                                                         // TODO: underspecified, follow https://github.com/lightningnetwork/lightning-rfc/issues/791
3376                                                                         res.extend_from_slice(&byte_utils::be16_to_array(0));
3377                                                                         res.extend_from_slice(&upd.encode_with_len()[..]);
3378                                                                         res
3379                                                                 }[..])
3380                                                         } else {
3381                                                                 // The only case where we'd be unable to
3382                                                                 // successfully get a channel update is if the
3383                                                                 // channel isn't in the fully-funded state yet,
3384                                                                 // implying our counterparty is trying to route
3385                                                                 // payments over the channel back to themselves
3386                                                                 // (cause no one else should know the short_id
3387                                                                 // is a lightning channel yet). We should have
3388                                                                 // no problem just calling this
3389                                                                 // unknown_next_peer (0x4000|10).
3390                                                                 onion_utils::build_first_hop_failure_packet(incoming_shared_secret, 0x4000|10, &[])
3391                                                         };
3392                                                         let msg = msgs::UpdateFailHTLC {
3393                                                                 channel_id: msg.channel_id,
3394                                                                 htlc_id: msg.htlc_id,
3395                                                                 reason
3396                                                         };
3397                                                         PendingHTLCStatus::Fail(HTLCFailureMsg::Relay(msg))
3398                                                 },
3399                                                 _ => pending_forward_info
3400                                         }
3401                                 };
3402                                 try_chan_entry!(self, chan.get_mut().update_add_htlc(&msg, pending_forward_info, create_pending_htlc_status, &self.logger), channel_state, chan);
3403                         },
3404                         hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3405                 }
3406                 Ok(())
3407         }
3408
3409         fn internal_update_fulfill_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFulfillHTLC) -> Result<(), MsgHandleErrInternal> {
3410                 let mut channel_lock = self.channel_state.lock().unwrap();
3411                 let (htlc_source, forwarded_htlc_value) = {
3412                         let channel_state = &mut *channel_lock;
3413                         match channel_state.by_id.entry(msg.channel_id) {
3414                                 hash_map::Entry::Occupied(mut chan) => {
3415                                         if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3416                                                 return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3417                                         }
3418                                         try_chan_entry!(self, chan.get_mut().update_fulfill_htlc(&msg), channel_state, chan)
3419                                 },
3420                                 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3421                         }
3422                 };
3423                 self.claim_funds_internal(channel_lock, htlc_source, msg.payment_preimage.clone(), Some(forwarded_htlc_value), false);
3424                 Ok(())
3425         }
3426
3427         fn internal_update_fail_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFailHTLC) -> Result<(), MsgHandleErrInternal> {
3428                 let mut channel_lock = self.channel_state.lock().unwrap();
3429                 let channel_state = &mut *channel_lock;
3430                 match channel_state.by_id.entry(msg.channel_id) {
3431                         hash_map::Entry::Occupied(mut chan) => {
3432                                 if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3433                                         return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3434                                 }
3435                                 try_chan_entry!(self, chan.get_mut().update_fail_htlc(&msg, HTLCFailReason::LightningError { err: msg.reason.clone() }), channel_state, chan);
3436                         },
3437                         hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3438                 }
3439                 Ok(())
3440         }
3441
3442         fn internal_update_fail_malformed_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFailMalformedHTLC) -> Result<(), MsgHandleErrInternal> {
3443                 let mut channel_lock = self.channel_state.lock().unwrap();
3444                 let channel_state = &mut *channel_lock;
3445                 match channel_state.by_id.entry(msg.channel_id) {
3446                         hash_map::Entry::Occupied(mut chan) => {
3447                                 if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3448                                         return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3449                                 }
3450                                 if (msg.failure_code & 0x8000) == 0 {
3451                                         let chan_err: ChannelError = ChannelError::Close("Got update_fail_malformed_htlc with BADONION not set".to_owned());
3452                                         try_chan_entry!(self, Err(chan_err), channel_state, chan);
3453                                 }
3454                                 try_chan_entry!(self, chan.get_mut().update_fail_malformed_htlc(&msg, HTLCFailReason::Reason { failure_code: msg.failure_code, data: Vec::new() }), channel_state, chan);
3455                                 Ok(())
3456                         },
3457                         hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3458                 }
3459         }
3460
3461         fn internal_commitment_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::CommitmentSigned) -> Result<(), MsgHandleErrInternal> {
3462                 let mut channel_state_lock = self.channel_state.lock().unwrap();
3463                 let channel_state = &mut *channel_state_lock;
3464                 match channel_state.by_id.entry(msg.channel_id) {
3465                         hash_map::Entry::Occupied(mut chan) => {
3466                                 if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3467                                         return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3468                                 }
3469                                 let (revoke_and_ack, commitment_signed, closing_signed, monitor_update) =
3470                                         match chan.get_mut().commitment_signed(&msg, &self.fee_estimator, &self.logger) {
3471                                                 Err((None, e)) => try_chan_entry!(self, Err(e), channel_state, chan),
3472                                                 Err((Some(update), e)) => {
3473                                                         assert!(chan.get().is_awaiting_monitor_update());
3474                                                         let _ = self.chain_monitor.update_channel(chan.get().get_funding_txo().unwrap(), update);
3475                                                         try_chan_entry!(self, Err(e), channel_state, chan);
3476                                                         unreachable!();
3477                                                 },
3478                                                 Ok(res) => res
3479                                         };
3480                                 if let Err(e) = self.chain_monitor.update_channel(chan.get().get_funding_txo().unwrap(), monitor_update) {
3481                                         return_monitor_err!(self, e, channel_state, chan, RAACommitmentOrder::RevokeAndACKFirst, true, commitment_signed.is_some());
3482                                         //TODO: Rebroadcast closing_signed if present on monitor update restoration
3483                                 }
3484                                 channel_state.pending_msg_events.push(events::MessageSendEvent::SendRevokeAndACK {
3485                                         node_id: counterparty_node_id.clone(),
3486                                         msg: revoke_and_ack,
3487                                 });
3488                                 if let Some(msg) = commitment_signed {
3489                                         channel_state.pending_msg_events.push(events::MessageSendEvent::UpdateHTLCs {
3490                                                 node_id: counterparty_node_id.clone(),
3491                                                 updates: msgs::CommitmentUpdate {
3492                                                         update_add_htlcs: Vec::new(),
3493                                                         update_fulfill_htlcs: Vec::new(),
3494                                                         update_fail_htlcs: Vec::new(),
3495                                                         update_fail_malformed_htlcs: Vec::new(),
3496                                                         update_fee: None,
3497                                                         commitment_signed: msg,
3498                                                 },
3499                                         });
3500                                 }
3501                                 if let Some(msg) = closing_signed {
3502                                         channel_state.pending_msg_events.push(events::MessageSendEvent::SendClosingSigned {
3503                                                 node_id: counterparty_node_id.clone(),
3504                                                 msg,
3505                                         });
3506                                 }
3507                                 Ok(())
3508                         },
3509                         hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3510                 }
3511         }
3512
3513         #[inline]
3514         fn forward_htlcs(&self, per_source_pending_forwards: &mut [(u64, OutPoint, Vec<(PendingHTLCInfo, u64)>)]) {
3515                 for &mut (prev_short_channel_id, prev_funding_outpoint, ref mut pending_forwards) in per_source_pending_forwards {
3516                         let mut forward_event = None;
3517                         if !pending_forwards.is_empty() {
3518                                 let mut channel_state = self.channel_state.lock().unwrap();
3519                                 if channel_state.forward_htlcs.is_empty() {
3520                                         forward_event = Some(Duration::from_millis(MIN_HTLC_RELAY_HOLDING_CELL_MILLIS))
3521                                 }
3522                                 for (forward_info, prev_htlc_id) in pending_forwards.drain(..) {
3523                                         match channel_state.forward_htlcs.entry(match forward_info.routing {
3524                                                         PendingHTLCRouting::Forward { short_channel_id, .. } => short_channel_id,
3525                                                         PendingHTLCRouting::Receive { .. } => 0,
3526                                                         PendingHTLCRouting::ReceiveKeysend { .. } => 0,
3527                                         }) {
3528                                                 hash_map::Entry::Occupied(mut entry) => {
3529                                                         entry.get_mut().push(HTLCForwardInfo::AddHTLC { prev_short_channel_id, prev_funding_outpoint,
3530                                                                                                         prev_htlc_id, forward_info });
3531                                                 },
3532                                                 hash_map::Entry::Vacant(entry) => {
3533                                                         entry.insert(vec!(HTLCForwardInfo::AddHTLC { prev_short_channel_id, prev_funding_outpoint,
3534                                                                                                      prev_htlc_id, forward_info }));
3535                                                 }
3536                                         }
3537                                 }
3538                         }
3539                         match forward_event {
3540                                 Some(time) => {
3541                                         let mut pending_events = self.pending_events.lock().unwrap();
3542                                         pending_events.push(events::Event::PendingHTLCsForwardable {
3543                                                 time_forwardable: time
3544                                         });
3545                                 }
3546                                 None => {},
3547                         }
3548                 }
3549         }
3550
3551         fn internal_revoke_and_ack(&self, counterparty_node_id: &PublicKey, msg: &msgs::RevokeAndACK) -> Result<(), MsgHandleErrInternal> {
3552                 let mut htlcs_to_fail = Vec::new();
3553                 let res = loop {
3554                         let mut channel_state_lock = self.channel_state.lock().unwrap();
3555                         let channel_state = &mut *channel_state_lock;
3556                         match channel_state.by_id.entry(msg.channel_id) {
3557                                 hash_map::Entry::Occupied(mut chan) => {
3558                                         if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3559                                                 break Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3560                                         }
3561                                         let was_frozen_for_monitor = chan.get().is_awaiting_monitor_update();
3562                                         let (commitment_update, pending_forwards, pending_failures, closing_signed, monitor_update, htlcs_to_fail_in) =
3563                                                 break_chan_entry!(self, chan.get_mut().revoke_and_ack(&msg, &self.fee_estimator, &self.logger), channel_state, chan);
3564                                         htlcs_to_fail = htlcs_to_fail_in;
3565                                         if let Err(e) = self.chain_monitor.update_channel(chan.get().get_funding_txo().unwrap(), monitor_update) {
3566                                                 if was_frozen_for_monitor {
3567                                                         assert!(commitment_update.is_none() && closing_signed.is_none() && pending_forwards.is_empty() && pending_failures.is_empty());
3568                                                         break Err(MsgHandleErrInternal::ignore_no_close("Previous monitor update failure prevented responses to RAA".to_owned()));
3569                                                 } else {
3570                                                         if let Err(e) = handle_monitor_err!(self, e, channel_state, chan, RAACommitmentOrder::CommitmentFirst, false, commitment_update.is_some(), pending_forwards, pending_failures) {
3571                                                                 break Err(e);
3572                                                         } else { unreachable!(); }
3573                                                 }
3574                                         }
3575                                         if let Some(updates) = commitment_update {
3576                                                 channel_state.pending_msg_events.push(events::MessageSendEvent::UpdateHTLCs {
3577                                                         node_id: counterparty_node_id.clone(),
3578                                                         updates,
3579                                                 });
3580                                         }
3581                                         if let Some(msg) = closing_signed {
3582                                                 channel_state.pending_msg_events.push(events::MessageSendEvent::SendClosingSigned {
3583                                                         node_id: counterparty_node_id.clone(),
3584                                                         msg,
3585                                                 });
3586                                         }
3587                                         break Ok((pending_forwards, pending_failures, chan.get().get_short_channel_id().expect("RAA should only work on a short-id-available channel"), chan.get().get_funding_txo().unwrap()))
3588                                 },
3589                                 hash_map::Entry::Vacant(_) => break Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3590                         }
3591                 };
3592                 self.fail_holding_cell_htlcs(htlcs_to_fail, msg.channel_id);
3593                 match res {
3594                         Ok((pending_forwards, mut pending_failures, short_channel_id, channel_outpoint)) => {
3595                                 for failure in pending_failures.drain(..) {
3596                                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), failure.0, &failure.1, failure.2);
3597                                 }
3598                                 self.forward_htlcs(&mut [(short_channel_id, channel_outpoint, pending_forwards)]);
3599                                 Ok(())
3600                         },
3601                         Err(e) => Err(e)
3602                 }
3603         }
3604
3605         fn internal_update_fee(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFee) -> Result<(), MsgHandleErrInternal> {
3606                 let mut channel_lock = self.channel_state.lock().unwrap();
3607                 let channel_state = &mut *channel_lock;
3608                 match channel_state.by_id.entry(msg.channel_id) {
3609                         hash_map::Entry::Occupied(mut chan) => {
3610                                 if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3611                                         return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3612                                 }
3613                                 try_chan_entry!(self, chan.get_mut().update_fee(&self.fee_estimator, &msg), channel_state, chan);
3614                         },
3615                         hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3616                 }
3617                 Ok(())
3618         }
3619
3620         fn internal_announcement_signatures(&self, counterparty_node_id: &PublicKey, msg: &msgs::AnnouncementSignatures) -> Result<(), MsgHandleErrInternal> {
3621                 let mut channel_state_lock = self.channel_state.lock().unwrap();
3622                 let channel_state = &mut *channel_state_lock;
3623
3624                 match channel_state.by_id.entry(msg.channel_id) {
3625                         hash_map::Entry::Occupied(mut chan) => {
3626                                 if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3627                                         return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3628                                 }
3629                                 if !chan.get().is_usable() {
3630                                         return Err(MsgHandleErrInternal::from_no_close(LightningError{err: "Got an announcement_signatures before we were ready for it".to_owned(), action: msgs::ErrorAction::IgnoreError}));
3631                                 }
3632
3633                                 channel_state.pending_msg_events.push(events::MessageSendEvent::BroadcastChannelAnnouncement {
3634                                         msg: try_chan_entry!(self, chan.get_mut().announcement_signatures(&self.our_network_key, self.get_our_node_id(), self.genesis_hash.clone(), msg), channel_state, chan),
3635                                         // Note that announcement_signatures fails if the channel cannot be announced,
3636                                         // so get_channel_update_for_broadcast will never fail by the time we get here.
3637                                         update_msg: self.get_channel_update_for_broadcast(chan.get()).unwrap(),
3638                                 });
3639                         },
3640                         hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3641                 }
3642                 Ok(())
3643         }
3644
3645         /// Returns ShouldPersist if anything changed, otherwise either SkipPersist or an Err.
3646         fn internal_channel_update(&self, counterparty_node_id: &PublicKey, msg: &msgs::ChannelUpdate) -> Result<NotifyOption, MsgHandleErrInternal> {
3647                 let mut channel_state_lock = self.channel_state.lock().unwrap();
3648                 let channel_state = &mut *channel_state_lock;
3649                 let chan_id = match channel_state.short_to_id.get(&msg.contents.short_channel_id) {
3650                         Some(chan_id) => chan_id.clone(),
3651                         None => {
3652                                 // It's not a local channel
3653                                 return Ok(NotifyOption::SkipPersist)
3654                         }
3655                 };
3656                 match channel_state.by_id.entry(chan_id) {
3657                         hash_map::Entry::Occupied(mut chan) => {
3658                                 if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3659                                         if chan.get().should_announce() {
3660                                                 // If the announcement is about a channel of ours which is public, some
3661                                                 // other peer may simply be forwarding all its gossip to us. Don't provide
3662                                                 // a scary-looking error message and return Ok instead.
3663                                                 return Ok(NotifyOption::SkipPersist);
3664                                         }
3665                                         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));
3666                                 }
3667                                 let were_node_one = self.get_our_node_id().serialize()[..] < chan.get().get_counterparty_node_id().serialize()[..];
3668                                 let msg_from_node_one = msg.contents.flags & 1 == 0;
3669                                 if were_node_one == msg_from_node_one {
3670                                         return Ok(NotifyOption::SkipPersist);
3671                                 } else {
3672                                         try_chan_entry!(self, chan.get_mut().channel_update(&msg), channel_state, chan);
3673                                 }
3674                         },
3675                         hash_map::Entry::Vacant(_) => unreachable!()
3676                 }
3677                 Ok(NotifyOption::DoPersist)
3678         }
3679
3680         fn internal_channel_reestablish(&self, counterparty_node_id: &PublicKey, msg: &msgs::ChannelReestablish) -> Result<(), MsgHandleErrInternal> {
3681                 let chan_restoration_res;
3682                 let (htlcs_failed_forward, need_lnd_workaround) = {
3683                         let mut channel_state_lock = self.channel_state.lock().unwrap();
3684                         let channel_state = &mut *channel_state_lock;
3685
3686                         match channel_state.by_id.entry(msg.channel_id) {
3687                                 hash_map::Entry::Occupied(mut chan) => {
3688                                         if chan.get().get_counterparty_node_id() != *counterparty_node_id {
3689                                                 return Err(MsgHandleErrInternal::send_err_msg_no_close("Got a message for a channel from the wrong node!".to_owned(), msg.channel_id));
3690                                         }
3691                                         // Currently, we expect all holding cell update_adds to be dropped on peer
3692                                         // disconnect, so Channel's reestablish will never hand us any holding cell
3693                                         // freed HTLCs to fail backwards. If in the future we no longer drop pending
3694                                         // add-HTLCs on disconnect, we may be handed HTLCs to fail backwards here.
3695                                         let (funding_locked, revoke_and_ack, commitment_update, monitor_update_opt, order, htlcs_failed_forward, shutdown) =
3696                                                 try_chan_entry!(self, chan.get_mut().channel_reestablish(msg, &self.logger), channel_state, chan);
3697                                         let mut channel_update = None;
3698                                         if let Some(msg) = shutdown {
3699                                                 channel_state.pending_msg_events.push(events::MessageSendEvent::SendShutdown {
3700                                                         node_id: counterparty_node_id.clone(),
3701                                                         msg,
3702                                                 });
3703                                         } else if chan.get().is_usable() {
3704                                                 // If the channel is in a usable state (ie the channel is not being shut
3705                                                 // down), send a unicast channel_update to our counterparty to make sure
3706                                                 // they have the latest channel parameters.
3707                                                 channel_update = Some(events::MessageSendEvent::SendChannelUpdate {
3708                                                         node_id: chan.get().get_counterparty_node_id(),
3709                                                         msg: self.get_channel_update_for_unicast(chan.get()).unwrap(),
3710                                                 });
3711                                         }
3712                                         let need_lnd_workaround = chan.get_mut().workaround_lnd_bug_4006.take();
3713                                         chan_restoration_res = handle_chan_restoration_locked!(self, channel_state_lock, channel_state, chan, revoke_and_ack, commitment_update, order, monitor_update_opt, Vec::new(), None, funding_locked);
3714                                         if let Some(upd) = channel_update {
3715                                                 channel_state.pending_msg_events.push(upd);
3716                                         }
3717                                         (htlcs_failed_forward, need_lnd_workaround)
3718                                 },
3719                                 hash_map::Entry::Vacant(_) => return Err(MsgHandleErrInternal::send_err_msg_no_close("Failed to find corresponding channel".to_owned(), msg.channel_id))
3720                         }
3721                 };
3722                 post_handle_chan_restoration!(self, chan_restoration_res);
3723                 self.fail_holding_cell_htlcs(htlcs_failed_forward, msg.channel_id);
3724
3725                 if let Some(funding_locked_msg) = need_lnd_workaround {
3726                         self.internal_funding_locked(counterparty_node_id, &funding_locked_msg)?;
3727                 }
3728                 Ok(())
3729         }
3730
3731         /// Begin Update fee process. Allowed only on an outbound channel.
3732         /// If successful, will generate a UpdateHTLCs event, so you should probably poll
3733         /// PeerManager::process_events afterwards.
3734         /// Note: This API is likely to change!
3735         /// (C-not exported) Cause its doc(hidden) anyway
3736         #[doc(hidden)]
3737         pub fn update_fee(&self, channel_id: [u8;32], feerate_per_kw: u32) -> Result<(), APIError> {
3738                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
3739                 let counterparty_node_id;
3740                 let err: Result<(), _> = loop {
3741                         let mut channel_state_lock = self.channel_state.lock().unwrap();
3742                         let channel_state = &mut *channel_state_lock;
3743
3744                         match channel_state.by_id.entry(channel_id) {
3745                                 hash_map::Entry::Vacant(_) => return Err(APIError::APIMisuseError{err: format!("Failed to find corresponding channel for id {}", channel_id.to_hex())}),
3746                                 hash_map::Entry::Occupied(mut chan) => {
3747                                         if !chan.get().is_outbound() {
3748                                                 return Err(APIError::APIMisuseError{err: "update_fee cannot be sent for an inbound channel".to_owned()});
3749                                         }
3750                                         if chan.get().is_awaiting_monitor_update() {
3751                                                 return Err(APIError::MonitorUpdateFailed);
3752                                         }
3753                                         if !chan.get().is_live() {
3754                                                 return Err(APIError::ChannelUnavailable{err: "Channel is either not yet fully established or peer is currently disconnected".to_owned()});
3755                                         }
3756                                         counterparty_node_id = chan.get().get_counterparty_node_id();
3757                                         if let Some((update_fee, commitment_signed, monitor_update)) =
3758                                                         break_chan_entry!(self, chan.get_mut().send_update_fee_and_commit(feerate_per_kw, &self.logger), channel_state, chan)
3759                                         {
3760                                                 if let Err(_e) = self.chain_monitor.update_channel(chan.get().get_funding_txo().unwrap(), monitor_update) {
3761                                                         unimplemented!();
3762                                                 }
3763                                                 log_debug!(self.logger, "Updating fee resulted in a commitment_signed for channel {}", log_bytes!(chan.get().channel_id()));
3764                                                 channel_state.pending_msg_events.push(events::MessageSendEvent::UpdateHTLCs {
3765                                                         node_id: chan.get().get_counterparty_node_id(),
3766                                                         updates: msgs::CommitmentUpdate {
3767                                                                 update_add_htlcs: Vec::new(),
3768                                                                 update_fulfill_htlcs: Vec::new(),
3769                                                                 update_fail_htlcs: Vec::new(),
3770                                                                 update_fail_malformed_htlcs: Vec::new(),
3771                                                                 update_fee: Some(update_fee),
3772                                                                 commitment_signed,
3773                                                         },
3774                                                 });
3775                                         }
3776                                 },
3777                         }
3778                         return Ok(())
3779                 };
3780
3781                 match handle_error!(self, err, counterparty_node_id) {
3782                         Ok(_) => unreachable!(),
3783                         Err(e) => { Err(APIError::APIMisuseError { err: e.err })}
3784                 }
3785         }
3786
3787         /// Process pending events from the `chain::Watch`, returning whether any events were processed.
3788         fn process_pending_monitor_events(&self) -> bool {
3789                 let mut failed_channels = Vec::new();
3790                 let mut pending_monitor_events = self.chain_monitor.release_pending_monitor_events();
3791                 let has_pending_monitor_events = !pending_monitor_events.is_empty();
3792                 for monitor_event in pending_monitor_events.drain(..) {
3793                         match monitor_event {
3794                                 MonitorEvent::HTLCEvent(htlc_update) => {
3795                                         if let Some(preimage) = htlc_update.payment_preimage {
3796                                                 log_trace!(self.logger, "Claiming HTLC with preimage {} from our monitor", log_bytes!(preimage.0));
3797                                                 self.claim_funds_internal(self.channel_state.lock().unwrap(), htlc_update.source, preimage, htlc_update.onchain_value_satoshis.map(|v| v * 1000), true);
3798                                         } else {
3799                                                 log_trace!(self.logger, "Failing HTLC with hash {} from our monitor", log_bytes!(htlc_update.payment_hash.0));
3800                                                 self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), htlc_update.source, &htlc_update.payment_hash, HTLCFailReason::Reason { failure_code: 0x4000 | 8, data: Vec::new() });
3801                                         }
3802                                 },
3803                                 MonitorEvent::CommitmentTxBroadcasted(funding_outpoint) => {
3804                                         let mut channel_lock = self.channel_state.lock().unwrap();
3805                                         let channel_state = &mut *channel_lock;
3806                                         let by_id = &mut channel_state.by_id;
3807                                         let short_to_id = &mut channel_state.short_to_id;
3808                                         let pending_msg_events = &mut channel_state.pending_msg_events;
3809                                         if let Some(mut chan) = by_id.remove(&funding_outpoint.to_channel_id()) {
3810                                                 if let Some(short_id) = chan.get_short_channel_id() {
3811                                                         short_to_id.remove(&short_id);
3812                                                 }
3813                                                 failed_channels.push(chan.force_shutdown(false));
3814                                                 if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
3815                                                         pending_msg_events.push(events::MessageSendEvent::BroadcastChannelUpdate {
3816                                                                 msg: update
3817                                                         });
3818                                                 }
3819                                                 pending_msg_events.push(events::MessageSendEvent::HandleError {
3820                                                         node_id: chan.get_counterparty_node_id(),
3821                                                         action: msgs::ErrorAction::SendErrorMessage {
3822                                                                 msg: msgs::ErrorMessage { channel_id: chan.channel_id(), data: "Channel force-closed".to_owned() }
3823                                                         },
3824                                                 });
3825                                         }
3826                                 },
3827                         }
3828                 }
3829
3830                 for failure in failed_channels.drain(..) {
3831                         self.finish_force_close_channel(failure);
3832                 }
3833
3834                 has_pending_monitor_events
3835         }
3836
3837         /// Check the holding cell in each channel and free any pending HTLCs in them if possible.
3838         /// Returns whether there were any updates such as if pending HTLCs were freed or a monitor
3839         /// update was applied.
3840         ///
3841         /// This should only apply to HTLCs which were added to the holding cell because we were
3842         /// waiting on a monitor update to finish. In that case, we don't want to free the holding cell
3843         /// directly in `channel_monitor_updated` as it may introduce deadlocks calling back into user
3844         /// code to inform them of a channel monitor update.
3845         fn check_free_holding_cells(&self) -> bool {
3846                 let mut has_monitor_update = false;
3847                 let mut failed_htlcs = Vec::new();
3848                 let mut handle_errors = Vec::new();
3849                 {
3850                         let mut channel_state_lock = self.channel_state.lock().unwrap();
3851                         let channel_state = &mut *channel_state_lock;
3852                         let by_id = &mut channel_state.by_id;
3853                         let short_to_id = &mut channel_state.short_to_id;
3854                         let pending_msg_events = &mut channel_state.pending_msg_events;
3855
3856                         by_id.retain(|channel_id, chan| {
3857                                 match chan.maybe_free_holding_cell_htlcs(&self.logger) {
3858                                         Ok((commitment_opt, holding_cell_failed_htlcs)) => {
3859                                                 if !holding_cell_failed_htlcs.is_empty() {
3860                                                         failed_htlcs.push((holding_cell_failed_htlcs, *channel_id));
3861                                                 }
3862                                                 if let Some((commitment_update, monitor_update)) = commitment_opt {
3863                                                         if let Err(e) = self.chain_monitor.update_channel(chan.get_funding_txo().unwrap(), monitor_update) {
3864                                                                 has_monitor_update = true;
3865                                                                 let (res, close_channel) = handle_monitor_err!(self, e, short_to_id, chan, RAACommitmentOrder::CommitmentFirst, false, true, Vec::new(), Vec::new(), channel_id);
3866                                                                 handle_errors.push((chan.get_counterparty_node_id(), res));
3867                                                                 if close_channel { return false; }
3868                                                         } else {
3869                                                                 pending_msg_events.push(events::MessageSendEvent::UpdateHTLCs {
3870                                                                         node_id: chan.get_counterparty_node_id(),
3871                                                                         updates: commitment_update,
3872                                                                 });
3873                                                         }
3874                                                 }
3875                                                 true
3876                                         },
3877                                         Err(e) => {
3878                                                 let (close_channel, res) = convert_chan_err!(self, e, short_to_id, chan, channel_id);
3879                                                 handle_errors.push((chan.get_counterparty_node_id(), Err(res)));
3880                                                 !close_channel
3881                                         }
3882                                 }
3883                         });
3884                 }
3885
3886                 let has_update = has_monitor_update || !failed_htlcs.is_empty();
3887                 for (failures, channel_id) in failed_htlcs.drain(..) {
3888                         self.fail_holding_cell_htlcs(failures, channel_id);
3889                 }
3890
3891                 for (counterparty_node_id, err) in handle_errors.drain(..) {
3892                         let _ = handle_error!(self, err, counterparty_node_id);
3893                 }
3894
3895                 has_update
3896         }
3897
3898         /// Handle a list of channel failures during a block_connected or block_disconnected call,
3899         /// pushing the channel monitor update (if any) to the background events queue and removing the
3900         /// Channel object.
3901         fn handle_init_event_channel_failures(&self, mut failed_channels: Vec<ShutdownResult>) {
3902                 for mut failure in failed_channels.drain(..) {
3903                         // Either a commitment transactions has been confirmed on-chain or
3904                         // Channel::block_disconnected detected that the funding transaction has been
3905                         // reorganized out of the main chain.
3906                         // We cannot broadcast our latest local state via monitor update (as
3907                         // Channel::force_shutdown tries to make us do) as we may still be in initialization,
3908                         // so we track the update internally and handle it when the user next calls
3909                         // timer_tick_occurred, guaranteeing we're running normally.
3910                         if let Some((funding_txo, update)) = failure.0.take() {
3911                                 assert_eq!(update.updates.len(), 1);
3912                                 if let ChannelMonitorUpdateStep::ChannelForceClosed { should_broadcast } = update.updates[0] {
3913                                         assert!(should_broadcast);
3914                                 } else { unreachable!(); }
3915                                 self.pending_background_events.lock().unwrap().push(BackgroundEvent::ClosingMonitorUpdate((funding_txo, update)));
3916                         }
3917                         self.finish_force_close_channel(failure);
3918                 }
3919         }
3920
3921         fn set_payment_hash_secret_map(&self, payment_hash: PaymentHash, payment_preimage: Option<PaymentPreimage>, min_value_msat: Option<u64>, invoice_expiry_delta_secs: u32, user_payment_id: u64) -> Result<PaymentSecret, APIError> {
3922                 assert!(invoice_expiry_delta_secs <= 60*60*24*365); // Sadly bitcoin timestamps are u32s, so panic before 2106
3923
3924                 let payment_secret = PaymentSecret(self.keys_manager.get_secure_random_bytes());
3925
3926                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
3927                 let mut payment_secrets = self.pending_inbound_payments.lock().unwrap();
3928                 match payment_secrets.entry(payment_hash) {
3929                         hash_map::Entry::Vacant(e) => {
3930                                 e.insert(PendingInboundPayment {
3931                                         payment_secret, min_value_msat, user_payment_id, payment_preimage,
3932                                         // We assume that highest_seen_timestamp is pretty close to the current time -
3933                                         // its updated when we receive a new block with the maximum time we've seen in
3934                                         // a header. It should never be more than two hours in the future.
3935                                         // Thus, we add two hours here as a buffer to ensure we absolutely
3936                                         // never fail a payment too early.
3937                                         // Note that we assume that received blocks have reasonably up-to-date
3938                                         // timestamps.
3939                                         expiry_time: self.highest_seen_timestamp.load(Ordering::Acquire) as u64 + invoice_expiry_delta_secs as u64 + 7200,
3940                                 });
3941                         },
3942                         hash_map::Entry::Occupied(_) => return Err(APIError::APIMisuseError { err: "Duplicate payment hash".to_owned() }),
3943                 }
3944                 Ok(payment_secret)
3945         }
3946
3947         /// Gets a payment secret and payment hash for use in an invoice given to a third party wishing
3948         /// to pay us.
3949         ///
3950         /// This differs from [`create_inbound_payment_for_hash`] only in that it generates the
3951         /// [`PaymentHash`] and [`PaymentPreimage`] for you, returning the first and storing the second.
3952         ///
3953         /// The [`PaymentPreimage`] will ultimately be returned to you in the [`PaymentReceived`], which
3954         /// will have the [`PaymentReceived::payment_preimage`] field filled in. That should then be
3955         /// passed directly to [`claim_funds`].
3956         ///
3957         /// See [`create_inbound_payment_for_hash`] for detailed documentation on behavior and requirements.
3958         ///
3959         /// [`claim_funds`]: Self::claim_funds
3960         /// [`PaymentReceived`]: events::Event::PaymentReceived
3961         /// [`PaymentReceived::payment_preimage`]: events::Event::PaymentReceived::payment_preimage
3962         /// [`create_inbound_payment_for_hash`]: Self::create_inbound_payment_for_hash
3963         pub fn create_inbound_payment(&self, min_value_msat: Option<u64>, invoice_expiry_delta_secs: u32, user_payment_id: u64) -> (PaymentHash, PaymentSecret) {
3964                 let payment_preimage = PaymentPreimage(self.keys_manager.get_secure_random_bytes());
3965                 let payment_hash = PaymentHash(Sha256::hash(&payment_preimage.0).into_inner());
3966
3967                 (payment_hash,
3968                         self.set_payment_hash_secret_map(payment_hash, Some(payment_preimage), min_value_msat, invoice_expiry_delta_secs, user_payment_id)
3969                                 .expect("RNG Generated Duplicate PaymentHash"))
3970         }
3971
3972         /// Gets a [`PaymentSecret`] for a given [`PaymentHash`], for which the payment preimage is
3973         /// stored external to LDK.
3974         ///
3975         /// A [`PaymentReceived`] event will only be generated if the [`PaymentSecret`] matches a
3976         /// payment secret fetched via this method or [`create_inbound_payment`], and which is at least
3977         /// the `min_value_msat` provided here, if one is provided.
3978         ///
3979         /// The [`PaymentHash`] (and corresponding [`PaymentPreimage`]) must be globally unique. This
3980         /// method may return an Err if another payment with the same payment_hash is still pending.
3981         ///
3982         /// `user_payment_id` will be provided back in [`PaymentPurpose::InvoicePayment::user_payment_id`] events to
3983         /// allow tracking of which events correspond with which calls to this and
3984         /// [`create_inbound_payment`]. `user_payment_id` has no meaning inside of LDK, it is simply
3985         /// copied to events and otherwise ignored. It may be used to correlate PaymentReceived events
3986         /// with invoice metadata stored elsewhere.
3987         ///
3988         /// `min_value_msat` should be set if the invoice being generated contains a value. Any payment
3989         /// received for the returned [`PaymentHash`] will be required to be at least `min_value_msat`
3990         /// before a [`PaymentReceived`] event will be generated, ensuring that we do not provide the
3991         /// sender "proof-of-payment" unless they have paid the required amount.
3992         ///
3993         /// `invoice_expiry_delta_secs` describes the number of seconds that the invoice is valid for
3994         /// in excess of the current time. This should roughly match the expiry time set in the invoice.
3995         /// After this many seconds, we will remove the inbound payment, resulting in any attempts to
3996         /// pay the invoice failing. The BOLT spec suggests 3,600 secs as a default validity time for
3997         /// invoices when no timeout is set.
3998         ///
3999         /// Note that we use block header time to time-out pending inbound payments (with some margin
4000         /// to compensate for the inaccuracy of block header timestamps). Thus, in practice we will
4001         /// accept a payment and generate a [`PaymentReceived`] event for some time after the expiry.
4002         /// If you need exact expiry semantics, you should enforce them upon receipt of
4003         /// [`PaymentReceived`].
4004         ///
4005         /// Pending inbound payments are stored in memory and in serialized versions of this
4006         /// [`ChannelManager`]. If potentially unbounded numbers of inbound payments may exist and
4007         /// space is limited, you may wish to rate-limit inbound payment creation.
4008         ///
4009         /// May panic if `invoice_expiry_delta_secs` is greater than one year.
4010         ///
4011         /// Note that invoices generated for inbound payments should have their `min_final_cltv_expiry`
4012         /// set to at least [`MIN_FINAL_CLTV_EXPIRY`].
4013         ///
4014         /// [`create_inbound_payment`]: Self::create_inbound_payment
4015         /// [`PaymentReceived`]: events::Event::PaymentReceived
4016         /// [`PaymentPurpose::InvoicePayment::user_payment_id`]: events::PaymentPurpose::InvoicePayment::user_payment_id
4017         pub fn create_inbound_payment_for_hash(&self, payment_hash: PaymentHash, min_value_msat: Option<u64>, invoice_expiry_delta_secs: u32, user_payment_id: u64) -> Result<PaymentSecret, APIError> {
4018                 self.set_payment_hash_secret_map(payment_hash, None, min_value_msat, invoice_expiry_delta_secs, user_payment_id)
4019         }
4020
4021         #[cfg(any(test, feature = "fuzztarget", feature = "_test_utils"))]
4022         pub fn get_and_clear_pending_events(&self) -> Vec<events::Event> {
4023                 let events = core::cell::RefCell::new(Vec::new());
4024                 let event_handler = |event| events.borrow_mut().push(event);
4025                 self.process_pending_events(&event_handler);
4026                 events.into_inner()
4027         }
4028 }
4029
4030 impl<Signer: Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref> MessageSendEventsProvider for ChannelManager<Signer, M, T, K, F, L>
4031         where M::Target: chain::Watch<Signer>,
4032         T::Target: BroadcasterInterface,
4033         K::Target: KeysInterface<Signer = Signer>,
4034         F::Target: FeeEstimator,
4035                                 L::Target: Logger,
4036 {
4037         fn get_and_clear_pending_msg_events(&self) -> Vec<MessageSendEvent> {
4038                 let events = RefCell::new(Vec::new());
4039                 PersistenceNotifierGuard::optionally_notify(&self.total_consistency_lock, &self.persistence_notifier, || {
4040                         let mut result = NotifyOption::SkipPersist;
4041
4042                         // TODO: This behavior should be documented. It's unintuitive that we query
4043                         // ChannelMonitors when clearing other events.
4044                         if self.process_pending_monitor_events() {
4045                                 result = NotifyOption::DoPersist;
4046                         }
4047
4048                         if self.check_free_holding_cells() {
4049                                 result = NotifyOption::DoPersist;
4050                         }
4051
4052                         let mut pending_events = Vec::new();
4053                         let mut channel_state = self.channel_state.lock().unwrap();
4054                         mem::swap(&mut pending_events, &mut channel_state.pending_msg_events);
4055
4056                         if !pending_events.is_empty() {
4057                                 events.replace(pending_events);
4058                         }
4059
4060                         result
4061                 });
4062                 events.into_inner()
4063         }
4064 }
4065
4066 impl<Signer: Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref> EventsProvider for ChannelManager<Signer, M, T, K, F, L>
4067 where
4068         M::Target: chain::Watch<Signer>,
4069         T::Target: BroadcasterInterface,
4070         K::Target: KeysInterface<Signer = Signer>,
4071         F::Target: FeeEstimator,
4072         L::Target: Logger,
4073 {
4074         /// Processes events that must be periodically handled.
4075         ///
4076         /// An [`EventHandler`] may safely call back to the provider in order to handle an event.
4077         /// However, it must not call [`Writeable::write`] as doing so would result in a deadlock.
4078         ///
4079         /// Pending events are persisted as part of [`ChannelManager`]. While these events are cleared
4080         /// when processed, an [`EventHandler`] must be able to handle previously seen events when
4081         /// restarting from an old state.
4082         fn process_pending_events<H: Deref>(&self, handler: H) where H::Target: EventHandler {
4083                 PersistenceNotifierGuard::optionally_notify(&self.total_consistency_lock, &self.persistence_notifier, || {
4084                         let mut result = NotifyOption::SkipPersist;
4085
4086                         // TODO: This behavior should be documented. It's unintuitive that we query
4087                         // ChannelMonitors when clearing other events.
4088                         if self.process_pending_monitor_events() {
4089                                 result = NotifyOption::DoPersist;
4090                         }
4091
4092                         let mut pending_events = mem::replace(&mut *self.pending_events.lock().unwrap(), vec![]);
4093                         if !pending_events.is_empty() {
4094                                 result = NotifyOption::DoPersist;
4095                         }
4096
4097                         for event in pending_events.drain(..) {
4098                                 handler.handle_event(event);
4099                         }
4100
4101                         result
4102                 });
4103         }
4104 }
4105
4106 impl<Signer: Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref> chain::Listen for ChannelManager<Signer, M, T, K, F, L>
4107 where
4108         M::Target: chain::Watch<Signer>,
4109         T::Target: BroadcasterInterface,
4110         K::Target: KeysInterface<Signer = Signer>,
4111         F::Target: FeeEstimator,
4112         L::Target: Logger,
4113 {
4114         fn block_connected(&self, block: &Block, height: u32) {
4115                 {
4116                         let best_block = self.best_block.read().unwrap();
4117                         assert_eq!(best_block.block_hash(), block.header.prev_blockhash,
4118                                 "Blocks must be connected in chain-order - the connected header must build on the last connected header");
4119                         assert_eq!(best_block.height(), height - 1,
4120                                 "Blocks must be connected in chain-order - the connected block height must be one greater than the previous height");
4121                 }
4122
4123                 let txdata: Vec<_> = block.txdata.iter().enumerate().collect();
4124                 self.transactions_confirmed(&block.header, &txdata, height);
4125                 self.best_block_updated(&block.header, height);
4126         }
4127
4128         fn block_disconnected(&self, header: &BlockHeader, height: u32) {
4129                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4130                 let new_height = height - 1;
4131                 {
4132                         let mut best_block = self.best_block.write().unwrap();
4133                         assert_eq!(best_block.block_hash(), header.block_hash(),
4134                                 "Blocks must be disconnected in chain-order - the disconnected header must be the last connected header");
4135                         assert_eq!(best_block.height(), height,
4136                                 "Blocks must be disconnected in chain-order - the disconnected block must have the correct height");
4137                         *best_block = BestBlock::new(header.prev_blockhash, new_height)
4138                 }
4139
4140                 self.do_chain_event(Some(new_height), |channel| channel.best_block_updated(new_height, header.time, &self.logger));
4141         }
4142 }
4143
4144 impl<Signer: Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref> chain::Confirm for ChannelManager<Signer, M, T, K, F, L>
4145 where
4146         M::Target: chain::Watch<Signer>,
4147         T::Target: BroadcasterInterface,
4148         K::Target: KeysInterface<Signer = Signer>,
4149         F::Target: FeeEstimator,
4150         L::Target: Logger,
4151 {
4152         fn transactions_confirmed(&self, header: &BlockHeader, txdata: &TransactionData, height: u32) {
4153                 // Note that we MUST NOT end up calling methods on self.chain_monitor here - we're called
4154                 // during initialization prior to the chain_monitor being fully configured in some cases.
4155                 // See the docs for `ChannelManagerReadArgs` for more.
4156
4157                 let block_hash = header.block_hash();
4158                 log_trace!(self.logger, "{} transactions included in block {} at height {} provided", txdata.len(), block_hash, height);
4159
4160                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4161                 self.do_chain_event(Some(height), |channel| channel.transactions_confirmed(&block_hash, height, txdata, &self.logger).map(|a| (a, Vec::new())));
4162         }
4163
4164         fn best_block_updated(&self, header: &BlockHeader, height: u32) {
4165                 // Note that we MUST NOT end up calling methods on self.chain_monitor here - we're called
4166                 // during initialization prior to the chain_monitor being fully configured in some cases.
4167                 // See the docs for `ChannelManagerReadArgs` for more.
4168
4169                 let block_hash = header.block_hash();
4170                 log_trace!(self.logger, "New best block: {} at height {}", block_hash, height);
4171
4172                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4173
4174                 *self.best_block.write().unwrap() = BestBlock::new(block_hash, height);
4175
4176                 self.do_chain_event(Some(height), |channel| channel.best_block_updated(height, header.time, &self.logger));
4177
4178                 macro_rules! max_time {
4179                         ($timestamp: expr) => {
4180                                 loop {
4181                                         // Update $timestamp to be the max of its current value and the block
4182                                         // timestamp. This should keep us close to the current time without relying on
4183                                         // having an explicit local time source.
4184                                         // Just in case we end up in a race, we loop until we either successfully
4185                                         // update $timestamp or decide we don't need to.
4186                                         let old_serial = $timestamp.load(Ordering::Acquire);
4187                                         if old_serial >= header.time as usize { break; }
4188                                         if $timestamp.compare_exchange(old_serial, header.time as usize, Ordering::AcqRel, Ordering::Relaxed).is_ok() {
4189                                                 break;
4190                                         }
4191                                 }
4192                         }
4193                 }
4194                 max_time!(self.last_node_announcement_serial);
4195                 max_time!(self.highest_seen_timestamp);
4196                 let mut payment_secrets = self.pending_inbound_payments.lock().unwrap();
4197                 payment_secrets.retain(|_, inbound_payment| {
4198                         inbound_payment.expiry_time > header.time as u64
4199                 });
4200         }
4201
4202         fn get_relevant_txids(&self) -> Vec<Txid> {
4203                 let channel_state = self.channel_state.lock().unwrap();
4204                 let mut res = Vec::with_capacity(channel_state.short_to_id.len());
4205                 for chan in channel_state.by_id.values() {
4206                         if let Some(funding_txo) = chan.get_funding_txo() {
4207                                 res.push(funding_txo.txid);
4208                         }
4209                 }
4210                 res
4211         }
4212
4213         fn transaction_unconfirmed(&self, txid: &Txid) {
4214                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4215                 self.do_chain_event(None, |channel| {
4216                         if let Some(funding_txo) = channel.get_funding_txo() {
4217                                 if funding_txo.txid == *txid {
4218                                         channel.funding_transaction_unconfirmed(&self.logger).map(|_| (None, Vec::new()))
4219                                 } else { Ok((None, Vec::new())) }
4220                         } else { Ok((None, Vec::new())) }
4221                 });
4222         }
4223 }
4224
4225 impl<Signer: Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref> ChannelManager<Signer, M, T, K, F, L>
4226 where
4227         M::Target: chain::Watch<Signer>,
4228         T::Target: BroadcasterInterface,
4229         K::Target: KeysInterface<Signer = Signer>,
4230         F::Target: FeeEstimator,
4231         L::Target: Logger,
4232 {
4233         /// Calls a function which handles an on-chain event (blocks dis/connected, transactions
4234         /// un/confirmed, etc) on each channel, handling any resulting errors or messages generated by
4235         /// the function.
4236         fn do_chain_event<FN: Fn(&mut Channel<Signer>) -> Result<(Option<msgs::FundingLocked>, Vec<(HTLCSource, PaymentHash)>), msgs::ErrorMessage>>
4237                         (&self, height_opt: Option<u32>, f: FN) {
4238                 // Note that we MUST NOT end up calling methods on self.chain_monitor here - we're called
4239                 // during initialization prior to the chain_monitor being fully configured in some cases.
4240                 // See the docs for `ChannelManagerReadArgs` for more.
4241
4242                 let mut failed_channels = Vec::new();
4243                 let mut timed_out_htlcs = Vec::new();
4244                 {
4245                         let mut channel_lock = self.channel_state.lock().unwrap();
4246                         let channel_state = &mut *channel_lock;
4247                         let short_to_id = &mut channel_state.short_to_id;
4248                         let pending_msg_events = &mut channel_state.pending_msg_events;
4249                         channel_state.by_id.retain(|_, channel| {
4250                                 let res = f(channel);
4251                                 if let Ok((chan_res, mut timed_out_pending_htlcs)) = res {
4252                                         for (source, payment_hash) in timed_out_pending_htlcs.drain(..) {
4253                                                 let chan_update = self.get_channel_update_for_unicast(&channel).map(|u| u.encode_with_len()).unwrap(); // Cannot add/recv HTLCs before we have a short_id so unwrap is safe
4254                                                 timed_out_htlcs.push((source, payment_hash,  HTLCFailReason::Reason {
4255                                                         failure_code: 0x1000 | 14, // expiry_too_soon, or at least it is now
4256                                                         data: chan_update,
4257                                                 }));
4258                                         }
4259                                         if let Some(funding_locked) = chan_res {
4260                                                 pending_msg_events.push(events::MessageSendEvent::SendFundingLocked {
4261                                                         node_id: channel.get_counterparty_node_id(),
4262                                                         msg: funding_locked,
4263                                                 });
4264                                                 if let Some(announcement_sigs) = self.get_announcement_sigs(channel) {
4265                                                         log_trace!(self.logger, "Sending funding_locked and announcement_signatures for {}", log_bytes!(channel.channel_id()));
4266                                                         pending_msg_events.push(events::MessageSendEvent::SendAnnouncementSignatures {
4267                                                                 node_id: channel.get_counterparty_node_id(),
4268                                                                 msg: announcement_sigs,
4269                                                         });
4270                                                 } else if channel.is_usable() {
4271                                                         log_trace!(self.logger, "Sending funding_locked WITHOUT announcement_signatures but with private channel_update for our counterparty on channel {}", log_bytes!(channel.channel_id()));
4272                                                         pending_msg_events.push(events::MessageSendEvent::SendChannelUpdate {
4273                                                                 node_id: channel.get_counterparty_node_id(),
4274                                                                 msg: self.get_channel_update_for_unicast(channel).unwrap(),
4275                                                         });
4276                                                 } else {
4277                                                         log_trace!(self.logger, "Sending funding_locked WITHOUT announcement_signatures for {}", log_bytes!(channel.channel_id()));
4278                                                 }
4279                                                 short_to_id.insert(channel.get_short_channel_id().unwrap(), channel.channel_id());
4280                                         }
4281                                 } else if let Err(e) = res {
4282                                         if let Some(short_id) = channel.get_short_channel_id() {
4283                                                 short_to_id.remove(&short_id);
4284                                         }
4285                                         // It looks like our counterparty went on-chain or funding transaction was
4286                                         // reorged out of the main chain. Close the channel.
4287                                         failed_channels.push(channel.force_shutdown(true));
4288                                         if let Ok(update) = self.get_channel_update_for_broadcast(&channel) {
4289                                                 pending_msg_events.push(events::MessageSendEvent::BroadcastChannelUpdate {
4290                                                         msg: update
4291                                                 });
4292                                         }
4293                                         pending_msg_events.push(events::MessageSendEvent::HandleError {
4294                                                 node_id: channel.get_counterparty_node_id(),
4295                                                 action: msgs::ErrorAction::SendErrorMessage { msg: e },
4296                                         });
4297                                         return false;
4298                                 }
4299                                 true
4300                         });
4301
4302                         if let Some(height) = height_opt {
4303                                 channel_state.claimable_htlcs.retain(|payment_hash, htlcs| {
4304                                         htlcs.retain(|htlc| {
4305                                                 // If height is approaching the number of blocks we think it takes us to get
4306                                                 // our commitment transaction confirmed before the HTLC expires, plus the
4307                                                 // number of blocks we generally consider it to take to do a commitment update,
4308                                                 // just give up on it and fail the HTLC.
4309                                                 if height >= htlc.cltv_expiry - HTLC_FAIL_BACK_BUFFER {
4310                                                         let mut htlc_msat_height_data = byte_utils::be64_to_array(htlc.value).to_vec();
4311                                                         htlc_msat_height_data.extend_from_slice(&byte_utils::be32_to_array(height));
4312                                                         timed_out_htlcs.push((HTLCSource::PreviousHopData(htlc.prev_hop.clone()), payment_hash.clone(), HTLCFailReason::Reason {
4313                                                                 failure_code: 0x4000 | 15,
4314                                                                 data: htlc_msat_height_data
4315                                                         }));
4316                                                         false
4317                                                 } else { true }
4318                                         });
4319                                         !htlcs.is_empty() // Only retain this entry if htlcs has at least one entry.
4320                                 });
4321                         }
4322                 }
4323
4324                 self.handle_init_event_channel_failures(failed_channels);
4325
4326                 for (source, payment_hash, reason) in timed_out_htlcs.drain(..) {
4327                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), source, &payment_hash, reason);
4328                 }
4329         }
4330
4331         /// Blocks until ChannelManager needs to be persisted or a timeout is reached. It returns a bool
4332         /// indicating whether persistence is necessary. Only one listener on
4333         /// `await_persistable_update` or `await_persistable_update_timeout` is guaranteed to be woken
4334         /// up.
4335         /// Note that the feature `allow_wallclock_use` must be enabled to use this function.
4336         #[cfg(any(test, feature = "allow_wallclock_use"))]
4337         pub fn await_persistable_update_timeout(&self, max_wait: Duration) -> bool {
4338                 self.persistence_notifier.wait_timeout(max_wait)
4339         }
4340
4341         /// Blocks until ChannelManager needs to be persisted. Only one listener on
4342         /// `await_persistable_update` or `await_persistable_update_timeout` is guaranteed to be woken
4343         /// up.
4344         pub fn await_persistable_update(&self) {
4345                 self.persistence_notifier.wait()
4346         }
4347
4348         #[cfg(any(test, feature = "_test_utils"))]
4349         pub fn get_persistence_condvar_value(&self) -> bool {
4350                 let mutcond = &self.persistence_notifier.persistence_lock;
4351                 let &(ref mtx, _) = mutcond;
4352                 let guard = mtx.lock().unwrap();
4353                 *guard
4354         }
4355
4356         /// Gets the latest best block which was connected either via the [`chain::Listen`] or
4357         /// [`chain::Confirm`] interfaces.
4358         pub fn current_best_block(&self) -> BestBlock {
4359                 self.best_block.read().unwrap().clone()
4360         }
4361 }
4362
4363 impl<Signer: Sign, M: Deref , T: Deref , K: Deref , F: Deref , L: Deref >
4364         ChannelMessageHandler for ChannelManager<Signer, M, T, K, F, L>
4365         where M::Target: chain::Watch<Signer>,
4366         T::Target: BroadcasterInterface,
4367         K::Target: KeysInterface<Signer = Signer>,
4368         F::Target: FeeEstimator,
4369         L::Target: Logger,
4370 {
4371         fn handle_open_channel(&self, counterparty_node_id: &PublicKey, their_features: InitFeatures, msg: &msgs::OpenChannel) {
4372                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4373                 let _ = handle_error!(self, self.internal_open_channel(counterparty_node_id, their_features, msg), *counterparty_node_id);
4374         }
4375
4376         fn handle_accept_channel(&self, counterparty_node_id: &PublicKey, their_features: InitFeatures, msg: &msgs::AcceptChannel) {
4377                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4378                 let _ = handle_error!(self, self.internal_accept_channel(counterparty_node_id, their_features, msg), *counterparty_node_id);
4379         }
4380
4381         fn handle_funding_created(&self, counterparty_node_id: &PublicKey, msg: &msgs::FundingCreated) {
4382                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4383                 let _ = handle_error!(self, self.internal_funding_created(counterparty_node_id, msg), *counterparty_node_id);
4384         }
4385
4386         fn handle_funding_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::FundingSigned) {
4387                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4388                 let _ = handle_error!(self, self.internal_funding_signed(counterparty_node_id, msg), *counterparty_node_id);
4389         }
4390
4391         fn handle_funding_locked(&self, counterparty_node_id: &PublicKey, msg: &msgs::FundingLocked) {
4392                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4393                 let _ = handle_error!(self, self.internal_funding_locked(counterparty_node_id, msg), *counterparty_node_id);
4394         }
4395
4396         fn handle_shutdown(&self, counterparty_node_id: &PublicKey, their_features: &InitFeatures, msg: &msgs::Shutdown) {
4397                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4398                 let _ = handle_error!(self, self.internal_shutdown(counterparty_node_id, their_features, msg), *counterparty_node_id);
4399         }
4400
4401         fn handle_closing_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::ClosingSigned) {
4402                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4403                 let _ = handle_error!(self, self.internal_closing_signed(counterparty_node_id, msg), *counterparty_node_id);
4404         }
4405
4406         fn handle_update_add_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateAddHTLC) {
4407                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4408                 let _ = handle_error!(self, self.internal_update_add_htlc(counterparty_node_id, msg), *counterparty_node_id);
4409         }
4410
4411         fn handle_update_fulfill_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFulfillHTLC) {
4412                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4413                 let _ = handle_error!(self, self.internal_update_fulfill_htlc(counterparty_node_id, msg), *counterparty_node_id);
4414         }
4415
4416         fn handle_update_fail_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFailHTLC) {
4417                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4418                 let _ = handle_error!(self, self.internal_update_fail_htlc(counterparty_node_id, msg), *counterparty_node_id);
4419         }
4420
4421         fn handle_update_fail_malformed_htlc(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFailMalformedHTLC) {
4422                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4423                 let _ = handle_error!(self, self.internal_update_fail_malformed_htlc(counterparty_node_id, msg), *counterparty_node_id);
4424         }
4425
4426         fn handle_commitment_signed(&self, counterparty_node_id: &PublicKey, msg: &msgs::CommitmentSigned) {
4427                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4428                 let _ = handle_error!(self, self.internal_commitment_signed(counterparty_node_id, msg), *counterparty_node_id);
4429         }
4430
4431         fn handle_revoke_and_ack(&self, counterparty_node_id: &PublicKey, msg: &msgs::RevokeAndACK) {
4432                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4433                 let _ = handle_error!(self, self.internal_revoke_and_ack(counterparty_node_id, msg), *counterparty_node_id);
4434         }
4435
4436         fn handle_update_fee(&self, counterparty_node_id: &PublicKey, msg: &msgs::UpdateFee) {
4437                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4438                 let _ = handle_error!(self, self.internal_update_fee(counterparty_node_id, msg), *counterparty_node_id);
4439         }
4440
4441         fn handle_announcement_signatures(&self, counterparty_node_id: &PublicKey, msg: &msgs::AnnouncementSignatures) {
4442                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4443                 let _ = handle_error!(self, self.internal_announcement_signatures(counterparty_node_id, msg), *counterparty_node_id);
4444         }
4445
4446         fn handle_channel_update(&self, counterparty_node_id: &PublicKey, msg: &msgs::ChannelUpdate) {
4447                 PersistenceNotifierGuard::optionally_notify(&self.total_consistency_lock, &self.persistence_notifier, || {
4448                         if let Ok(persist) = handle_error!(self, self.internal_channel_update(counterparty_node_id, msg), *counterparty_node_id) {
4449                                 persist
4450                         } else {
4451                                 NotifyOption::SkipPersist
4452                         }
4453                 });
4454         }
4455
4456         fn handle_channel_reestablish(&self, counterparty_node_id: &PublicKey, msg: &msgs::ChannelReestablish) {
4457                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4458                 let _ = handle_error!(self, self.internal_channel_reestablish(counterparty_node_id, msg), *counterparty_node_id);
4459         }
4460
4461         fn peer_disconnected(&self, counterparty_node_id: &PublicKey, no_connection_possible: bool) {
4462                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4463                 let mut failed_channels = Vec::new();
4464                 let mut no_channels_remain = true;
4465                 {
4466                         let mut channel_state_lock = self.channel_state.lock().unwrap();
4467                         let channel_state = &mut *channel_state_lock;
4468                         let short_to_id = &mut channel_state.short_to_id;
4469                         let pending_msg_events = &mut channel_state.pending_msg_events;
4470                         if no_connection_possible {
4471                                 log_debug!(self.logger, "Failing all channels with {} due to no_connection_possible", log_pubkey!(counterparty_node_id));
4472                                 channel_state.by_id.retain(|_, chan| {
4473                                         if chan.get_counterparty_node_id() == *counterparty_node_id {
4474                                                 if let Some(short_id) = chan.get_short_channel_id() {
4475                                                         short_to_id.remove(&short_id);
4476                                                 }
4477                                                 failed_channels.push(chan.force_shutdown(true));
4478                                                 if let Ok(update) = self.get_channel_update_for_broadcast(&chan) {
4479                                                         pending_msg_events.push(events::MessageSendEvent::BroadcastChannelUpdate {
4480                                                                 msg: update
4481                                                         });
4482                                                 }
4483                                                 false
4484                                         } else {
4485                                                 true
4486                                         }
4487                                 });
4488                         } else {
4489                                 log_debug!(self.logger, "Marking channels with {} disconnected and generating channel_updates", log_pubkey!(counterparty_node_id));
4490                                 channel_state.by_id.retain(|_, chan| {
4491                                         if chan.get_counterparty_node_id() == *counterparty_node_id {
4492                                                 chan.remove_uncommitted_htlcs_and_mark_paused(&self.logger);
4493                                                 if chan.is_shutdown() {
4494                                                         if let Some(short_id) = chan.get_short_channel_id() {
4495                                                                 short_to_id.remove(&short_id);
4496                                                         }
4497                                                         return false;
4498                                                 } else {
4499                                                         no_channels_remain = false;
4500                                                 }
4501                                         }
4502                                         true
4503                                 })
4504                         }
4505                         pending_msg_events.retain(|msg| {
4506                                 match msg {
4507                                         &events::MessageSendEvent::SendAcceptChannel { ref node_id, .. } => node_id != counterparty_node_id,
4508                                         &events::MessageSendEvent::SendOpenChannel { ref node_id, .. } => node_id != counterparty_node_id,
4509                                         &events::MessageSendEvent::SendFundingCreated { ref node_id, .. } => node_id != counterparty_node_id,
4510                                         &events::MessageSendEvent::SendFundingSigned { ref node_id, .. } => node_id != counterparty_node_id,
4511                                         &events::MessageSendEvent::SendFundingLocked { ref node_id, .. } => node_id != counterparty_node_id,
4512                                         &events::MessageSendEvent::SendAnnouncementSignatures { ref node_id, .. } => node_id != counterparty_node_id,
4513                                         &events::MessageSendEvent::UpdateHTLCs { ref node_id, .. } => node_id != counterparty_node_id,
4514                                         &events::MessageSendEvent::SendRevokeAndACK { ref node_id, .. } => node_id != counterparty_node_id,
4515                                         &events::MessageSendEvent::SendClosingSigned { ref node_id, .. } => node_id != counterparty_node_id,
4516                                         &events::MessageSendEvent::SendShutdown { ref node_id, .. } => node_id != counterparty_node_id,
4517                                         &events::MessageSendEvent::SendChannelReestablish { ref node_id, .. } => node_id != counterparty_node_id,
4518                                         &events::MessageSendEvent::BroadcastChannelAnnouncement { .. } => true,
4519                                         &events::MessageSendEvent::BroadcastNodeAnnouncement { .. } => true,
4520                                         &events::MessageSendEvent::BroadcastChannelUpdate { .. } => true,
4521                                         &events::MessageSendEvent::SendChannelUpdate { ref node_id, .. } => node_id != counterparty_node_id,
4522                                         &events::MessageSendEvent::HandleError { ref node_id, .. } => node_id != counterparty_node_id,
4523                                         &events::MessageSendEvent::PaymentFailureNetworkUpdate { .. } => true,
4524                                         &events::MessageSendEvent::SendChannelRangeQuery { .. } => false,
4525                                         &events::MessageSendEvent::SendShortIdsQuery { .. } => false,
4526                                         &events::MessageSendEvent::SendReplyChannelRange { .. } => false,
4527                                 }
4528                         });
4529                 }
4530                 if no_channels_remain {
4531                         self.per_peer_state.write().unwrap().remove(counterparty_node_id);
4532                 }
4533
4534                 for failure in failed_channels.drain(..) {
4535                         self.finish_force_close_channel(failure);
4536                 }
4537         }
4538
4539         fn peer_connected(&self, counterparty_node_id: &PublicKey, init_msg: &msgs::Init) {
4540                 log_debug!(self.logger, "Generating channel_reestablish events for {}", log_pubkey!(counterparty_node_id));
4541
4542                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4543
4544                 {
4545                         let mut peer_state_lock = self.per_peer_state.write().unwrap();
4546                         match peer_state_lock.entry(counterparty_node_id.clone()) {
4547                                 hash_map::Entry::Vacant(e) => {
4548                                         e.insert(Mutex::new(PeerState {
4549                                                 latest_features: init_msg.features.clone(),
4550                                         }));
4551                                 },
4552                                 hash_map::Entry::Occupied(e) => {
4553                                         e.get().lock().unwrap().latest_features = init_msg.features.clone();
4554                                 },
4555                         }
4556                 }
4557
4558                 let mut channel_state_lock = self.channel_state.lock().unwrap();
4559                 let channel_state = &mut *channel_state_lock;
4560                 let pending_msg_events = &mut channel_state.pending_msg_events;
4561                 channel_state.by_id.retain(|_, chan| {
4562                         if chan.get_counterparty_node_id() == *counterparty_node_id {
4563                                 if !chan.have_received_message() {
4564                                         // If we created this (outbound) channel while we were disconnected from the
4565                                         // peer we probably failed to send the open_channel message, which is now
4566                                         // lost. We can't have had anything pending related to this channel, so we just
4567                                         // drop it.
4568                                         false
4569                                 } else {
4570                                         pending_msg_events.push(events::MessageSendEvent::SendChannelReestablish {
4571                                                 node_id: chan.get_counterparty_node_id(),
4572                                                 msg: chan.get_channel_reestablish(&self.logger),
4573                                         });
4574                                         true
4575                                 }
4576                         } else { true }
4577                 });
4578                 //TODO: Also re-broadcast announcement_signatures
4579         }
4580
4581         fn handle_error(&self, counterparty_node_id: &PublicKey, msg: &msgs::ErrorMessage) {
4582                 let _persistence_guard = PersistenceNotifierGuard::notify_on_drop(&self.total_consistency_lock, &self.persistence_notifier);
4583
4584                 if msg.channel_id == [0; 32] {
4585                         for chan in self.list_channels() {
4586                                 if chan.counterparty.node_id == *counterparty_node_id {
4587                                         // Untrusted messages from peer, we throw away the error if id points to a non-existent channel
4588                                         let _ = self.force_close_channel_with_peer(&chan.channel_id, Some(counterparty_node_id));
4589                                 }
4590                         }
4591                 } else {
4592                         // Untrusted messages from peer, we throw away the error if id points to a non-existent channel
4593                         let _ = self.force_close_channel_with_peer(&msg.channel_id, Some(counterparty_node_id));
4594                 }
4595         }
4596 }
4597
4598 /// Used to signal to the ChannelManager persister that the manager needs to be re-persisted to
4599 /// disk/backups, through `await_persistable_update_timeout` and `await_persistable_update`.
4600 struct PersistenceNotifier {
4601         /// Users won't access the persistence_lock directly, but rather wait on its bool using
4602         /// `wait_timeout` and `wait`.
4603         persistence_lock: (Mutex<bool>, Condvar),
4604 }
4605
4606 impl PersistenceNotifier {
4607         fn new() -> Self {
4608                 Self {
4609                         persistence_lock: (Mutex::new(false), Condvar::new()),
4610                 }
4611         }
4612
4613         fn wait(&self) {
4614                 loop {
4615                         let &(ref mtx, ref cvar) = &self.persistence_lock;
4616                         let mut guard = mtx.lock().unwrap();
4617                         if *guard {
4618                                 *guard = false;
4619                                 return;
4620                         }
4621                         guard = cvar.wait(guard).unwrap();
4622                         let result = *guard;
4623                         if result {
4624                                 *guard = false;
4625                                 return
4626                         }
4627                 }
4628         }
4629
4630         #[cfg(any(test, feature = "allow_wallclock_use"))]
4631         fn wait_timeout(&self, max_wait: Duration) -> bool {
4632                 let current_time = Instant::now();
4633                 loop {
4634                         let &(ref mtx, ref cvar) = &self.persistence_lock;
4635                         let mut guard = mtx.lock().unwrap();
4636                         if *guard {
4637                                 *guard = false;
4638                                 return true;
4639                         }
4640                         guard = cvar.wait_timeout(guard, max_wait).unwrap().0;
4641                         // Due to spurious wakeups that can happen on `wait_timeout`, here we need to check if the
4642                         // desired wait time has actually passed, and if not then restart the loop with a reduced wait
4643                         // time. Note that this logic can be highly simplified through the use of
4644                         // `Condvar::wait_while` and `Condvar::wait_timeout_while`, if and when our MSRV is raised to
4645                         // 1.42.0.
4646                         let elapsed = current_time.elapsed();
4647                         let result = *guard;
4648                         if result || elapsed >= max_wait {
4649                                 *guard = false;
4650                                 return result;
4651                         }
4652                         match max_wait.checked_sub(elapsed) {
4653                                 None => return result,
4654                                 Some(_) => continue
4655                         }
4656                 }
4657         }
4658
4659         // Signal to the ChannelManager persister that there are updates necessitating persisting to disk.
4660         fn notify(&self) {
4661                 let &(ref persist_mtx, ref cnd) = &self.persistence_lock;
4662                 let mut persistence_lock = persist_mtx.lock().unwrap();
4663                 *persistence_lock = true;
4664                 mem::drop(persistence_lock);
4665                 cnd.notify_all();
4666         }
4667 }
4668
4669 const SERIALIZATION_VERSION: u8 = 1;
4670 const MIN_SERIALIZATION_VERSION: u8 = 1;
4671
4672 impl_writeable_tlv_based_enum!(PendingHTLCRouting,
4673         (0, Forward) => {
4674                 (0, onion_packet, required),
4675                 (2, short_channel_id, required),
4676         },
4677         (1, Receive) => {
4678                 (0, payment_data, required),
4679                 (2, incoming_cltv_expiry, required),
4680         },
4681         (2, ReceiveKeysend) => {
4682                 (0, payment_preimage, required),
4683                 (2, incoming_cltv_expiry, required),
4684         },
4685 ;);
4686
4687 impl_writeable_tlv_based!(PendingHTLCInfo, {
4688         (0, routing, required),
4689         (2, incoming_shared_secret, required),
4690         (4, payment_hash, required),
4691         (6, amt_to_forward, required),
4692         (8, outgoing_cltv_value, required)
4693 });
4694
4695 impl_writeable_tlv_based_enum!(HTLCFailureMsg, ;
4696         (0, Relay),
4697         (1, Malformed),
4698 );
4699 impl_writeable_tlv_based_enum!(PendingHTLCStatus, ;
4700         (0, Forward),
4701         (1, Fail),
4702 );
4703
4704 impl_writeable_tlv_based!(HTLCPreviousHopData, {
4705         (0, short_channel_id, required),
4706         (2, outpoint, required),
4707         (4, htlc_id, required),
4708         (6, incoming_packet_shared_secret, required)
4709 });
4710
4711 impl Writeable for ClaimableHTLC {
4712         fn write<W: Writer>(&self, writer: &mut W) -> Result<(), io::Error> {
4713                 let payment_data = match &self.onion_payload {
4714                         OnionPayload::Invoice(data) => Some(data.clone()),
4715                         _ => None,
4716                 };
4717                 let keysend_preimage = match self.onion_payload {
4718                         OnionPayload::Invoice(_) => None,
4719                         OnionPayload::Spontaneous(preimage) => Some(preimage.clone()),
4720                 };
4721                 write_tlv_fields!
4722                 (writer,
4723                  {
4724                    (0, self.prev_hop, required), (2, self.value, required),
4725                    (4, payment_data, option), (6, self.cltv_expiry, required),
4726                          (8, keysend_preimage, option),
4727                  });
4728                 Ok(())
4729         }
4730 }
4731
4732 impl Readable for ClaimableHTLC {
4733         fn read<R: Read>(reader: &mut R) -> Result<Self, DecodeError> {
4734                 let mut prev_hop = ::util::ser::OptionDeserWrapper(None);
4735                 let mut value = 0;
4736                 let mut payment_data: Option<msgs::FinalOnionHopData> = None;
4737                 let mut cltv_expiry = 0;
4738                 let mut keysend_preimage: Option<PaymentPreimage> = None;
4739                 read_tlv_fields!
4740                 (reader,
4741                  {
4742                    (0, prev_hop, required), (2, value, required),
4743                    (4, payment_data, option), (6, cltv_expiry, required),
4744                          (8, keysend_preimage, option)
4745                  });
4746                 let onion_payload = match keysend_preimage {
4747                         Some(p) => {
4748                                 if payment_data.is_some() {
4749                                         return Err(DecodeError::InvalidValue)
4750                                 }
4751                                 OnionPayload::Spontaneous(p)
4752                         },
4753                         None => {
4754                                 if payment_data.is_none() {
4755                                         return Err(DecodeError::InvalidValue)
4756                                 }
4757                                 OnionPayload::Invoice(payment_data.unwrap())
4758                         },
4759                 };
4760                 Ok(Self {
4761                         prev_hop: prev_hop.0.unwrap(),
4762                         value,
4763                         onion_payload,
4764                         cltv_expiry,
4765                 })
4766         }
4767 }
4768
4769 impl_writeable_tlv_based_enum!(HTLCSource,
4770         (0, OutboundRoute) => {
4771                 (0, session_priv, required),
4772                 (2, first_hop_htlc_msat, required),
4773                 (4, path, vec_type),
4774         }, ;
4775         (1, PreviousHopData)
4776 );
4777
4778 impl_writeable_tlv_based_enum!(HTLCFailReason,
4779         (0, LightningError) => {
4780                 (0, err, required),
4781         },
4782         (1, Reason) => {
4783                 (0, failure_code, required),
4784                 (2, data, vec_type),
4785         },
4786 ;);
4787
4788 impl_writeable_tlv_based_enum!(HTLCForwardInfo,
4789         (0, AddHTLC) => {
4790                 (0, forward_info, required),
4791                 (2, prev_short_channel_id, required),
4792                 (4, prev_htlc_id, required),
4793                 (6, prev_funding_outpoint, required),
4794         },
4795         (1, FailHTLC) => {
4796                 (0, htlc_id, required),
4797                 (2, err_packet, required),
4798         },
4799 ;);
4800
4801 impl_writeable_tlv_based!(PendingInboundPayment, {
4802         (0, payment_secret, required),
4803         (2, expiry_time, required),
4804         (4, user_payment_id, required),
4805         (6, payment_preimage, required),
4806         (8, min_value_msat, required),
4807 });
4808
4809 impl<Signer: Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref> Writeable for ChannelManager<Signer, M, T, K, F, L>
4810         where M::Target: chain::Watch<Signer>,
4811         T::Target: BroadcasterInterface,
4812         K::Target: KeysInterface<Signer = Signer>,
4813         F::Target: FeeEstimator,
4814         L::Target: Logger,
4815 {
4816         fn write<W: Writer>(&self, writer: &mut W) -> Result<(), io::Error> {
4817                 let _consistency_lock = self.total_consistency_lock.write().unwrap();
4818
4819                 write_ver_prefix!(writer, SERIALIZATION_VERSION, MIN_SERIALIZATION_VERSION);
4820
4821                 self.genesis_hash.write(writer)?;
4822                 {
4823                         let best_block = self.best_block.read().unwrap();
4824                         best_block.height().write(writer)?;
4825                         best_block.block_hash().write(writer)?;
4826                 }
4827
4828                 let channel_state = self.channel_state.lock().unwrap();
4829                 let mut unfunded_channels = 0;
4830                 for (_, channel) in channel_state.by_id.iter() {
4831                         if !channel.is_funding_initiated() {
4832                                 unfunded_channels += 1;
4833                         }
4834                 }
4835                 ((channel_state.by_id.len() - unfunded_channels) as u64).write(writer)?;
4836                 for (_, channel) in channel_state.by_id.iter() {
4837                         if channel.is_funding_initiated() {
4838                                 channel.write(writer)?;
4839                         }
4840                 }
4841
4842                 (channel_state.forward_htlcs.len() as u64).write(writer)?;
4843                 for (short_channel_id, pending_forwards) in channel_state.forward_htlcs.iter() {
4844                         short_channel_id.write(writer)?;
4845                         (pending_forwards.len() as u64).write(writer)?;
4846                         for forward in pending_forwards {
4847                                 forward.write(writer)?;
4848                         }
4849                 }
4850
4851                 (channel_state.claimable_htlcs.len() as u64).write(writer)?;
4852                 for (payment_hash, previous_hops) in channel_state.claimable_htlcs.iter() {
4853                         payment_hash.write(writer)?;
4854                         (previous_hops.len() as u64).write(writer)?;
4855                         for htlc in previous_hops.iter() {
4856                                 htlc.write(writer)?;
4857                         }
4858                 }
4859
4860                 let per_peer_state = self.per_peer_state.write().unwrap();
4861                 (per_peer_state.len() as u64).write(writer)?;
4862                 for (peer_pubkey, peer_state_mutex) in per_peer_state.iter() {
4863                         peer_pubkey.write(writer)?;
4864                         let peer_state = peer_state_mutex.lock().unwrap();
4865                         peer_state.latest_features.write(writer)?;
4866                 }
4867
4868                 let events = self.pending_events.lock().unwrap();
4869                 (events.len() as u64).write(writer)?;
4870                 for event in events.iter() {
4871                         event.write(writer)?;
4872                 }
4873
4874                 let background_events = self.pending_background_events.lock().unwrap();
4875                 (background_events.len() as u64).write(writer)?;
4876                 for event in background_events.iter() {
4877                         match event {
4878                                 BackgroundEvent::ClosingMonitorUpdate((funding_txo, monitor_update)) => {
4879                                         0u8.write(writer)?;
4880                                         funding_txo.write(writer)?;
4881                                         monitor_update.write(writer)?;
4882                                 },
4883                         }
4884                 }
4885
4886                 (self.last_node_announcement_serial.load(Ordering::Acquire) as u32).write(writer)?;
4887                 (self.highest_seen_timestamp.load(Ordering::Acquire) as u32).write(writer)?;
4888
4889                 let pending_inbound_payments = self.pending_inbound_payments.lock().unwrap();
4890                 (pending_inbound_payments.len() as u64).write(writer)?;
4891                 for (hash, pending_payment) in pending_inbound_payments.iter() {
4892                         hash.write(writer)?;
4893                         pending_payment.write(writer)?;
4894                 }
4895
4896                 let pending_outbound_payments = self.pending_outbound_payments.lock().unwrap();
4897                 (pending_outbound_payments.len() as u64).write(writer)?;
4898                 for session_priv in pending_outbound_payments.iter() {
4899                         session_priv.write(writer)?;
4900                 }
4901
4902                 write_tlv_fields!(writer, {});
4903
4904                 Ok(())
4905         }
4906 }
4907
4908 /// Arguments for the creation of a ChannelManager that are not deserialized.
4909 ///
4910 /// At a high-level, the process for deserializing a ChannelManager and resuming normal operation
4911 /// is:
4912 /// 1) Deserialize all stored ChannelMonitors.
4913 /// 2) Deserialize the ChannelManager by filling in this struct and calling:
4914 ///    <(BlockHash, ChannelManager)>::read(reader, args)
4915 ///    This may result in closing some Channels if the ChannelMonitor is newer than the stored
4916 ///    ChannelManager state to ensure no loss of funds. Thus, transactions may be broadcasted.
4917 /// 3) If you are not fetching full blocks, register all relevant ChannelMonitor outpoints the same
4918 ///    way you would handle a `chain::Filter` call using ChannelMonitor::get_outputs_to_watch() and
4919 ///    ChannelMonitor::get_funding_txo().
4920 /// 4) Reconnect blocks on your ChannelMonitors.
4921 /// 5) Disconnect/connect blocks on the ChannelManager.
4922 /// 6) Move the ChannelMonitors into your local chain::Watch.
4923 ///
4924 /// Note that the ordering of #4-6 is not of importance, however all three must occur before you
4925 /// call any other methods on the newly-deserialized ChannelManager.
4926 ///
4927 /// Note that because some channels may be closed during deserialization, it is critical that you
4928 /// always deserialize only the latest version of a ChannelManager and ChannelMonitors available to
4929 /// you. If you deserialize an old ChannelManager (during which force-closure transactions may be
4930 /// broadcast), and then later deserialize a newer version of the same ChannelManager (which will
4931 /// not force-close the same channels but consider them live), you may end up revoking a state for
4932 /// which you've already broadcasted the transaction.
4933 pub struct ChannelManagerReadArgs<'a, Signer: 'a + Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref>
4934         where M::Target: chain::Watch<Signer>,
4935         T::Target: BroadcasterInterface,
4936         K::Target: KeysInterface<Signer = Signer>,
4937         F::Target: FeeEstimator,
4938         L::Target: Logger,
4939 {
4940         /// The keys provider which will give us relevant keys. Some keys will be loaded during
4941         /// deserialization and KeysInterface::read_chan_signer will be used to read per-Channel
4942         /// signing data.
4943         pub keys_manager: K,
4944
4945         /// The fee_estimator for use in the ChannelManager in the future.
4946         ///
4947         /// No calls to the FeeEstimator will be made during deserialization.
4948         pub fee_estimator: F,
4949         /// The chain::Watch for use in the ChannelManager in the future.
4950         ///
4951         /// No calls to the chain::Watch will be made during deserialization. It is assumed that
4952         /// you have deserialized ChannelMonitors separately and will add them to your
4953         /// chain::Watch after deserializing this ChannelManager.
4954         pub chain_monitor: M,
4955
4956         /// The BroadcasterInterface which will be used in the ChannelManager in the future and may be
4957         /// used to broadcast the latest local commitment transactions of channels which must be
4958         /// force-closed during deserialization.
4959         pub tx_broadcaster: T,
4960         /// The Logger for use in the ChannelManager and which may be used to log information during
4961         /// deserialization.
4962         pub logger: L,
4963         /// Default settings used for new channels. Any existing channels will continue to use the
4964         /// runtime settings which were stored when the ChannelManager was serialized.
4965         pub default_config: UserConfig,
4966
4967         /// A map from channel funding outpoints to ChannelMonitors for those channels (ie
4968         /// value.get_funding_txo() should be the key).
4969         ///
4970         /// If a monitor is inconsistent with the channel state during deserialization the channel will
4971         /// be force-closed using the data in the ChannelMonitor and the channel will be dropped. This
4972         /// is true for missing channels as well. If there is a monitor missing for which we find
4973         /// channel data Err(DecodeError::InvalidValue) will be returned.
4974         ///
4975         /// In such cases the latest local transactions will be sent to the tx_broadcaster included in
4976         /// this struct.
4977         ///
4978         /// (C-not exported) because we have no HashMap bindings
4979         pub channel_monitors: HashMap<OutPoint, &'a mut ChannelMonitor<Signer>>,
4980 }
4981
4982 impl<'a, Signer: 'a + Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref>
4983                 ChannelManagerReadArgs<'a, Signer, M, T, K, F, L>
4984         where M::Target: chain::Watch<Signer>,
4985                 T::Target: BroadcasterInterface,
4986                 K::Target: KeysInterface<Signer = Signer>,
4987                 F::Target: FeeEstimator,
4988                 L::Target: Logger,
4989         {
4990         /// Simple utility function to create a ChannelManagerReadArgs which creates the monitor
4991         /// HashMap for you. This is primarily useful for C bindings where it is not practical to
4992         /// populate a HashMap directly from C.
4993         pub fn new(keys_manager: K, fee_estimator: F, chain_monitor: M, tx_broadcaster: T, logger: L, default_config: UserConfig,
4994                         mut channel_monitors: Vec<&'a mut ChannelMonitor<Signer>>) -> Self {
4995                 Self {
4996                         keys_manager, fee_estimator, chain_monitor, tx_broadcaster, logger, default_config,
4997                         channel_monitors: channel_monitors.drain(..).map(|monitor| { (monitor.get_funding_txo().0, monitor) }).collect()
4998                 }
4999         }
5000 }
5001
5002 // Implement ReadableArgs for an Arc'd ChannelManager to make it a bit easier to work with the
5003 // SipmleArcChannelManager type:
5004 impl<'a, Signer: Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref>
5005         ReadableArgs<ChannelManagerReadArgs<'a, Signer, M, T, K, F, L>> for (BlockHash, Arc<ChannelManager<Signer, M, T, K, F, L>>)
5006         where M::Target: chain::Watch<Signer>,
5007         T::Target: BroadcasterInterface,
5008         K::Target: KeysInterface<Signer = Signer>,
5009         F::Target: FeeEstimator,
5010         L::Target: Logger,
5011 {
5012         fn read<R: io::Read>(reader: &mut R, args: ChannelManagerReadArgs<'a, Signer, M, T, K, F, L>) -> Result<Self, DecodeError> {
5013                 let (blockhash, chan_manager) = <(BlockHash, ChannelManager<Signer, M, T, K, F, L>)>::read(reader, args)?;
5014                 Ok((blockhash, Arc::new(chan_manager)))
5015         }
5016 }
5017
5018 impl<'a, Signer: Sign, M: Deref, T: Deref, K: Deref, F: Deref, L: Deref>
5019         ReadableArgs<ChannelManagerReadArgs<'a, Signer, M, T, K, F, L>> for (BlockHash, ChannelManager<Signer, M, T, K, F, L>)
5020         where M::Target: chain::Watch<Signer>,
5021         T::Target: BroadcasterInterface,
5022         K::Target: KeysInterface<Signer = Signer>,
5023         F::Target: FeeEstimator,
5024         L::Target: Logger,
5025 {
5026         fn read<R: io::Read>(reader: &mut R, mut args: ChannelManagerReadArgs<'a, Signer, M, T, K, F, L>) -> Result<Self, DecodeError> {
5027                 let _ver = read_ver_prefix!(reader, SERIALIZATION_VERSION);
5028
5029                 let genesis_hash: BlockHash = Readable::read(reader)?;
5030                 let best_block_height: u32 = Readable::read(reader)?;
5031                 let best_block_hash: BlockHash = Readable::read(reader)?;
5032
5033                 let mut failed_htlcs = Vec::new();
5034
5035                 let channel_count: u64 = Readable::read(reader)?;
5036                 let mut funding_txo_set = HashSet::with_capacity(cmp::min(channel_count as usize, 128));
5037                 let mut by_id = HashMap::with_capacity(cmp::min(channel_count as usize, 128));
5038                 let mut short_to_id = HashMap::with_capacity(cmp::min(channel_count as usize, 128));
5039                 for _ in 0..channel_count {
5040                         let mut channel: Channel<Signer> = Channel::read(reader, &args.keys_manager)?;
5041                         let funding_txo = channel.get_funding_txo().ok_or(DecodeError::InvalidValue)?;
5042                         funding_txo_set.insert(funding_txo.clone());
5043                         if let Some(ref mut monitor) = args.channel_monitors.get_mut(&funding_txo) {
5044                                 if channel.get_cur_holder_commitment_transaction_number() < monitor.get_cur_holder_commitment_number() ||
5045                                                 channel.get_revoked_counterparty_commitment_transaction_number() < monitor.get_min_seen_secret() ||
5046                                                 channel.get_cur_counterparty_commitment_transaction_number() < monitor.get_cur_counterparty_commitment_number() ||
5047                                                 channel.get_latest_monitor_update_id() > monitor.get_latest_update_id() {
5048                                         // If the channel is ahead of the monitor, return InvalidValue:
5049                                         log_error!(args.logger, "A ChannelMonitor is stale compared to the current ChannelManager! This indicates a potentially-critical violation of the chain::Watch API!");
5050                                         log_error!(args.logger, " The ChannelMonitor for channel {} is at update_id {} but the ChannelManager is at update_id {}.",
5051                                                 log_bytes!(channel.channel_id()), monitor.get_latest_update_id(), channel.get_latest_monitor_update_id());
5052                                         log_error!(args.logger, " The chain::Watch API *requires* that monitors are persisted durably before returning,");
5053                                         log_error!(args.logger, " client applications must ensure that ChannelMonitor data is always available and the latest to avoid funds loss!");
5054                                         log_error!(args.logger, " Without the latest ChannelMonitor we cannot continue without risking funds.");
5055                                         log_error!(args.logger, " Please ensure the chain::Watch API requirements are met and file a bug report at https://github.com/rust-bitcoin/rust-lightning");
5056                                         return Err(DecodeError::InvalidValue);
5057                                 } else if channel.get_cur_holder_commitment_transaction_number() > monitor.get_cur_holder_commitment_number() ||
5058                                                 channel.get_revoked_counterparty_commitment_transaction_number() > monitor.get_min_seen_secret() ||
5059                                                 channel.get_cur_counterparty_commitment_transaction_number() > monitor.get_cur_counterparty_commitment_number() ||
5060                                                 channel.get_latest_monitor_update_id() < monitor.get_latest_update_id() {
5061                                         // But if the channel is behind of the monitor, close the channel:
5062                                         log_error!(args.logger, "A ChannelManager is stale compared to the current ChannelMonitor!");
5063                                         log_error!(args.logger, " The channel will be force-closed and the latest commitment transaction from the ChannelMonitor broadcast.");
5064                                         log_error!(args.logger, " The ChannelMonitor for channel {} is at update_id {} but the ChannelManager is at update_id {}.",
5065                                                 log_bytes!(channel.channel_id()), monitor.get_latest_update_id(), channel.get_latest_monitor_update_id());
5066                                         let (_, mut new_failed_htlcs) = channel.force_shutdown(true);
5067                                         failed_htlcs.append(&mut new_failed_htlcs);
5068                                         monitor.broadcast_latest_holder_commitment_txn(&args.tx_broadcaster, &args.logger);
5069                                 } else {
5070                                         if let Some(short_channel_id) = channel.get_short_channel_id() {
5071                                                 short_to_id.insert(short_channel_id, channel.channel_id());
5072                                         }
5073                                         by_id.insert(channel.channel_id(), channel);
5074                                 }
5075                         } else {
5076                                 log_error!(args.logger, "Missing ChannelMonitor for channel {} needed by ChannelManager.", log_bytes!(channel.channel_id()));
5077                                 log_error!(args.logger, " The chain::Watch API *requires* that monitors are persisted durably before returning,");
5078                                 log_error!(args.logger, " client applications must ensure that ChannelMonitor data is always available and the latest to avoid funds loss!");
5079                                 log_error!(args.logger, " Without the ChannelMonitor we cannot continue without risking funds.");
5080                                 log_error!(args.logger, " Please ensure the chain::Watch API requirements are met and file a bug report at https://github.com/rust-bitcoin/rust-lightning");
5081                                 return Err(DecodeError::InvalidValue);
5082                         }
5083                 }
5084
5085                 for (ref funding_txo, ref mut monitor) in args.channel_monitors.iter_mut() {
5086                         if !funding_txo_set.contains(funding_txo) {
5087                                 monitor.broadcast_latest_holder_commitment_txn(&args.tx_broadcaster, &args.logger);
5088                         }
5089                 }
5090
5091                 const MAX_ALLOC_SIZE: usize = 1024 * 64;
5092                 let forward_htlcs_count: u64 = Readable::read(reader)?;
5093                 let mut forward_htlcs = HashMap::with_capacity(cmp::min(forward_htlcs_count as usize, 128));
5094                 for _ in 0..forward_htlcs_count {
5095                         let short_channel_id = Readable::read(reader)?;
5096                         let pending_forwards_count: u64 = Readable::read(reader)?;
5097                         let mut pending_forwards = Vec::with_capacity(cmp::min(pending_forwards_count as usize, MAX_ALLOC_SIZE/mem::size_of::<HTLCForwardInfo>()));
5098                         for _ in 0..pending_forwards_count {
5099                                 pending_forwards.push(Readable::read(reader)?);
5100                         }
5101                         forward_htlcs.insert(short_channel_id, pending_forwards);
5102                 }
5103
5104                 let claimable_htlcs_count: u64 = Readable::read(reader)?;
5105                 let mut claimable_htlcs = HashMap::with_capacity(cmp::min(claimable_htlcs_count as usize, 128));
5106                 for _ in 0..claimable_htlcs_count {
5107                         let payment_hash = Readable::read(reader)?;
5108                         let previous_hops_len: u64 = Readable::read(reader)?;
5109                         let mut previous_hops = Vec::with_capacity(cmp::min(previous_hops_len as usize, MAX_ALLOC_SIZE/mem::size_of::<ClaimableHTLC>()));
5110                         for _ in 0..previous_hops_len {
5111                                 previous_hops.push(Readable::read(reader)?);
5112                         }
5113                         claimable_htlcs.insert(payment_hash, previous_hops);
5114                 }
5115
5116                 let peer_count: u64 = Readable::read(reader)?;
5117                 let mut per_peer_state = HashMap::with_capacity(cmp::min(peer_count as usize, MAX_ALLOC_SIZE/mem::size_of::<(PublicKey, Mutex<PeerState>)>()));
5118                 for _ in 0..peer_count {
5119                         let peer_pubkey = Readable::read(reader)?;
5120                         let peer_state = PeerState {
5121                                 latest_features: Readable::read(reader)?,
5122                         };
5123                         per_peer_state.insert(peer_pubkey, Mutex::new(peer_state));
5124                 }
5125
5126                 let event_count: u64 = Readable::read(reader)?;
5127                 let mut pending_events_read: Vec<events::Event> = Vec::with_capacity(cmp::min(event_count as usize, MAX_ALLOC_SIZE/mem::size_of::<events::Event>()));
5128                 for _ in 0..event_count {
5129                         match MaybeReadable::read(reader)? {
5130                                 Some(event) => pending_events_read.push(event),
5131                                 None => continue,
5132                         }
5133                 }
5134
5135                 let background_event_count: u64 = Readable::read(reader)?;
5136                 let mut pending_background_events_read: Vec<BackgroundEvent> = Vec::with_capacity(cmp::min(background_event_count as usize, MAX_ALLOC_SIZE/mem::size_of::<BackgroundEvent>()));
5137                 for _ in 0..background_event_count {
5138                         match <u8 as Readable>::read(reader)? {
5139                                 0 => pending_background_events_read.push(BackgroundEvent::ClosingMonitorUpdate((Readable::read(reader)?, Readable::read(reader)?))),
5140                                 _ => return Err(DecodeError::InvalidValue),
5141                         }
5142                 }
5143
5144                 let last_node_announcement_serial: u32 = Readable::read(reader)?;
5145                 let highest_seen_timestamp: u32 = Readable::read(reader)?;
5146
5147                 let pending_inbound_payment_count: u64 = Readable::read(reader)?;
5148                 let mut pending_inbound_payments: HashMap<PaymentHash, PendingInboundPayment> = HashMap::with_capacity(cmp::min(pending_inbound_payment_count as usize, MAX_ALLOC_SIZE/(3*32)));
5149                 for _ in 0..pending_inbound_payment_count {
5150                         if pending_inbound_payments.insert(Readable::read(reader)?, Readable::read(reader)?).is_some() {
5151                                 return Err(DecodeError::InvalidValue);
5152                         }
5153                 }
5154
5155                 let pending_outbound_payments_count: u64 = Readable::read(reader)?;
5156                 let mut pending_outbound_payments: HashSet<[u8; 32]> = HashSet::with_capacity(cmp::min(pending_outbound_payments_count as usize, MAX_ALLOC_SIZE/32));
5157                 for _ in 0..pending_outbound_payments_count {
5158                         if !pending_outbound_payments.insert(Readable::read(reader)?) {
5159                                 return Err(DecodeError::InvalidValue);
5160                         }
5161                 }
5162
5163                 read_tlv_fields!(reader, {});
5164
5165                 let mut secp_ctx = Secp256k1::new();
5166                 secp_ctx.seeded_randomize(&args.keys_manager.get_secure_random_bytes());
5167
5168                 let channel_manager = ChannelManager {
5169                         genesis_hash,
5170                         fee_estimator: args.fee_estimator,
5171                         chain_monitor: args.chain_monitor,
5172                         tx_broadcaster: args.tx_broadcaster,
5173
5174                         best_block: RwLock::new(BestBlock::new(best_block_hash, best_block_height)),
5175
5176                         channel_state: Mutex::new(ChannelHolder {
5177                                 by_id,
5178                                 short_to_id,
5179                                 forward_htlcs,
5180                                 claimable_htlcs,
5181                                 pending_msg_events: Vec::new(),
5182                         }),
5183                         pending_inbound_payments: Mutex::new(pending_inbound_payments),
5184                         pending_outbound_payments: Mutex::new(pending_outbound_payments),
5185
5186                         our_network_key: args.keys_manager.get_node_secret(),
5187                         our_network_pubkey: PublicKey::from_secret_key(&secp_ctx, &args.keys_manager.get_node_secret()),
5188                         secp_ctx,
5189
5190                         last_node_announcement_serial: AtomicUsize::new(last_node_announcement_serial as usize),
5191                         highest_seen_timestamp: AtomicUsize::new(highest_seen_timestamp as usize),
5192
5193                         per_peer_state: RwLock::new(per_peer_state),
5194
5195                         pending_events: Mutex::new(pending_events_read),
5196                         pending_background_events: Mutex::new(pending_background_events_read),
5197                         total_consistency_lock: RwLock::new(()),
5198                         persistence_notifier: PersistenceNotifier::new(),
5199
5200                         keys_manager: args.keys_manager,
5201                         logger: args.logger,
5202                         default_configuration: args.default_config,
5203                 };
5204
5205                 for htlc_source in failed_htlcs.drain(..) {
5206                         channel_manager.fail_htlc_backwards_internal(channel_manager.channel_state.lock().unwrap(), htlc_source.0, &htlc_source.1, HTLCFailReason::Reason { failure_code: 0x4000 | 8, data: Vec::new() });
5207                 }
5208
5209                 //TODO: Broadcast channel update for closed channels, but only after we've made a
5210                 //connection or two.
5211
5212                 Ok((best_block_hash.clone(), channel_manager))
5213         }
5214 }
5215
5216 #[cfg(test)]
5217 mod tests {
5218         use bitcoin::hashes::Hash;
5219         use bitcoin::hashes::sha256::Hash as Sha256;
5220         use core::time::Duration;
5221         use ln::{PaymentPreimage, PaymentHash, PaymentSecret};
5222         use ln::channelmanager::PaymentSendFailure;
5223         use ln::features::{InitFeatures, InvoiceFeatures};
5224         use ln::functional_test_utils::*;
5225         use ln::msgs;
5226         use ln::msgs::ChannelMessageHandler;
5227         use routing::router::{get_keysend_route, get_route};
5228         use util::errors::APIError;
5229         use util::events::{Event, MessageSendEvent, MessageSendEventsProvider};
5230         use util::test_utils;
5231
5232         #[cfg(feature = "std")]
5233         #[test]
5234         fn test_wait_timeout() {
5235                 use ln::channelmanager::PersistenceNotifier;
5236                 use sync::Arc;
5237                 use core::sync::atomic::{AtomicBool, Ordering};
5238                 use std::thread;
5239
5240                 let persistence_notifier = Arc::new(PersistenceNotifier::new());
5241                 let thread_notifier = Arc::clone(&persistence_notifier);
5242
5243                 let exit_thread = Arc::new(AtomicBool::new(false));
5244                 let exit_thread_clone = exit_thread.clone();
5245                 thread::spawn(move || {
5246                         loop {
5247                                 let &(ref persist_mtx, ref cnd) = &thread_notifier.persistence_lock;
5248                                 let mut persistence_lock = persist_mtx.lock().unwrap();
5249                                 *persistence_lock = true;
5250                                 cnd.notify_all();
5251
5252                                 if exit_thread_clone.load(Ordering::SeqCst) {
5253                                         break
5254                                 }
5255                         }
5256                 });
5257
5258                 // Check that we can block indefinitely until updates are available.
5259                 let _ = persistence_notifier.wait();
5260
5261                 // Check that the PersistenceNotifier will return after the given duration if updates are
5262                 // available.
5263                 loop {
5264                         if persistence_notifier.wait_timeout(Duration::from_millis(100)) {
5265                                 break
5266                         }
5267                 }
5268
5269                 exit_thread.store(true, Ordering::SeqCst);
5270
5271                 // Check that the PersistenceNotifier will return after the given duration even if no updates
5272                 // are available.
5273                 loop {
5274                         if !persistence_notifier.wait_timeout(Duration::from_millis(100)) {
5275                                 break
5276                         }
5277                 }
5278         }
5279
5280         #[test]
5281         fn test_notify_limits() {
5282                 // Check that a few cases which don't require the persistence of a new ChannelManager,
5283                 // indeed, do not cause the persistence of a new ChannelManager.
5284                 let chanmon_cfgs = create_chanmon_cfgs(3);
5285                 let node_cfgs = create_node_cfgs(3, &chanmon_cfgs);
5286                 let node_chanmgrs = create_node_chanmgrs(3, &node_cfgs, &[None, None, None]);
5287                 let nodes = create_network(3, &node_cfgs, &node_chanmgrs);
5288
5289                 // All nodes start with a persistable update pending as `create_network` connects each node
5290                 // with all other nodes to make most tests simpler.
5291                 assert!(nodes[0].node.await_persistable_update_timeout(Duration::from_millis(1)));
5292                 assert!(nodes[1].node.await_persistable_update_timeout(Duration::from_millis(1)));
5293                 assert!(nodes[2].node.await_persistable_update_timeout(Duration::from_millis(1)));
5294
5295                 let mut chan = create_announced_chan_between_nodes(&nodes, 0, 1, InitFeatures::known(), InitFeatures::known());
5296
5297                 // We check that the channel info nodes have doesn't change too early, even though we try
5298                 // to connect messages with new values
5299                 chan.0.contents.fee_base_msat *= 2;
5300                 chan.1.contents.fee_base_msat *= 2;
5301                 let node_a_chan_info = nodes[0].node.list_channels()[0].clone();
5302                 let node_b_chan_info = nodes[1].node.list_channels()[0].clone();
5303
5304                 // The first two nodes (which opened a channel) should now require fresh persistence
5305                 assert!(nodes[0].node.await_persistable_update_timeout(Duration::from_millis(1)));
5306                 assert!(nodes[1].node.await_persistable_update_timeout(Duration::from_millis(1)));
5307                 // ... but the last node should not.
5308                 assert!(!nodes[2].node.await_persistable_update_timeout(Duration::from_millis(1)));
5309                 // After persisting the first two nodes they should no longer need fresh persistence.
5310                 assert!(!nodes[0].node.await_persistable_update_timeout(Duration::from_millis(1)));
5311                 assert!(!nodes[1].node.await_persistable_update_timeout(Duration::from_millis(1)));
5312
5313                 // Node 3, unrelated to the only channel, shouldn't care if it receives a channel_update
5314                 // about the channel.
5315                 nodes[2].node.handle_channel_update(&nodes[1].node.get_our_node_id(), &chan.0);
5316                 nodes[2].node.handle_channel_update(&nodes[1].node.get_our_node_id(), &chan.1);
5317                 assert!(!nodes[2].node.await_persistable_update_timeout(Duration::from_millis(1)));
5318
5319                 // The nodes which are a party to the channel should also ignore messages from unrelated
5320                 // parties.
5321                 nodes[0].node.handle_channel_update(&nodes[2].node.get_our_node_id(), &chan.0);
5322                 nodes[0].node.handle_channel_update(&nodes[2].node.get_our_node_id(), &chan.1);
5323                 nodes[1].node.handle_channel_update(&nodes[2].node.get_our_node_id(), &chan.0);
5324                 nodes[1].node.handle_channel_update(&nodes[2].node.get_our_node_id(), &chan.1);
5325                 assert!(!nodes[0].node.await_persistable_update_timeout(Duration::from_millis(1)));
5326                 assert!(!nodes[1].node.await_persistable_update_timeout(Duration::from_millis(1)));
5327
5328                 // At this point the channel info given by peers should still be the same.
5329                 assert_eq!(nodes[0].node.list_channels()[0], node_a_chan_info);
5330                 assert_eq!(nodes[1].node.list_channels()[0], node_b_chan_info);
5331
5332                 // An earlier version of handle_channel_update didn't check the directionality of the
5333                 // update message and would always update the local fee info, even if our peer was
5334                 // (spuriously) forwarding us our own channel_update.
5335                 let as_node_one = nodes[0].node.get_our_node_id().serialize()[..] < nodes[1].node.get_our_node_id().serialize()[..];
5336                 let as_update = if as_node_one == (chan.0.contents.flags & 1 == 0 /* chan.0 is from node one */) { &chan.0 } else { &chan.1 };
5337                 let bs_update = if as_node_one == (chan.0.contents.flags & 1 == 0 /* chan.0 is from node one */) { &chan.1 } else { &chan.0 };
5338
5339                 // First deliver each peers' own message, checking that the node doesn't need to be
5340                 // persisted and that its channel info remains the same.
5341                 nodes[0].node.handle_channel_update(&nodes[1].node.get_our_node_id(), &as_update);
5342                 nodes[1].node.handle_channel_update(&nodes[0].node.get_our_node_id(), &bs_update);
5343                 assert!(!nodes[0].node.await_persistable_update_timeout(Duration::from_millis(1)));
5344                 assert!(!nodes[1].node.await_persistable_update_timeout(Duration::from_millis(1)));
5345                 assert_eq!(nodes[0].node.list_channels()[0], node_a_chan_info);
5346                 assert_eq!(nodes[1].node.list_channels()[0], node_b_chan_info);
5347
5348                 // Finally, deliver the other peers' message, ensuring each node needs to be persisted and
5349                 // the channel info has updated.
5350                 nodes[0].node.handle_channel_update(&nodes[1].node.get_our_node_id(), &bs_update);
5351                 nodes[1].node.handle_channel_update(&nodes[0].node.get_our_node_id(), &as_update);
5352                 assert!(nodes[0].node.await_persistable_update_timeout(Duration::from_millis(1)));
5353                 assert!(nodes[1].node.await_persistable_update_timeout(Duration::from_millis(1)));
5354                 assert_ne!(nodes[0].node.list_channels()[0], node_a_chan_info);
5355                 assert_ne!(nodes[1].node.list_channels()[0], node_b_chan_info);
5356         }
5357
5358         #[test]
5359         fn test_keysend_dup_hash_partial_mpp() {
5360                 // Test that a keysend payment with a duplicate hash to an existing partial MPP payment fails as
5361                 // expected.
5362                 let chanmon_cfgs = create_chanmon_cfgs(2);
5363                 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
5364                 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
5365                 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
5366                 create_announced_chan_between_nodes(&nodes, 0, 1, InitFeatures::known(), InitFeatures::known());
5367                 let logger = test_utils::TestLogger::new();
5368
5369                 // First, send a partial MPP payment.
5370                 let net_graph_msg_handler = &nodes[0].net_graph_msg_handler;
5371                 let route = get_route(&nodes[0].node.get_our_node_id(), &net_graph_msg_handler.network_graph.read().unwrap(), &nodes[1].node.get_our_node_id(), Some(InvoiceFeatures::known()), None, &Vec::new(), 100_000, TEST_FINAL_CLTV, &logger).unwrap();
5372                 let (payment_preimage, our_payment_hash, payment_secret) = get_payment_preimage_hash!(&nodes[1]);
5373                 // Use the utility function send_payment_along_path to send the payment with MPP data which
5374                 // indicates there are more HTLCs coming.
5375                 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.
5376                 nodes[0].node.send_payment_along_path(&route.paths[0], &our_payment_hash, &Some(payment_secret), 200_000, cur_height, &None).unwrap();
5377                 check_added_monitors!(nodes[0], 1);
5378                 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
5379                 assert_eq!(events.len(), 1);
5380                 pass_along_path(&nodes[0], &[&nodes[1]], 200_000, our_payment_hash, Some(payment_secret), events.drain(..).next().unwrap(), false, None);
5381
5382                 // Next, send a keysend payment with the same payment_hash and make sure it fails.
5383                 nodes[0].node.send_spontaneous_payment(&route, Some(payment_preimage)).unwrap();
5384                 check_added_monitors!(nodes[0], 1);
5385                 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
5386                 assert_eq!(events.len(), 1);
5387                 let ev = events.drain(..).next().unwrap();
5388                 let payment_event = SendEvent::from_event(ev);
5389                 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &payment_event.msgs[0]);
5390                 check_added_monitors!(nodes[1], 0);
5391                 commitment_signed_dance!(nodes[1], nodes[0], payment_event.commitment_msg, false);
5392                 expect_pending_htlcs_forwardable!(nodes[1]);
5393                 expect_pending_htlcs_forwardable!(nodes[1]);
5394                 check_added_monitors!(nodes[1], 1);
5395                 let updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
5396                 assert!(updates.update_add_htlcs.is_empty());
5397                 assert!(updates.update_fulfill_htlcs.is_empty());
5398                 assert_eq!(updates.update_fail_htlcs.len(), 1);
5399                 assert!(updates.update_fail_malformed_htlcs.is_empty());
5400                 assert!(updates.update_fee.is_none());
5401                 nodes[0].node.handle_update_fail_htlc(&nodes[1].node.get_our_node_id(), &updates.update_fail_htlcs[0]);
5402                 commitment_signed_dance!(nodes[0], nodes[1], updates.commitment_signed, true, true);
5403                 expect_payment_failed!(nodes[0], our_payment_hash, true);
5404
5405                 // Send the second half of the original MPP payment.
5406                 nodes[0].node.send_payment_along_path(&route.paths[0], &our_payment_hash, &Some(payment_secret), 200_000, cur_height, &None).unwrap();
5407                 check_added_monitors!(nodes[0], 1);
5408                 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
5409                 assert_eq!(events.len(), 1);
5410                 pass_along_path(&nodes[0], &[&nodes[1]], 200_000, our_payment_hash, Some(payment_secret), events.drain(..).next().unwrap(), true, None);
5411
5412                 // Claim the full MPP payment. Note that we can't use a test utility like
5413                 // claim_funds_along_route because the ordering of the messages causes the second half of the
5414                 // payment to be put in the holding cell, which confuses the test utilities. So we exchange the
5415                 // lightning messages manually.
5416                 assert!(nodes[1].node.claim_funds(payment_preimage));
5417                 check_added_monitors!(nodes[1], 2);
5418                 let bs_first_updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
5419                 nodes[0].node.handle_update_fulfill_htlc(&nodes[1].node.get_our_node_id(), &bs_first_updates.update_fulfill_htlcs[0]);
5420                 nodes[0].node.handle_commitment_signed(&nodes[1].node.get_our_node_id(), &bs_first_updates.commitment_signed);
5421                 check_added_monitors!(nodes[0], 1);
5422                 let (as_first_raa, as_first_cs) = get_revoke_commit_msgs!(nodes[0], nodes[1].node.get_our_node_id());
5423                 nodes[1].node.handle_revoke_and_ack(&nodes[0].node.get_our_node_id(), &as_first_raa);
5424                 check_added_monitors!(nodes[1], 1);
5425                 let bs_second_updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
5426                 nodes[1].node.handle_commitment_signed(&nodes[0].node.get_our_node_id(), &as_first_cs);
5427                 check_added_monitors!(nodes[1], 1);
5428                 let bs_first_raa = get_event_msg!(nodes[1], MessageSendEvent::SendRevokeAndACK, nodes[0].node.get_our_node_id());
5429                 nodes[0].node.handle_update_fulfill_htlc(&nodes[1].node.get_our_node_id(), &bs_second_updates.update_fulfill_htlcs[0]);
5430                 nodes[0].node.handle_commitment_signed(&nodes[1].node.get_our_node_id(), &bs_second_updates.commitment_signed);
5431                 check_added_monitors!(nodes[0], 1);
5432                 let as_second_raa = get_event_msg!(nodes[0], MessageSendEvent::SendRevokeAndACK, nodes[1].node.get_our_node_id());
5433                 nodes[0].node.handle_revoke_and_ack(&nodes[1].node.get_our_node_id(), &bs_first_raa);
5434                 let as_second_updates = get_htlc_update_msgs!(nodes[0], nodes[1].node.get_our_node_id());
5435                 check_added_monitors!(nodes[0], 1);
5436                 nodes[1].node.handle_revoke_and_ack(&nodes[0].node.get_our_node_id(), &as_second_raa);
5437                 check_added_monitors!(nodes[1], 1);
5438                 nodes[1].node.handle_commitment_signed(&nodes[0].node.get_our_node_id(), &as_second_updates.commitment_signed);
5439                 check_added_monitors!(nodes[1], 1);
5440                 let bs_third_raa = get_event_msg!(nodes[1], MessageSendEvent::SendRevokeAndACK, nodes[0].node.get_our_node_id());
5441                 nodes[0].node.handle_revoke_and_ack(&nodes[1].node.get_our_node_id(), &bs_third_raa);
5442                 check_added_monitors!(nodes[0], 1);
5443
5444                 // There's an existing bug that generates a PaymentSent event for each MPP path, so handle that here.
5445                 let events = nodes[0].node.get_and_clear_pending_events();
5446                 match events[0] {
5447                         Event::PaymentSent { payment_preimage: ref preimage } => {
5448                                 assert_eq!(payment_preimage, *preimage);
5449                         },
5450                         _ => panic!("Unexpected event"),
5451                 }
5452                 match events[1] {
5453                         Event::PaymentSent { payment_preimage: ref preimage } => {
5454                                 assert_eq!(payment_preimage, *preimage);
5455                         },
5456                         _ => panic!("Unexpected event"),
5457                 }
5458         }
5459
5460         #[test]
5461         fn test_keysend_dup_payment_hash() {
5462                 // (1): Test that a keysend payment with a duplicate payment hash to an existing pending
5463                 //      outbound regular payment fails as expected.
5464                 // (2): Test that a regular payment with a duplicate payment hash to an existing keysend payment
5465                 //      fails as expected.
5466                 let chanmon_cfgs = create_chanmon_cfgs(2);
5467                 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
5468                 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
5469                 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
5470                 create_announced_chan_between_nodes(&nodes, 0, 1, InitFeatures::known(), InitFeatures::known());
5471                 let logger = test_utils::TestLogger::new();
5472
5473                 // To start (1), send a regular payment but don't claim it.
5474                 let expected_route = [&nodes[1]];
5475                 let (payment_preimage, payment_hash, _) = route_payment(&nodes[0], &expected_route, 100_000);
5476
5477                 // Next, attempt a keysend payment and make sure it fails.
5478                 let route = get_route(&nodes[0].node.get_our_node_id(), &nodes[0].net_graph_msg_handler.network_graph.read().unwrap(), &expected_route.last().unwrap().node.get_our_node_id(), Some(InvoiceFeatures::known()), None, &Vec::new(), 100_000, TEST_FINAL_CLTV, &logger).unwrap();
5479                 nodes[0].node.send_spontaneous_payment(&route, Some(payment_preimage)).unwrap();
5480                 check_added_monitors!(nodes[0], 1);
5481                 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
5482                 assert_eq!(events.len(), 1);
5483                 let ev = events.drain(..).next().unwrap();
5484                 let payment_event = SendEvent::from_event(ev);
5485                 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &payment_event.msgs[0]);
5486                 check_added_monitors!(nodes[1], 0);
5487                 commitment_signed_dance!(nodes[1], nodes[0], payment_event.commitment_msg, false);
5488                 expect_pending_htlcs_forwardable!(nodes[1]);
5489                 expect_pending_htlcs_forwardable!(nodes[1]);
5490                 check_added_monitors!(nodes[1], 1);
5491                 let updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
5492                 assert!(updates.update_add_htlcs.is_empty());
5493                 assert!(updates.update_fulfill_htlcs.is_empty());
5494                 assert_eq!(updates.update_fail_htlcs.len(), 1);
5495                 assert!(updates.update_fail_malformed_htlcs.is_empty());
5496                 assert!(updates.update_fee.is_none());
5497                 nodes[0].node.handle_update_fail_htlc(&nodes[1].node.get_our_node_id(), &updates.update_fail_htlcs[0]);
5498                 commitment_signed_dance!(nodes[0], nodes[1], updates.commitment_signed, true, true);
5499                 expect_payment_failed!(nodes[0], payment_hash, true);
5500
5501                 // Finally, claim the original payment.
5502                 claim_payment(&nodes[0], &expected_route, payment_preimage);
5503
5504                 // To start (2), send a keysend payment but don't claim it.
5505                 let payment_preimage = PaymentPreimage([42; 32]);
5506                 let route = get_route(&nodes[0].node.get_our_node_id(), &nodes[0].net_graph_msg_handler.network_graph.read().unwrap(), &expected_route.last().unwrap().node.get_our_node_id(), Some(InvoiceFeatures::known()), None, &Vec::new(), 100_000, TEST_FINAL_CLTV, &logger).unwrap();
5507                 let payment_hash = nodes[0].node.send_spontaneous_payment(&route, Some(payment_preimage)).unwrap();
5508                 check_added_monitors!(nodes[0], 1);
5509                 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
5510                 assert_eq!(events.len(), 1);
5511                 let event = events.pop().unwrap();
5512                 let path = vec![&nodes[1]];
5513                 pass_along_path(&nodes[0], &path, 100_000, payment_hash, None, event, true, Some(payment_preimage));
5514
5515                 // Next, attempt a regular payment and make sure it fails.
5516                 let payment_secret = PaymentSecret([43; 32]);
5517                 nodes[0].node.send_payment(&route, payment_hash, &Some(payment_secret)).unwrap();
5518                 check_added_monitors!(nodes[0], 1);
5519                 let mut events = nodes[0].node.get_and_clear_pending_msg_events();
5520                 assert_eq!(events.len(), 1);
5521                 let ev = events.drain(..).next().unwrap();
5522                 let payment_event = SendEvent::from_event(ev);
5523                 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &payment_event.msgs[0]);
5524                 check_added_monitors!(nodes[1], 0);
5525                 commitment_signed_dance!(nodes[1], nodes[0], payment_event.commitment_msg, false);
5526                 expect_pending_htlcs_forwardable!(nodes[1]);
5527                 expect_pending_htlcs_forwardable!(nodes[1]);
5528                 check_added_monitors!(nodes[1], 1);
5529                 let updates = get_htlc_update_msgs!(nodes[1], nodes[0].node.get_our_node_id());
5530                 assert!(updates.update_add_htlcs.is_empty());
5531                 assert!(updates.update_fulfill_htlcs.is_empty());
5532                 assert_eq!(updates.update_fail_htlcs.len(), 1);
5533                 assert!(updates.update_fail_malformed_htlcs.is_empty());
5534                 assert!(updates.update_fee.is_none());
5535                 nodes[0].node.handle_update_fail_htlc(&nodes[1].node.get_our_node_id(), &updates.update_fail_htlcs[0]);
5536                 commitment_signed_dance!(nodes[0], nodes[1], updates.commitment_signed, true, true);
5537                 expect_payment_failed!(nodes[0], payment_hash, true);
5538
5539                 // Finally, succeed the keysend payment.
5540                 claim_payment(&nodes[0], &expected_route, payment_preimage);
5541         }
5542
5543         #[test]
5544         fn test_keysend_hash_mismatch() {
5545                 // Test that if we receive a keysend `update_add_htlc` msg, we fail as expected if the keysend
5546                 // preimage doesn't match the msg's payment hash.
5547                 let chanmon_cfgs = create_chanmon_cfgs(2);
5548                 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
5549                 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
5550                 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
5551
5552                 let payer_pubkey = nodes[0].node.get_our_node_id();
5553                 let payee_pubkey = nodes[1].node.get_our_node_id();
5554                 nodes[0].node.peer_connected(&payee_pubkey, &msgs::Init { features: InitFeatures::known() });
5555                 nodes[1].node.peer_connected(&payer_pubkey, &msgs::Init { features: InitFeatures::known() });
5556
5557                 let _chan = create_chan_between_nodes(&nodes[0], &nodes[1], InitFeatures::known(), InitFeatures::known());
5558                 let network_graph = nodes[0].net_graph_msg_handler.network_graph.read().unwrap();
5559                 let first_hops = nodes[0].node.list_usable_channels();
5560                 let route = get_keysend_route(&payer_pubkey, &network_graph, &payee_pubkey,
5561                                   Some(&first_hops.iter().collect::<Vec<_>>()), &vec![], 10000, 40,
5562                                   nodes[0].logger).unwrap();
5563
5564                 let test_preimage = PaymentPreimage([42; 32]);
5565                 let mismatch_payment_hash = PaymentHash([43; 32]);
5566                 let _ = nodes[0].node.send_payment_internal(&route, mismatch_payment_hash, &None, Some(test_preimage)).unwrap();
5567                 check_added_monitors!(nodes[0], 1);
5568
5569                 let updates = get_htlc_update_msgs!(nodes[0], nodes[1].node.get_our_node_id());
5570                 assert_eq!(updates.update_add_htlcs.len(), 1);
5571                 assert!(updates.update_fulfill_htlcs.is_empty());
5572                 assert!(updates.update_fail_htlcs.is_empty());
5573                 assert!(updates.update_fail_malformed_htlcs.is_empty());
5574                 assert!(updates.update_fee.is_none());
5575                 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &updates.update_add_htlcs[0]);
5576
5577                 nodes[1].logger.assert_log_contains("lightning::ln::channelmanager".to_string(), "Payment preimage didn't match payment hash".to_string(), 1);
5578         }
5579
5580         #[test]
5581         fn test_keysend_msg_with_secret_err() {
5582                 // Test that we error as expected if we receive a keysend payment that includes a payment secret.
5583                 let chanmon_cfgs = create_chanmon_cfgs(2);
5584                 let node_cfgs = create_node_cfgs(2, &chanmon_cfgs);
5585                 let node_chanmgrs = create_node_chanmgrs(2, &node_cfgs, &[None, None]);
5586                 let nodes = create_network(2, &node_cfgs, &node_chanmgrs);
5587
5588                 let payer_pubkey = nodes[0].node.get_our_node_id();
5589                 let payee_pubkey = nodes[1].node.get_our_node_id();
5590                 nodes[0].node.peer_connected(&payee_pubkey, &msgs::Init { features: InitFeatures::known() });
5591                 nodes[1].node.peer_connected(&payer_pubkey, &msgs::Init { features: InitFeatures::known() });
5592
5593                 let _chan = create_chan_between_nodes(&nodes[0], &nodes[1], InitFeatures::known(), InitFeatures::known());
5594                 let network_graph = nodes[0].net_graph_msg_handler.network_graph.read().unwrap();
5595                 let first_hops = nodes[0].node.list_usable_channels();
5596                 let route = get_keysend_route(&payer_pubkey, &network_graph, &payee_pubkey,
5597                                   Some(&first_hops.iter().collect::<Vec<_>>()), &vec![], 10000, 40,
5598                                   nodes[0].logger).unwrap();
5599
5600                 let test_preimage = PaymentPreimage([42; 32]);
5601                 let test_secret = PaymentSecret([43; 32]);
5602                 let payment_hash = PaymentHash(Sha256::hash(&test_preimage.0).into_inner());
5603                 let _ = nodes[0].node.send_payment_internal(&route, payment_hash, &Some(test_secret), Some(test_preimage)).unwrap();
5604                 check_added_monitors!(nodes[0], 1);
5605
5606                 let updates = get_htlc_update_msgs!(nodes[0], nodes[1].node.get_our_node_id());
5607                 assert_eq!(updates.update_add_htlcs.len(), 1);
5608                 assert!(updates.update_fulfill_htlcs.is_empty());
5609                 assert!(updates.update_fail_htlcs.is_empty());
5610                 assert!(updates.update_fail_malformed_htlcs.is_empty());
5611                 assert!(updates.update_fee.is_none());
5612                 nodes[1].node.handle_update_add_htlc(&nodes[0].node.get_our_node_id(), &updates.update_add_htlcs[0]);
5613
5614                 nodes[1].logger.assert_log_contains("lightning::ln::channelmanager".to_string(), "We don't support MPP keysend payments".to_string(), 1);
5615         }
5616
5617         #[test]
5618         fn test_multi_hop_missing_secret() {
5619                 let chanmon_cfgs = create_chanmon_cfgs(4);
5620                 let node_cfgs = create_node_cfgs(4, &chanmon_cfgs);
5621                 let node_chanmgrs = create_node_chanmgrs(4, &node_cfgs, &[None, None, None, None]);
5622                 let nodes = create_network(4, &node_cfgs, &node_chanmgrs);
5623
5624                 let chan_1_id = create_announced_chan_between_nodes(&nodes, 0, 1, InitFeatures::known(), InitFeatures::known()).0.contents.short_channel_id;
5625                 let chan_2_id = create_announced_chan_between_nodes(&nodes, 0, 2, InitFeatures::known(), InitFeatures::known()).0.contents.short_channel_id;
5626                 let chan_3_id = create_announced_chan_between_nodes(&nodes, 1, 3, InitFeatures::known(), InitFeatures::known()).0.contents.short_channel_id;
5627                 let chan_4_id = create_announced_chan_between_nodes(&nodes, 2, 3, InitFeatures::known(), InitFeatures::known()).0.contents.short_channel_id;
5628                 let logger = test_utils::TestLogger::new();
5629
5630                 // Marshall an MPP route.
5631                 let (_, payment_hash, _) = get_payment_preimage_hash!(&nodes[3]);
5632                 let net_graph_msg_handler = &nodes[0].net_graph_msg_handler;
5633                 let mut route = get_route(&nodes[0].node.get_our_node_id(), &net_graph_msg_handler.network_graph.read().unwrap(), &nodes[3].node.get_our_node_id(), Some(InvoiceFeatures::known()), None, &[], 100000, TEST_FINAL_CLTV, &logger).unwrap();
5634                 let path = route.paths[0].clone();
5635                 route.paths.push(path);
5636                 route.paths[0][0].pubkey = nodes[1].node.get_our_node_id();
5637                 route.paths[0][0].short_channel_id = chan_1_id;
5638                 route.paths[0][1].short_channel_id = chan_3_id;
5639                 route.paths[1][0].pubkey = nodes[2].node.get_our_node_id();
5640                 route.paths[1][0].short_channel_id = chan_2_id;
5641                 route.paths[1][1].short_channel_id = chan_4_id;
5642
5643                 match nodes[0].node.send_payment(&route, payment_hash, &None).unwrap_err() {
5644                         PaymentSendFailure::ParameterError(APIError::APIMisuseError { ref err }) => {
5645                                 assert!(regex::Regex::new(r"Payment secret is required for multi-path payments").unwrap().is_match(err))                        },
5646                         _ => panic!("unexpected error")
5647                 }
5648         }
5649 }
5650
5651 #[cfg(all(any(test, feature = "_test_utils"), feature = "unstable"))]
5652 pub mod bench {
5653         use chain::Listen;
5654         use chain::chainmonitor::ChainMonitor;
5655         use chain::channelmonitor::Persist;
5656         use chain::keysinterface::{KeysManager, InMemorySigner};
5657         use ln::channelmanager::{BestBlock, ChainParameters, ChannelManager, PaymentHash, PaymentPreimage};
5658         use ln::features::{InitFeatures, InvoiceFeatures};
5659         use ln::functional_test_utils::*;
5660         use ln::msgs::{ChannelMessageHandler, Init};
5661         use routing::network_graph::NetworkGraph;
5662         use routing::router::get_route;
5663         use util::test_utils;
5664         use util::config::UserConfig;
5665         use util::events::{Event, MessageSendEvent, MessageSendEventsProvider, PaymentPurpose};
5666
5667         use bitcoin::hashes::Hash;
5668         use bitcoin::hashes::sha256::Hash as Sha256;
5669         use bitcoin::{Block, BlockHeader, Transaction, TxOut};
5670
5671         use sync::{Arc, Mutex};
5672
5673         use test::Bencher;
5674
5675         struct NodeHolder<'a, P: Persist<InMemorySigner>> {
5676                 node: &'a ChannelManager<InMemorySigner,
5677                         &'a ChainMonitor<InMemorySigner, &'a test_utils::TestChainSource,
5678                                 &'a test_utils::TestBroadcaster, &'a test_utils::TestFeeEstimator,
5679                                 &'a test_utils::TestLogger, &'a P>,
5680                         &'a test_utils::TestBroadcaster, &'a KeysManager,
5681                         &'a test_utils::TestFeeEstimator, &'a test_utils::TestLogger>
5682         }
5683
5684         #[cfg(test)]
5685         #[bench]
5686         fn bench_sends(bench: &mut Bencher) {
5687                 bench_two_sends(bench, test_utils::TestPersister::new(), test_utils::TestPersister::new());
5688         }
5689
5690         pub fn bench_two_sends<P: Persist<InMemorySigner>>(bench: &mut Bencher, persister_a: P, persister_b: P) {
5691                 // Do a simple benchmark of sending a payment back and forth between two nodes.
5692                 // Note that this is unrealistic as each payment send will require at least two fsync
5693                 // calls per node.
5694                 let network = bitcoin::Network::Testnet;
5695                 let genesis_hash = bitcoin::blockdata::constants::genesis_block(network).header.block_hash();
5696
5697                 let tx_broadcaster = test_utils::TestBroadcaster{txn_broadcasted: Mutex::new(Vec::new()), blocks: Arc::new(Mutex::new(Vec::new()))};
5698                 let fee_estimator = test_utils::TestFeeEstimator { sat_per_kw: Mutex::new(253) };
5699
5700                 let mut config: UserConfig = Default::default();
5701                 config.own_channel_config.minimum_depth = 1;
5702
5703                 let logger_a = test_utils::TestLogger::with_id("node a".to_owned());
5704                 let chain_monitor_a = ChainMonitor::new(None, &tx_broadcaster, &logger_a, &fee_estimator, &persister_a);
5705                 let seed_a = [1u8; 32];
5706                 let keys_manager_a = KeysManager::new(&seed_a, 42, 42);
5707                 let node_a = ChannelManager::new(&fee_estimator, &chain_monitor_a, &tx_broadcaster, &logger_a, &keys_manager_a, config.clone(), ChainParameters {
5708                         network,
5709                         best_block: BestBlock::from_genesis(network),
5710                 });
5711                 let node_a_holder = NodeHolder { node: &node_a };
5712
5713                 let logger_b = test_utils::TestLogger::with_id("node a".to_owned());
5714                 let chain_monitor_b = ChainMonitor::new(None, &tx_broadcaster, &logger_a, &fee_estimator, &persister_b);
5715                 let seed_b = [2u8; 32];
5716                 let keys_manager_b = KeysManager::new(&seed_b, 42, 42);
5717                 let node_b = ChannelManager::new(&fee_estimator, &chain_monitor_b, &tx_broadcaster, &logger_b, &keys_manager_b, config.clone(), ChainParameters {
5718                         network,
5719                         best_block: BestBlock::from_genesis(network),
5720                 });
5721                 let node_b_holder = NodeHolder { node: &node_b };
5722
5723                 node_a.peer_connected(&node_b.get_our_node_id(), &Init { features: InitFeatures::known() });
5724                 node_b.peer_connected(&node_a.get_our_node_id(), &Init { features: InitFeatures::known() });
5725                 node_a.create_channel(node_b.get_our_node_id(), 8_000_000, 100_000_000, 42, None).unwrap();
5726                 node_b.handle_open_channel(&node_a.get_our_node_id(), InitFeatures::known(), &get_event_msg!(node_a_holder, MessageSendEvent::SendOpenChannel, node_b.get_our_node_id()));
5727                 node_a.handle_accept_channel(&node_b.get_our_node_id(), InitFeatures::known(), &get_event_msg!(node_b_holder, MessageSendEvent::SendAcceptChannel, node_a.get_our_node_id()));
5728
5729                 let tx;
5730                 if let Event::FundingGenerationReady { temporary_channel_id, output_script, .. } = get_event!(node_a_holder, Event::FundingGenerationReady) {
5731                         tx = Transaction { version: 2, lock_time: 0, input: Vec::new(), output: vec![TxOut {
5732                                 value: 8_000_000, script_pubkey: output_script,
5733                         }]};
5734                         node_a.funding_transaction_generated(&temporary_channel_id, tx.clone()).unwrap();
5735                 } else { panic!(); }
5736
5737                 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()));
5738                 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()));
5739
5740                 assert_eq!(&tx_broadcaster.txn_broadcasted.lock().unwrap()[..], &[tx.clone()]);
5741
5742                 let block = Block {
5743                         header: BlockHeader { version: 0x20000000, prev_blockhash: genesis_hash, merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 },
5744                         txdata: vec![tx],
5745                 };
5746                 Listen::block_connected(&node_a, &block, 1);
5747                 Listen::block_connected(&node_b, &block, 1);
5748
5749                 node_a.handle_funding_locked(&node_b.get_our_node_id(), &get_event_msg!(node_b_holder, MessageSendEvent::SendFundingLocked, node_a.get_our_node_id()));
5750                 let msg_events = node_a.get_and_clear_pending_msg_events();
5751                 assert_eq!(msg_events.len(), 2);
5752                 match msg_events[0] {
5753                         MessageSendEvent::SendFundingLocked { ref msg, .. } => {
5754                                 node_b.handle_funding_locked(&node_a.get_our_node_id(), msg);
5755                                 get_event_msg!(node_b_holder, MessageSendEvent::SendChannelUpdate, node_a.get_our_node_id());
5756                         },
5757                         _ => panic!(),
5758                 }
5759                 match msg_events[1] {
5760                         MessageSendEvent::SendChannelUpdate { .. } => {},
5761                         _ => panic!(),
5762                 }
5763
5764                 let dummy_graph = NetworkGraph::new(genesis_hash);
5765
5766                 let mut payment_count: u64 = 0;
5767                 macro_rules! send_payment {
5768                         ($node_a: expr, $node_b: expr) => {
5769                                 let usable_channels = $node_a.list_usable_channels();
5770                                 let route = get_route(&$node_a.get_our_node_id(), &dummy_graph, &$node_b.get_our_node_id(), Some(InvoiceFeatures::known()),
5771                                         Some(&usable_channels.iter().map(|r| r).collect::<Vec<_>>()), &[], 10_000, TEST_FINAL_CLTV, &logger_a).unwrap();
5772
5773                                 let mut payment_preimage = PaymentPreimage([0; 32]);
5774                                 payment_preimage.0[0..8].copy_from_slice(&payment_count.to_le_bytes());
5775                                 payment_count += 1;
5776                                 let payment_hash = PaymentHash(Sha256::hash(&payment_preimage.0[..]).into_inner());
5777                                 let payment_secret = $node_b.create_inbound_payment_for_hash(payment_hash, None, 7200, 0).unwrap();
5778
5779                                 $node_a.send_payment(&route, payment_hash, &Some(payment_secret)).unwrap();
5780                                 let payment_event = SendEvent::from_event($node_a.get_and_clear_pending_msg_events().pop().unwrap());
5781                                 $node_b.handle_update_add_htlc(&$node_a.get_our_node_id(), &payment_event.msgs[0]);
5782                                 $node_b.handle_commitment_signed(&$node_a.get_our_node_id(), &payment_event.commitment_msg);
5783                                 let (raa, cs) = get_revoke_commit_msgs!(NodeHolder { node: &$node_b }, $node_a.get_our_node_id());
5784                                 $node_a.handle_revoke_and_ack(&$node_b.get_our_node_id(), &raa);
5785                                 $node_a.handle_commitment_signed(&$node_b.get_our_node_id(), &cs);
5786                                 $node_b.handle_revoke_and_ack(&$node_a.get_our_node_id(), &get_event_msg!(NodeHolder { node: &$node_a }, MessageSendEvent::SendRevokeAndACK, $node_b.get_our_node_id()));
5787
5788                                 expect_pending_htlcs_forwardable!(NodeHolder { node: &$node_b });
5789                                 expect_payment_received!(NodeHolder { node: &$node_b }, payment_hash, payment_secret, 10_000);
5790                                 assert!($node_b.claim_funds(payment_preimage));
5791
5792                                 match $node_b.get_and_clear_pending_msg_events().pop().unwrap() {
5793                                         MessageSendEvent::UpdateHTLCs { node_id, updates } => {
5794                                                 assert_eq!(node_id, $node_a.get_our_node_id());
5795                                                 $node_a.handle_update_fulfill_htlc(&$node_b.get_our_node_id(), &updates.update_fulfill_htlcs[0]);
5796                                                 $node_a.handle_commitment_signed(&$node_b.get_our_node_id(), &updates.commitment_signed);
5797                                         },
5798                                         _ => panic!("Failed to generate claim event"),
5799                                 }
5800
5801                                 let (raa, cs) = get_revoke_commit_msgs!(NodeHolder { node: &$node_a }, $node_b.get_our_node_id());
5802                                 $node_b.handle_revoke_and_ack(&$node_a.get_our_node_id(), &raa);
5803                                 $node_b.handle_commitment_signed(&$node_a.get_our_node_id(), &cs);
5804                                 $node_a.handle_revoke_and_ack(&$node_b.get_our_node_id(), &get_event_msg!(NodeHolder { node: &$node_b }, MessageSendEvent::SendRevokeAndACK, $node_a.get_our_node_id()));
5805
5806                                 expect_payment_sent!(NodeHolder { node: &$node_a }, payment_preimage);
5807                         }
5808                 }
5809
5810                 bench.iter(|| {
5811                         send_payment!(node_a, node_b);
5812                         send_payment!(node_b, node_a);
5813                 });
5814         }
5815 }