Add ChannelMonitor::transaction_unconfirmed
[rust-lightning] / lightning / src / chain / channelmonitor.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 logic to monitor for on-chain transactions and create the relevant claim responses lives
11 //! here.
12 //!
13 //! ChannelMonitor objects are generated by ChannelManager in response to relevant
14 //! messages/actions, and MUST be persisted to disk (and, preferably, remotely) before progress can
15 //! be made in responding to certain messages, see [`chain::Watch`] for more.
16 //!
17 //! Note that ChannelMonitors are an important part of the lightning trust model and a copy of the
18 //! latest ChannelMonitor must always be actively monitoring for chain updates (and no out-of-date
19 //! ChannelMonitors should do so). Thus, if you're building rust-lightning into an HSM or other
20 //! security-domain-separated system design, you should consider having multiple paths for
21 //! ChannelMonitors to get out of the HSM and onto monitoring devices.
22
23 use bitcoin::blockdata::block::{Block, BlockHeader};
24 use bitcoin::blockdata::transaction::{TxOut,Transaction};
25 use bitcoin::blockdata::transaction::OutPoint as BitcoinOutPoint;
26 use bitcoin::blockdata::script::{Script, Builder};
27 use bitcoin::blockdata::opcodes;
28
29 use bitcoin::hashes::Hash;
30 use bitcoin::hashes::sha256::Hash as Sha256;
31 use bitcoin::hash_types::{Txid, BlockHash, WPubkeyHash};
32
33 use bitcoin::secp256k1::{Secp256k1,Signature};
34 use bitcoin::secp256k1::key::{SecretKey,PublicKey};
35 use bitcoin::secp256k1;
36
37 use ln::msgs::DecodeError;
38 use ln::chan_utils;
39 use ln::chan_utils::{CounterpartyCommitmentSecrets, HTLCOutputInCommitment, HTLCType, ChannelTransactionParameters, HolderCommitmentTransaction};
40 use ln::channelmanager::{BestBlock, HTLCSource, PaymentPreimage, PaymentHash};
41 use ln::onchaintx::{OnchainTxHandler, InputDescriptors};
42 use chain;
43 use chain::WatchedOutput;
44 use chain::chaininterface::{BroadcasterInterface, FeeEstimator};
45 use chain::transaction::{OutPoint, TransactionData};
46 use chain::keysinterface::{SpendableOutputDescriptor, StaticPaymentOutputDescriptor, DelayedPaymentOutputDescriptor, Sign, KeysInterface};
47 use chain::Filter;
48 use util::logger::Logger;
49 use util::ser::{Readable, ReadableArgs, MaybeReadable, Writer, Writeable, U48};
50 use util::byte_utils;
51 use util::events::Event;
52
53 use std::collections::{HashMap, HashSet};
54 use std::{cmp, mem};
55 use std::io::Error;
56 use std::ops::Deref;
57 use std::sync::Mutex;
58
59 /// An update generated by the underlying Channel itself which contains some new information the
60 /// ChannelMonitor should be made aware of.
61 #[cfg_attr(any(test, feature = "fuzztarget", feature = "_test_utils"), derive(PartialEq))]
62 #[derive(Clone)]
63 #[must_use]
64 pub struct ChannelMonitorUpdate {
65         pub(crate) updates: Vec<ChannelMonitorUpdateStep>,
66         /// The sequence number of this update. Updates *must* be replayed in-order according to this
67         /// sequence number (and updates may panic if they are not). The update_id values are strictly
68         /// increasing and increase by one for each new update, with one exception specified below.
69         ///
70         /// This sequence number is also used to track up to which points updates which returned
71         /// ChannelMonitorUpdateErr::TemporaryFailure have been applied to all copies of a given
72         /// ChannelMonitor when ChannelManager::channel_monitor_updated is called.
73         ///
74         /// The only instance where update_id values are not strictly increasing is the case where we
75         /// allow post-force-close updates with a special update ID of [`CLOSED_CHANNEL_UPDATE_ID`]. See
76         /// its docs for more details.
77         pub update_id: u64,
78 }
79
80 /// If:
81 ///    (1) a channel has been force closed and
82 ///    (2) we receive a preimage from a forward link that allows us to spend an HTLC output on
83 ///        this channel's (the backward link's) broadcasted commitment transaction
84 /// then we allow the `ChannelManager` to send a `ChannelMonitorUpdate` with this update ID,
85 /// with the update providing said payment preimage. No other update types are allowed after
86 /// force-close.
87 pub const CLOSED_CHANNEL_UPDATE_ID: u64 = std::u64::MAX;
88
89 impl Writeable for ChannelMonitorUpdate {
90         fn write<W: Writer>(&self, w: &mut W) -> Result<(), ::std::io::Error> {
91                 self.update_id.write(w)?;
92                 (self.updates.len() as u64).write(w)?;
93                 for update_step in self.updates.iter() {
94                         update_step.write(w)?;
95                 }
96                 Ok(())
97         }
98 }
99 impl Readable for ChannelMonitorUpdate {
100         fn read<R: ::std::io::Read>(r: &mut R) -> Result<Self, DecodeError> {
101                 let update_id: u64 = Readable::read(r)?;
102                 let len: u64 = Readable::read(r)?;
103                 let mut updates = Vec::with_capacity(cmp::min(len as usize, MAX_ALLOC_SIZE / ::std::mem::size_of::<ChannelMonitorUpdateStep>()));
104                 for _ in 0..len {
105                         updates.push(Readable::read(r)?);
106                 }
107                 Ok(Self { update_id, updates })
108         }
109 }
110
111 /// An error enum representing a failure to persist a channel monitor update.
112 #[derive(Clone, Debug)]
113 pub enum ChannelMonitorUpdateErr {
114         /// Used to indicate a temporary failure (eg connection to a watchtower or remote backup of
115         /// our state failed, but is expected to succeed at some point in the future).
116         ///
117         /// Such a failure will "freeze" a channel, preventing us from revoking old states or
118         /// submitting new commitment transactions to the counterparty. Once the update(s) which failed
119         /// have been successfully applied, ChannelManager::channel_monitor_updated can be used to
120         /// restore the channel to an operational state.
121         ///
122         /// Note that a given ChannelManager will *never* re-generate a given ChannelMonitorUpdate. If
123         /// you return a TemporaryFailure you must ensure that it is written to disk safely before
124         /// writing out the latest ChannelManager state.
125         ///
126         /// Even when a channel has been "frozen" updates to the ChannelMonitor can continue to occur
127         /// (eg if an inbound HTLC which we forwarded was claimed upstream resulting in us attempting
128         /// to claim it on this channel) and those updates must be applied wherever they can be. At
129         /// least one such updated ChannelMonitor must be persisted otherwise PermanentFailure should
130         /// be returned to get things on-chain ASAP using only the in-memory copy. Obviously updates to
131         /// the channel which would invalidate previous ChannelMonitors are not made when a channel has
132         /// been "frozen".
133         ///
134         /// Note that even if updates made after TemporaryFailure succeed you must still call
135         /// channel_monitor_updated to ensure you have the latest monitor and re-enable normal channel
136         /// operation.
137         ///
138         /// Note that the update being processed here will not be replayed for you when you call
139         /// ChannelManager::channel_monitor_updated, so you must store the update itself along
140         /// with the persisted ChannelMonitor on your own local disk prior to returning a
141         /// TemporaryFailure. You may, of course, employ a journaling approach, storing only the
142         /// ChannelMonitorUpdate on disk without updating the monitor itself, replaying the journal at
143         /// reload-time.
144         ///
145         /// For deployments where a copy of ChannelMonitors and other local state are backed up in a
146         /// remote location (with local copies persisted immediately), it is anticipated that all
147         /// updates will return TemporaryFailure until the remote copies could be updated.
148         TemporaryFailure,
149         /// Used to indicate no further channel monitor updates will be allowed (eg we've moved on to a
150         /// different watchtower and cannot update with all watchtowers that were previously informed
151         /// of this channel).
152         ///
153         /// At reception of this error, ChannelManager will force-close the channel and return at
154         /// least a final ChannelMonitorUpdate::ChannelForceClosed which must be delivered to at
155         /// least one ChannelMonitor copy. Revocation secret MUST NOT be released and offchain channel
156         /// update must be rejected.
157         ///
158         /// This failure may also signal a failure to update the local persisted copy of one of
159         /// the channel monitor instance.
160         ///
161         /// Note that even when you fail a holder commitment transaction update, you must store the
162         /// update to ensure you can claim from it in case of a duplicate copy of this ChannelMonitor
163         /// broadcasts it (e.g distributed channel-monitor deployment)
164         ///
165         /// In case of distributed watchtowers deployment, the new version must be written to disk, as
166         /// state may have been stored but rejected due to a block forcing a commitment broadcast. This
167         /// storage is used to claim outputs of rejected state confirmed onchain by another watchtower,
168         /// lagging behind on block processing.
169         PermanentFailure,
170 }
171
172 /// General Err type for ChannelMonitor actions. Generally, this implies that the data provided is
173 /// inconsistent with the ChannelMonitor being called. eg for ChannelMonitor::update_monitor this
174 /// means you tried to update a monitor for a different channel or the ChannelMonitorUpdate was
175 /// corrupted.
176 /// Contains a developer-readable error message.
177 #[derive(Clone, Debug)]
178 pub struct MonitorUpdateError(pub &'static str);
179
180 /// An event to be processed by the ChannelManager.
181 #[derive(Clone, PartialEq)]
182 pub enum MonitorEvent {
183         /// A monitor event containing an HTLCUpdate.
184         HTLCEvent(HTLCUpdate),
185
186         /// A monitor event that the Channel's commitment transaction was broadcasted.
187         CommitmentTxBroadcasted(OutPoint),
188 }
189
190 /// Simple structure sent back by `chain::Watch` when an HTLC from a forward channel is detected on
191 /// chain. Used to update the corresponding HTLC in the backward channel. Failing to pass the
192 /// preimage claim backward will lead to loss of funds.
193 #[derive(Clone, PartialEq)]
194 pub struct HTLCUpdate {
195         pub(crate) payment_hash: PaymentHash,
196         pub(crate) payment_preimage: Option<PaymentPreimage>,
197         pub(crate) source: HTLCSource
198 }
199 impl_writeable!(HTLCUpdate, 0, { payment_hash, payment_preimage, source });
200
201 /// If an HTLC expires within this many blocks, don't try to claim it in a shared transaction,
202 /// instead claiming it in its own individual transaction.
203 pub(crate) const CLTV_SHARED_CLAIM_BUFFER: u32 = 12;
204 /// If an HTLC expires within this many blocks, force-close the channel to broadcast the
205 /// HTLC-Success transaction.
206 /// In other words, this is an upper bound on how many blocks we think it can take us to get a
207 /// transaction confirmed (and we use it in a few more, equivalent, places).
208 pub(crate) const CLTV_CLAIM_BUFFER: u32 = 6;
209 /// Number of blocks by which point we expect our counterparty to have seen new blocks on the
210 /// network and done a full update_fail_htlc/commitment_signed dance (+ we've updated all our
211 /// copies of ChannelMonitors, including watchtowers). We could enforce the contract by failing
212 /// at CLTV expiration height but giving a grace period to our peer may be profitable for us if he
213 /// can provide an over-late preimage. Nevertheless, grace period has to be accounted in our
214 /// CLTV_EXPIRY_DELTA to be secure. Following this policy we may decrease the rate of channel failures
215 /// due to expiration but increase the cost of funds being locked longuer in case of failure.
216 /// This delay also cover a low-power peer being slow to process blocks and so being behind us on
217 /// accurate block height.
218 /// In case of onchain failure to be pass backward we may see the last block of ANTI_REORG_DELAY
219 /// with at worst this delay, so we are not only using this value as a mercy for them but also
220 /// us as a safeguard to delay with enough time.
221 pub(crate) const LATENCY_GRACE_PERIOD_BLOCKS: u32 = 3;
222 /// Number of blocks we wait on seeing a HTLC output being solved before we fail corresponding inbound
223 /// HTLCs. This prevents us from failing backwards and then getting a reorg resulting in us losing money.
224 /// We use also this delay to be sure we can remove our in-flight claim txn from bump candidates buffer.
225 /// It may cause spurrious generation of bumped claim txn but that's allright given the outpoint is already
226 /// solved by a previous claim tx. What we want to avoid is reorg evicting our claim tx and us not
227 /// keeping bumping another claim tx to solve the outpoint.
228 pub(crate) const ANTI_REORG_DELAY: u32 = 6;
229 /// Number of blocks before confirmation at which we fail back an un-relayed HTLC or at which we
230 /// refuse to accept a new HTLC.
231 ///
232 /// This is used for a few separate purposes:
233 /// 1) if we've received an MPP HTLC to us and it expires within this many blocks and we are
234 ///    waiting on additional parts (or waiting on the preimage for any HTLC from the user), we will
235 ///    fail this HTLC,
236 /// 2) if we receive an HTLC within this many blocks of its expiry (plus one to avoid a race
237 ///    condition with the above), we will fail this HTLC without telling the user we received it,
238 /// 3) if we are waiting on a connection or a channel state update to send an HTLC to a peer, and
239 ///    that HTLC expires within this many blocks, we will simply fail the HTLC instead.
240 ///
241 /// (1) is all about protecting us - we need enough time to update the channel state before we hit
242 /// CLTV_CLAIM_BUFFER, at which point we'd go on chain to claim the HTLC with the preimage.
243 ///
244 /// (2) is the same, but with an additional buffer to avoid accepting an HTLC which is immediately
245 /// in a race condition between the user connecting a block (which would fail it) and the user
246 /// providing us the preimage (which would claim it).
247 ///
248 /// (3) is about our counterparty - we don't want to relay an HTLC to a counterparty when they may
249 /// end up force-closing the channel on us to claim it.
250 pub(crate) const HTLC_FAIL_BACK_BUFFER: u32 = CLTV_CLAIM_BUFFER + LATENCY_GRACE_PERIOD_BLOCKS;
251
252 // TODO(devrandom) replace this with HolderCommitmentTransaction
253 #[derive(Clone, PartialEq)]
254 struct HolderSignedTx {
255         /// txid of the transaction in tx, just used to make comparison faster
256         txid: Txid,
257         revocation_key: PublicKey,
258         a_htlc_key: PublicKey,
259         b_htlc_key: PublicKey,
260         delayed_payment_key: PublicKey,
261         per_commitment_point: PublicKey,
262         feerate_per_kw: u32,
263         htlc_outputs: Vec<(HTLCOutputInCommitment, Option<Signature>, Option<HTLCSource>)>,
264 }
265
266 /// We use this to track counterparty commitment transactions and htlcs outputs and
267 /// use it to generate any justice or 2nd-stage preimage/timeout transactions.
268 #[derive(PartialEq)]
269 struct CounterpartyCommitmentTransaction {
270         counterparty_delayed_payment_base_key: PublicKey,
271         counterparty_htlc_base_key: PublicKey,
272         on_counterparty_tx_csv: u16,
273         per_htlc: HashMap<Txid, Vec<HTLCOutputInCommitment>>
274 }
275
276 impl Writeable for CounterpartyCommitmentTransaction {
277         fn write<W: Writer>(&self, w: &mut W) -> Result<(), ::std::io::Error> {
278                 self.counterparty_delayed_payment_base_key.write(w)?;
279                 self.counterparty_htlc_base_key.write(w)?;
280                 w.write_all(&byte_utils::be16_to_array(self.on_counterparty_tx_csv))?;
281                 w.write_all(&byte_utils::be64_to_array(self.per_htlc.len() as u64))?;
282                 for (ref txid, ref htlcs) in self.per_htlc.iter() {
283                         w.write_all(&txid[..])?;
284                         w.write_all(&byte_utils::be64_to_array(htlcs.len() as u64))?;
285                         for &ref htlc in htlcs.iter() {
286                                 htlc.write(w)?;
287                         }
288                 }
289                 Ok(())
290         }
291 }
292 impl Readable for CounterpartyCommitmentTransaction {
293         fn read<R: ::std::io::Read>(r: &mut R) -> Result<Self, DecodeError> {
294                 let counterparty_commitment_transaction = {
295                         let counterparty_delayed_payment_base_key = Readable::read(r)?;
296                         let counterparty_htlc_base_key = Readable::read(r)?;
297                         let on_counterparty_tx_csv: u16 = Readable::read(r)?;
298                         let per_htlc_len: u64 = Readable::read(r)?;
299                         let mut per_htlc = HashMap::with_capacity(cmp::min(per_htlc_len as usize, MAX_ALLOC_SIZE / 64));
300                         for _  in 0..per_htlc_len {
301                                 let txid: Txid = Readable::read(r)?;
302                                 let htlcs_count: u64 = Readable::read(r)?;
303                                 let mut htlcs = Vec::with_capacity(cmp::min(htlcs_count as usize, MAX_ALLOC_SIZE / 32));
304                                 for _ in 0..htlcs_count {
305                                         let htlc = Readable::read(r)?;
306                                         htlcs.push(htlc);
307                                 }
308                                 if let Some(_) = per_htlc.insert(txid, htlcs) {
309                                         return Err(DecodeError::InvalidValue);
310                                 }
311                         }
312                         CounterpartyCommitmentTransaction {
313                                 counterparty_delayed_payment_base_key,
314                                 counterparty_htlc_base_key,
315                                 on_counterparty_tx_csv,
316                                 per_htlc,
317                         }
318                 };
319                 Ok(counterparty_commitment_transaction)
320         }
321 }
322
323 /// When ChannelMonitor discovers an onchain outpoint being a step of a channel and that it needs
324 /// to generate a tx to push channel state forward, we cache outpoint-solving tx material to build
325 /// a new bumped one in case of lenghty confirmation delay
326 #[derive(Clone, PartialEq)]
327 pub(crate) enum InputMaterial {
328         Revoked {
329                 per_commitment_point: PublicKey,
330                 counterparty_delayed_payment_base_key: PublicKey,
331                 counterparty_htlc_base_key: PublicKey,
332                 per_commitment_key: SecretKey,
333                 input_descriptor: InputDescriptors,
334                 amount: u64,
335                 htlc: Option<HTLCOutputInCommitment>,
336                 on_counterparty_tx_csv: u16,
337         },
338         CounterpartyHTLC {
339                 per_commitment_point: PublicKey,
340                 counterparty_delayed_payment_base_key: PublicKey,
341                 counterparty_htlc_base_key: PublicKey,
342                 preimage: Option<PaymentPreimage>,
343                 htlc: HTLCOutputInCommitment
344         },
345         HolderHTLC {
346                 preimage: Option<PaymentPreimage>,
347                 amount: u64,
348         },
349         Funding {
350                 funding_redeemscript: Script,
351         }
352 }
353
354 impl Writeable for InputMaterial  {
355         fn write<W: Writer>(&self, writer: &mut W) -> Result<(), ::std::io::Error> {
356                 match self {
357                         &InputMaterial::Revoked { ref per_commitment_point, ref counterparty_delayed_payment_base_key, ref counterparty_htlc_base_key, ref per_commitment_key, ref input_descriptor, ref amount, ref htlc, ref on_counterparty_tx_csv} => {
358                                 writer.write_all(&[0; 1])?;
359                                 per_commitment_point.write(writer)?;
360                                 counterparty_delayed_payment_base_key.write(writer)?;
361                                 counterparty_htlc_base_key.write(writer)?;
362                                 writer.write_all(&per_commitment_key[..])?;
363                                 input_descriptor.write(writer)?;
364                                 writer.write_all(&byte_utils::be64_to_array(*amount))?;
365                                 htlc.write(writer)?;
366                                 on_counterparty_tx_csv.write(writer)?;
367                         },
368                         &InputMaterial::CounterpartyHTLC { ref per_commitment_point, ref counterparty_delayed_payment_base_key, ref counterparty_htlc_base_key, ref preimage, ref htlc} => {
369                                 writer.write_all(&[1; 1])?;
370                                 per_commitment_point.write(writer)?;
371                                 counterparty_delayed_payment_base_key.write(writer)?;
372                                 counterparty_htlc_base_key.write(writer)?;
373                                 preimage.write(writer)?;
374                                 htlc.write(writer)?;
375                         },
376                         &InputMaterial::HolderHTLC { ref preimage, ref amount } => {
377                                 writer.write_all(&[2; 1])?;
378                                 preimage.write(writer)?;
379                                 writer.write_all(&byte_utils::be64_to_array(*amount))?;
380                         },
381                         &InputMaterial::Funding { ref funding_redeemscript } => {
382                                 writer.write_all(&[3; 1])?;
383                                 funding_redeemscript.write(writer)?;
384                         }
385                 }
386                 Ok(())
387         }
388 }
389
390 impl Readable for InputMaterial {
391         fn read<R: ::std::io::Read>(reader: &mut R) -> Result<Self, DecodeError> {
392                 let input_material = match <u8 as Readable>::read(reader)? {
393                         0 => {
394                                 let per_commitment_point = Readable::read(reader)?;
395                                 let counterparty_delayed_payment_base_key = Readable::read(reader)?;
396                                 let counterparty_htlc_base_key = Readable::read(reader)?;
397                                 let per_commitment_key = Readable::read(reader)?;
398                                 let input_descriptor = Readable::read(reader)?;
399                                 let amount = Readable::read(reader)?;
400                                 let htlc = Readable::read(reader)?;
401                                 let on_counterparty_tx_csv = Readable::read(reader)?;
402                                 InputMaterial::Revoked {
403                                         per_commitment_point,
404                                         counterparty_delayed_payment_base_key,
405                                         counterparty_htlc_base_key,
406                                         per_commitment_key,
407                                         input_descriptor,
408                                         amount,
409                                         htlc,
410                                         on_counterparty_tx_csv
411                                 }
412                         },
413                         1 => {
414                                 let per_commitment_point = Readable::read(reader)?;
415                                 let counterparty_delayed_payment_base_key = Readable::read(reader)?;
416                                 let counterparty_htlc_base_key = Readable::read(reader)?;
417                                 let preimage = Readable::read(reader)?;
418                                 let htlc = Readable::read(reader)?;
419                                 InputMaterial::CounterpartyHTLC {
420                                         per_commitment_point,
421                                         counterparty_delayed_payment_base_key,
422                                         counterparty_htlc_base_key,
423                                         preimage,
424                                         htlc
425                                 }
426                         },
427                         2 => {
428                                 let preimage = Readable::read(reader)?;
429                                 let amount = Readable::read(reader)?;
430                                 InputMaterial::HolderHTLC {
431                                         preimage,
432                                         amount,
433                                 }
434                         },
435                         3 => {
436                                 InputMaterial::Funding {
437                                         funding_redeemscript: Readable::read(reader)?,
438                                 }
439                         }
440                         _ => return Err(DecodeError::InvalidValue),
441                 };
442                 Ok(input_material)
443         }
444 }
445
446 /// ClaimRequest is a descriptor structure to communicate between detection
447 /// and reaction module. They are generated by ChannelMonitor while parsing
448 /// onchain txn leaked from a channel and handed over to OnchainTxHandler which
449 /// is responsible for opportunistic aggregation, selecting and enforcing
450 /// bumping logic, building and signing transactions.
451 pub(crate) struct ClaimRequest {
452         // Block height before which claiming is exclusive to one party,
453         // after reaching it, claiming may be contentious.
454         pub(crate) absolute_timelock: u32,
455         // Timeout tx must have nLocktime set which means aggregating multiple
456         // ones must take the higher nLocktime among them to satisfy all of them.
457         // Sadly it has few pitfalls, a) it takes longuer to get fund back b) CLTV_DELTA
458         // of a sooner-HTLC could be swallowed by the highest nLocktime of the HTLC set.
459         // Do simplify we mark them as non-aggregable.
460         pub(crate) aggregable: bool,
461         // Basic bitcoin outpoint (txid, vout)
462         pub(crate) outpoint: BitcoinOutPoint,
463         // Following outpoint type, set of data needed to generate transaction digest
464         // and satisfy witness program.
465         pub(crate) witness_data: InputMaterial
466 }
467
468 /// An entry for an [`OnchainEvent`], stating the block height when the event was observed and the
469 /// transaction causing it.
470 ///
471 /// Used to determine when the on-chain event can be considered safe from a chain reorganization.
472 #[derive(PartialEq)]
473 struct OnchainEventEntry {
474         txid: Txid,
475         height: u32,
476         event: OnchainEvent,
477 }
478
479 impl OnchainEventEntry {
480         fn confirmation_threshold(&self) -> u32 {
481                 self.height + ANTI_REORG_DELAY - 1
482         }
483
484         fn has_reached_confirmation_threshold(&self, height: u32) -> bool {
485                 height >= self.confirmation_threshold()
486         }
487 }
488
489 /// Upon discovering of some classes of onchain tx by ChannelMonitor, we may have to take actions on it
490 /// once they mature to enough confirmations (ANTI_REORG_DELAY)
491 #[derive(PartialEq)]
492 enum OnchainEvent {
493         /// HTLC output getting solved by a timeout, at maturation we pass upstream payment source information to solve
494         /// inbound HTLC in backward channel. Note, in case of preimage, we pass info to upstream without delay as we can
495         /// only win from it, so it's never an OnchainEvent
496         HTLCUpdate {
497                 htlc_update: (HTLCSource, PaymentHash),
498         },
499         MaturingOutput {
500                 descriptor: SpendableOutputDescriptor,
501         },
502 }
503
504 const SERIALIZATION_VERSION: u8 = 1;
505 const MIN_SERIALIZATION_VERSION: u8 = 1;
506
507 #[cfg_attr(any(test, feature = "fuzztarget", feature = "_test_utils"), derive(PartialEq))]
508 #[derive(Clone)]
509 pub(crate) enum ChannelMonitorUpdateStep {
510         LatestHolderCommitmentTXInfo {
511                 commitment_tx: HolderCommitmentTransaction,
512                 htlc_outputs: Vec<(HTLCOutputInCommitment, Option<Signature>, Option<HTLCSource>)>,
513         },
514         LatestCounterpartyCommitmentTXInfo {
515                 commitment_txid: Txid,
516                 htlc_outputs: Vec<(HTLCOutputInCommitment, Option<Box<HTLCSource>>)>,
517                 commitment_number: u64,
518                 their_revocation_point: PublicKey,
519         },
520         PaymentPreimage {
521                 payment_preimage: PaymentPreimage,
522         },
523         CommitmentSecret {
524                 idx: u64,
525                 secret: [u8; 32],
526         },
527         /// Used to indicate that the no future updates will occur, and likely that the latest holder
528         /// commitment transaction(s) should be broadcast, as the channel has been force-closed.
529         ChannelForceClosed {
530                 /// If set to false, we shouldn't broadcast the latest holder commitment transaction as we
531                 /// think we've fallen behind!
532                 should_broadcast: bool,
533         },
534 }
535
536 impl Writeable for ChannelMonitorUpdateStep {
537         fn write<W: Writer>(&self, w: &mut W) -> Result<(), ::std::io::Error> {
538                 match self {
539                         &ChannelMonitorUpdateStep::LatestHolderCommitmentTXInfo { ref commitment_tx, ref htlc_outputs } => {
540                                 0u8.write(w)?;
541                                 commitment_tx.write(w)?;
542                                 (htlc_outputs.len() as u64).write(w)?;
543                                 for &(ref output, ref signature, ref source) in htlc_outputs.iter() {
544                                         output.write(w)?;
545                                         signature.write(w)?;
546                                         source.write(w)?;
547                                 }
548                         }
549                         &ChannelMonitorUpdateStep::LatestCounterpartyCommitmentTXInfo { commitment_txid, ref htlc_outputs, ref commitment_number, ref their_revocation_point } => {
550                                 1u8.write(w)?;
551                                 commitment_txid.write(w)?;
552                                 commitment_number.write(w)?;
553                                 their_revocation_point.write(w)?;
554                                 (htlc_outputs.len() as u64).write(w)?;
555                                 for &(ref output, ref source) in htlc_outputs.iter() {
556                                         output.write(w)?;
557                                         source.as_ref().map(|b| b.as_ref()).write(w)?;
558                                 }
559                         },
560                         &ChannelMonitorUpdateStep::PaymentPreimage { ref payment_preimage } => {
561                                 2u8.write(w)?;
562                                 payment_preimage.write(w)?;
563                         },
564                         &ChannelMonitorUpdateStep::CommitmentSecret { ref idx, ref secret } => {
565                                 3u8.write(w)?;
566                                 idx.write(w)?;
567                                 secret.write(w)?;
568                         },
569                         &ChannelMonitorUpdateStep::ChannelForceClosed { ref should_broadcast } => {
570                                 4u8.write(w)?;
571                                 should_broadcast.write(w)?;
572                         },
573                 }
574                 Ok(())
575         }
576 }
577 impl Readable for ChannelMonitorUpdateStep {
578         fn read<R: ::std::io::Read>(r: &mut R) -> Result<Self, DecodeError> {
579                 match Readable::read(r)? {
580                         0u8 => {
581                                 Ok(ChannelMonitorUpdateStep::LatestHolderCommitmentTXInfo {
582                                         commitment_tx: Readable::read(r)?,
583                                         htlc_outputs: {
584                                                 let len: u64 = Readable::read(r)?;
585                                                 let mut res = Vec::new();
586                                                 for _ in 0..len {
587                                                         res.push((Readable::read(r)?, Readable::read(r)?, Readable::read(r)?));
588                                                 }
589                                                 res
590                                         },
591                                 })
592                         },
593                         1u8 => {
594                                 Ok(ChannelMonitorUpdateStep::LatestCounterpartyCommitmentTXInfo {
595                                         commitment_txid: Readable::read(r)?,
596                                         commitment_number: Readable::read(r)?,
597                                         their_revocation_point: Readable::read(r)?,
598                                         htlc_outputs: {
599                                                 let len: u64 = Readable::read(r)?;
600                                                 let mut res = Vec::new();
601                                                 for _ in 0..len {
602                                                         res.push((Readable::read(r)?, <Option<HTLCSource> as Readable>::read(r)?.map(|o| Box::new(o))));
603                                                 }
604                                                 res
605                                         },
606                                 })
607                         },
608                         2u8 => {
609                                 Ok(ChannelMonitorUpdateStep::PaymentPreimage {
610                                         payment_preimage: Readable::read(r)?,
611                                 })
612                         },
613                         3u8 => {
614                                 Ok(ChannelMonitorUpdateStep::CommitmentSecret {
615                                         idx: Readable::read(r)?,
616                                         secret: Readable::read(r)?,
617                                 })
618                         },
619                         4u8 => {
620                                 Ok(ChannelMonitorUpdateStep::ChannelForceClosed {
621                                         should_broadcast: Readable::read(r)?
622                                 })
623                         },
624                         _ => Err(DecodeError::InvalidValue),
625                 }
626         }
627 }
628
629 /// A ChannelMonitor handles chain events (blocks connected and disconnected) and generates
630 /// on-chain transactions to ensure no loss of funds occurs.
631 ///
632 /// You MUST ensure that no ChannelMonitors for a given channel anywhere contain out-of-date
633 /// information and are actively monitoring the chain.
634 ///
635 /// Pending Events or updated HTLCs which have not yet been read out by
636 /// get_and_clear_pending_monitor_events or get_and_clear_pending_events are serialized to disk and
637 /// reloaded at deserialize-time. Thus, you must ensure that, when handling events, all events
638 /// gotten are fully handled before re-serializing the new state.
639 ///
640 /// Note that the deserializer is only implemented for (BlockHash, ChannelMonitor), which
641 /// tells you the last block hash which was block_connect()ed. You MUST rescan any blocks along
642 /// the "reorg path" (ie disconnecting blocks until you find a common ancestor from both the
643 /// returned block hash and the the current chain and then reconnecting blocks to get to the
644 /// best chain) upon deserializing the object!
645 pub struct ChannelMonitor<Signer: Sign> {
646         #[cfg(test)]
647         pub(crate) inner: Mutex<ChannelMonitorImpl<Signer>>,
648         #[cfg(not(test))]
649         inner: Mutex<ChannelMonitorImpl<Signer>>,
650 }
651
652 pub(crate) struct ChannelMonitorImpl<Signer: Sign> {
653         latest_update_id: u64,
654         commitment_transaction_number_obscure_factor: u64,
655
656         destination_script: Script,
657         broadcasted_holder_revokable_script: Option<(Script, PublicKey, PublicKey)>,
658         counterparty_payment_script: Script,
659         shutdown_script: Script,
660
661         channel_keys_id: [u8; 32],
662         holder_revocation_basepoint: PublicKey,
663         funding_info: (OutPoint, Script),
664         current_counterparty_commitment_txid: Option<Txid>,
665         prev_counterparty_commitment_txid: Option<Txid>,
666
667         counterparty_tx_cache: CounterpartyCommitmentTransaction,
668         funding_redeemscript: Script,
669         channel_value_satoshis: u64,
670         // first is the idx of the first of the two revocation points
671         their_cur_revocation_points: Option<(u64, PublicKey, Option<PublicKey>)>,
672
673         on_holder_tx_csv: u16,
674
675         commitment_secrets: CounterpartyCommitmentSecrets,
676         counterparty_claimable_outpoints: HashMap<Txid, Vec<(HTLCOutputInCommitment, Option<Box<HTLCSource>>)>>,
677         /// We cannot identify HTLC-Success or HTLC-Timeout transactions by themselves on the chain.
678         /// Nor can we figure out their commitment numbers without the commitment transaction they are
679         /// spending. Thus, in order to claim them via revocation key, we track all the counterparty
680         /// commitment transactions which we find on-chain, mapping them to the commitment number which
681         /// can be used to derive the revocation key and claim the transactions.
682         counterparty_commitment_txn_on_chain: HashMap<Txid, u64>,
683         /// Cache used to make pruning of payment_preimages faster.
684         /// Maps payment_hash values to commitment numbers for counterparty transactions for non-revoked
685         /// counterparty transactions (ie should remain pretty small).
686         /// Serialized to disk but should generally not be sent to Watchtowers.
687         counterparty_hash_commitment_number: HashMap<PaymentHash, u64>,
688
689         // We store two holder commitment transactions to avoid any race conditions where we may update
690         // some monitors (potentially on watchtowers) but then fail to update others, resulting in the
691         // various monitors for one channel being out of sync, and us broadcasting a holder
692         // transaction for which we have deleted claim information on some watchtowers.
693         prev_holder_signed_commitment_tx: Option<HolderSignedTx>,
694         current_holder_commitment_tx: HolderSignedTx,
695
696         // Used just for ChannelManager to make sure it has the latest channel data during
697         // deserialization
698         current_counterparty_commitment_number: u64,
699         // Used just for ChannelManager to make sure it has the latest channel data during
700         // deserialization
701         current_holder_commitment_number: u64,
702
703         payment_preimages: HashMap<PaymentHash, PaymentPreimage>,
704
705         pending_monitor_events: Vec<MonitorEvent>,
706         pending_events: Vec<Event>,
707
708         // Used to track on-chain events (i.e., transactions part of channels confirmed on chain) on
709         // which to take actions once they reach enough confirmations. Each entry includes the
710         // transaction's id and the height when the transaction was confirmed on chain.
711         onchain_events_waiting_threshold_conf: Vec<OnchainEventEntry>,
712
713         // If we get serialized out and re-read, we need to make sure that the chain monitoring
714         // interface knows about the TXOs that we want to be notified of spends of. We could probably
715         // be smart and derive them from the above storage fields, but its much simpler and more
716         // Obviously Correct (tm) if we just keep track of them explicitly.
717         outputs_to_watch: HashMap<Txid, Vec<(u32, Script)>>,
718
719         #[cfg(test)]
720         pub onchain_tx_handler: OnchainTxHandler<Signer>,
721         #[cfg(not(test))]
722         onchain_tx_handler: OnchainTxHandler<Signer>,
723
724         // This is set when the Channel[Manager] generated a ChannelMonitorUpdate which indicated the
725         // channel has been force-closed. After this is set, no further holder commitment transaction
726         // updates may occur, and we panic!() if one is provided.
727         lockdown_from_offchain: bool,
728
729         // Set once we've signed a holder commitment transaction and handed it over to our
730         // OnchainTxHandler. After this is set, no future updates to our holder commitment transactions
731         // may occur, and we fail any such monitor updates.
732         //
733         // In case of update rejection due to a locally already signed commitment transaction, we
734         // nevertheless store update content to track in case of concurrent broadcast by another
735         // remote monitor out-of-order with regards to the block view.
736         holder_tx_signed: bool,
737
738         // We simply modify best_block in Channel's block_connected so that serialization is
739         // consistent but hopefully the users' copy handles block_connected in a consistent way.
740         // (we do *not*, however, update them in update_monitor to ensure any local user copies keep
741         // their best_block from its state and not based on updated copies that didn't run through
742         // the full block_connected).
743         best_block: BestBlock,
744
745         secp_ctx: Secp256k1<secp256k1::All>, //TODO: dedup this a bit...
746 }
747
748 #[cfg(any(test, feature = "fuzztarget", feature = "_test_utils"))]
749 /// Used only in testing and fuzztarget to check serialization roundtrips don't change the
750 /// underlying object
751 impl<Signer: Sign> PartialEq for ChannelMonitor<Signer> {
752         fn eq(&self, other: &Self) -> bool {
753                 let inner = self.inner.lock().unwrap();
754                 let other = other.inner.lock().unwrap();
755                 inner.eq(&other)
756         }
757 }
758
759 #[cfg(any(test, feature = "fuzztarget", feature = "_test_utils"))]
760 /// Used only in testing and fuzztarget to check serialization roundtrips don't change the
761 /// underlying object
762 impl<Signer: Sign> PartialEq for ChannelMonitorImpl<Signer> {
763         fn eq(&self, other: &Self) -> bool {
764                 if self.latest_update_id != other.latest_update_id ||
765                         self.commitment_transaction_number_obscure_factor != other.commitment_transaction_number_obscure_factor ||
766                         self.destination_script != other.destination_script ||
767                         self.broadcasted_holder_revokable_script != other.broadcasted_holder_revokable_script ||
768                         self.counterparty_payment_script != other.counterparty_payment_script ||
769                         self.channel_keys_id != other.channel_keys_id ||
770                         self.holder_revocation_basepoint != other.holder_revocation_basepoint ||
771                         self.funding_info != other.funding_info ||
772                         self.current_counterparty_commitment_txid != other.current_counterparty_commitment_txid ||
773                         self.prev_counterparty_commitment_txid != other.prev_counterparty_commitment_txid ||
774                         self.counterparty_tx_cache != other.counterparty_tx_cache ||
775                         self.funding_redeemscript != other.funding_redeemscript ||
776                         self.channel_value_satoshis != other.channel_value_satoshis ||
777                         self.their_cur_revocation_points != other.their_cur_revocation_points ||
778                         self.on_holder_tx_csv != other.on_holder_tx_csv ||
779                         self.commitment_secrets != other.commitment_secrets ||
780                         self.counterparty_claimable_outpoints != other.counterparty_claimable_outpoints ||
781                         self.counterparty_commitment_txn_on_chain != other.counterparty_commitment_txn_on_chain ||
782                         self.counterparty_hash_commitment_number != other.counterparty_hash_commitment_number ||
783                         self.prev_holder_signed_commitment_tx != other.prev_holder_signed_commitment_tx ||
784                         self.current_counterparty_commitment_number != other.current_counterparty_commitment_number ||
785                         self.current_holder_commitment_number != other.current_holder_commitment_number ||
786                         self.current_holder_commitment_tx != other.current_holder_commitment_tx ||
787                         self.payment_preimages != other.payment_preimages ||
788                         self.pending_monitor_events != other.pending_monitor_events ||
789                         self.pending_events.len() != other.pending_events.len() || // We trust events to round-trip properly
790                         self.onchain_events_waiting_threshold_conf != other.onchain_events_waiting_threshold_conf ||
791                         self.outputs_to_watch != other.outputs_to_watch ||
792                         self.lockdown_from_offchain != other.lockdown_from_offchain ||
793                         self.holder_tx_signed != other.holder_tx_signed
794                 {
795                         false
796                 } else {
797                         true
798                 }
799         }
800 }
801
802 impl<Signer: Sign> Writeable for ChannelMonitor<Signer> {
803         fn write<W: Writer>(&self, writer: &mut W) -> Result<(), Error> {
804                 //TODO: We still write out all the serialization here manually instead of using the fancy
805                 //serialization framework we have, we should migrate things over to it.
806                 writer.write_all(&[SERIALIZATION_VERSION; 1])?;
807                 writer.write_all(&[MIN_SERIALIZATION_VERSION; 1])?;
808
809                 self.inner.lock().unwrap().write(writer)
810         }
811 }
812
813 impl<Signer: Sign> Writeable for ChannelMonitorImpl<Signer> {
814         fn write<W: Writer>(&self, writer: &mut W) -> Result<(), Error> {
815                 self.latest_update_id.write(writer)?;
816
817                 // Set in initial Channel-object creation, so should always be set by now:
818                 U48(self.commitment_transaction_number_obscure_factor).write(writer)?;
819
820                 self.destination_script.write(writer)?;
821                 if let Some(ref broadcasted_holder_revokable_script) = self.broadcasted_holder_revokable_script {
822                         writer.write_all(&[0; 1])?;
823                         broadcasted_holder_revokable_script.0.write(writer)?;
824                         broadcasted_holder_revokable_script.1.write(writer)?;
825                         broadcasted_holder_revokable_script.2.write(writer)?;
826                 } else {
827                         writer.write_all(&[1; 1])?;
828                 }
829
830                 self.counterparty_payment_script.write(writer)?;
831                 self.shutdown_script.write(writer)?;
832
833                 self.channel_keys_id.write(writer)?;
834                 self.holder_revocation_basepoint.write(writer)?;
835                 writer.write_all(&self.funding_info.0.txid[..])?;
836                 writer.write_all(&byte_utils::be16_to_array(self.funding_info.0.index))?;
837                 self.funding_info.1.write(writer)?;
838                 self.current_counterparty_commitment_txid.write(writer)?;
839                 self.prev_counterparty_commitment_txid.write(writer)?;
840
841                 self.counterparty_tx_cache.write(writer)?;
842                 self.funding_redeemscript.write(writer)?;
843                 self.channel_value_satoshis.write(writer)?;
844
845                 match self.their_cur_revocation_points {
846                         Some((idx, pubkey, second_option)) => {
847                                 writer.write_all(&byte_utils::be48_to_array(idx))?;
848                                 writer.write_all(&pubkey.serialize())?;
849                                 match second_option {
850                                         Some(second_pubkey) => {
851                                                 writer.write_all(&second_pubkey.serialize())?;
852                                         },
853                                         None => {
854                                                 writer.write_all(&[0; 33])?;
855                                         },
856                                 }
857                         },
858                         None => {
859                                 writer.write_all(&byte_utils::be48_to_array(0))?;
860                         },
861                 }
862
863                 writer.write_all(&byte_utils::be16_to_array(self.on_holder_tx_csv))?;
864
865                 self.commitment_secrets.write(writer)?;
866
867                 macro_rules! serialize_htlc_in_commitment {
868                         ($htlc_output: expr) => {
869                                 writer.write_all(&[$htlc_output.offered as u8; 1])?;
870                                 writer.write_all(&byte_utils::be64_to_array($htlc_output.amount_msat))?;
871                                 writer.write_all(&byte_utils::be32_to_array($htlc_output.cltv_expiry))?;
872                                 writer.write_all(&$htlc_output.payment_hash.0[..])?;
873                                 $htlc_output.transaction_output_index.write(writer)?;
874                         }
875                 }
876
877                 writer.write_all(&byte_utils::be64_to_array(self.counterparty_claimable_outpoints.len() as u64))?;
878                 for (ref txid, ref htlc_infos) in self.counterparty_claimable_outpoints.iter() {
879                         writer.write_all(&txid[..])?;
880                         writer.write_all(&byte_utils::be64_to_array(htlc_infos.len() as u64))?;
881                         for &(ref htlc_output, ref htlc_source) in htlc_infos.iter() {
882                                 serialize_htlc_in_commitment!(htlc_output);
883                                 htlc_source.as_ref().map(|b| b.as_ref()).write(writer)?;
884                         }
885                 }
886
887                 writer.write_all(&byte_utils::be64_to_array(self.counterparty_commitment_txn_on_chain.len() as u64))?;
888                 for (ref txid, commitment_number) in self.counterparty_commitment_txn_on_chain.iter() {
889                         writer.write_all(&txid[..])?;
890                         writer.write_all(&byte_utils::be48_to_array(*commitment_number))?;
891                 }
892
893                 writer.write_all(&byte_utils::be64_to_array(self.counterparty_hash_commitment_number.len() as u64))?;
894                 for (ref payment_hash, commitment_number) in self.counterparty_hash_commitment_number.iter() {
895                         writer.write_all(&payment_hash.0[..])?;
896                         writer.write_all(&byte_utils::be48_to_array(*commitment_number))?;
897                 }
898
899                 macro_rules! serialize_holder_tx {
900                         ($holder_tx: expr) => {
901                                 $holder_tx.txid.write(writer)?;
902                                 writer.write_all(&$holder_tx.revocation_key.serialize())?;
903                                 writer.write_all(&$holder_tx.a_htlc_key.serialize())?;
904                                 writer.write_all(&$holder_tx.b_htlc_key.serialize())?;
905                                 writer.write_all(&$holder_tx.delayed_payment_key.serialize())?;
906                                 writer.write_all(&$holder_tx.per_commitment_point.serialize())?;
907
908                                 writer.write_all(&byte_utils::be32_to_array($holder_tx.feerate_per_kw))?;
909                                 writer.write_all(&byte_utils::be64_to_array($holder_tx.htlc_outputs.len() as u64))?;
910                                 for &(ref htlc_output, ref sig, ref htlc_source) in $holder_tx.htlc_outputs.iter() {
911                                         serialize_htlc_in_commitment!(htlc_output);
912                                         if let &Some(ref their_sig) = sig {
913                                                 1u8.write(writer)?;
914                                                 writer.write_all(&their_sig.serialize_compact())?;
915                                         } else {
916                                                 0u8.write(writer)?;
917                                         }
918                                         htlc_source.write(writer)?;
919                                 }
920                         }
921                 }
922
923                 if let Some(ref prev_holder_tx) = self.prev_holder_signed_commitment_tx {
924                         writer.write_all(&[1; 1])?;
925                         serialize_holder_tx!(prev_holder_tx);
926                 } else {
927                         writer.write_all(&[0; 1])?;
928                 }
929
930                 serialize_holder_tx!(self.current_holder_commitment_tx);
931
932                 writer.write_all(&byte_utils::be48_to_array(self.current_counterparty_commitment_number))?;
933                 writer.write_all(&byte_utils::be48_to_array(self.current_holder_commitment_number))?;
934
935                 writer.write_all(&byte_utils::be64_to_array(self.payment_preimages.len() as u64))?;
936                 for payment_preimage in self.payment_preimages.values() {
937                         writer.write_all(&payment_preimage.0[..])?;
938                 }
939
940                 writer.write_all(&byte_utils::be64_to_array(self.pending_monitor_events.len() as u64))?;
941                 for event in self.pending_monitor_events.iter() {
942                         match event {
943                                 MonitorEvent::HTLCEvent(upd) => {
944                                         0u8.write(writer)?;
945                                         upd.write(writer)?;
946                                 },
947                                 MonitorEvent::CommitmentTxBroadcasted(_) => 1u8.write(writer)?
948                         }
949                 }
950
951                 writer.write_all(&byte_utils::be64_to_array(self.pending_events.len() as u64))?;
952                 for event in self.pending_events.iter() {
953                         event.write(writer)?;
954                 }
955
956                 self.best_block.block_hash().write(writer)?;
957                 writer.write_all(&byte_utils::be32_to_array(self.best_block.height()))?;
958
959                 writer.write_all(&byte_utils::be64_to_array(self.onchain_events_waiting_threshold_conf.len() as u64))?;
960                 for ref entry in self.onchain_events_waiting_threshold_conf.iter() {
961                         entry.txid.write(writer)?;
962                         writer.write_all(&byte_utils::be32_to_array(entry.height))?;
963                         match entry.event {
964                                 OnchainEvent::HTLCUpdate { ref htlc_update } => {
965                                         0u8.write(writer)?;
966                                         htlc_update.0.write(writer)?;
967                                         htlc_update.1.write(writer)?;
968                                 },
969                                 OnchainEvent::MaturingOutput { ref descriptor } => {
970                                         1u8.write(writer)?;
971                                         descriptor.write(writer)?;
972                                 },
973                         }
974                 }
975
976                 (self.outputs_to_watch.len() as u64).write(writer)?;
977                 for (txid, idx_scripts) in self.outputs_to_watch.iter() {
978                         txid.write(writer)?;
979                         (idx_scripts.len() as u64).write(writer)?;
980                         for (idx, script) in idx_scripts.iter() {
981                                 idx.write(writer)?;
982                                 script.write(writer)?;
983                         }
984                 }
985                 self.onchain_tx_handler.write(writer)?;
986
987                 self.lockdown_from_offchain.write(writer)?;
988                 self.holder_tx_signed.write(writer)?;
989
990                 Ok(())
991         }
992 }
993
994 impl<Signer: Sign> ChannelMonitor<Signer> {
995         pub(crate) fn new(secp_ctx: Secp256k1<secp256k1::All>, keys: Signer, shutdown_pubkey: &PublicKey,
996                           on_counterparty_tx_csv: u16, destination_script: &Script, funding_info: (OutPoint, Script),
997                           channel_parameters: &ChannelTransactionParameters,
998                           funding_redeemscript: Script, channel_value_satoshis: u64,
999                           commitment_transaction_number_obscure_factor: u64,
1000                           initial_holder_commitment_tx: HolderCommitmentTransaction,
1001                           best_block: BestBlock) -> ChannelMonitor<Signer> {
1002
1003                 assert!(commitment_transaction_number_obscure_factor <= (1 << 48));
1004                 let our_channel_close_key_hash = WPubkeyHash::hash(&shutdown_pubkey.serialize());
1005                 let shutdown_script = Builder::new().push_opcode(opcodes::all::OP_PUSHBYTES_0).push_slice(&our_channel_close_key_hash[..]).into_script();
1006                 let payment_key_hash = WPubkeyHash::hash(&keys.pubkeys().payment_point.serialize());
1007                 let counterparty_payment_script = Builder::new().push_opcode(opcodes::all::OP_PUSHBYTES_0).push_slice(&payment_key_hash[..]).into_script();
1008
1009                 let counterparty_channel_parameters = channel_parameters.counterparty_parameters.as_ref().unwrap();
1010                 let counterparty_delayed_payment_base_key = counterparty_channel_parameters.pubkeys.delayed_payment_basepoint;
1011                 let counterparty_htlc_base_key = counterparty_channel_parameters.pubkeys.htlc_basepoint;
1012                 let counterparty_tx_cache = CounterpartyCommitmentTransaction { counterparty_delayed_payment_base_key, counterparty_htlc_base_key, on_counterparty_tx_csv, per_htlc: HashMap::new() };
1013
1014                 let channel_keys_id = keys.channel_keys_id();
1015                 let holder_revocation_basepoint = keys.pubkeys().revocation_basepoint;
1016
1017                 // block for Rust 1.34 compat
1018                 let (holder_commitment_tx, current_holder_commitment_number) = {
1019                         let trusted_tx = initial_holder_commitment_tx.trust();
1020                         let txid = trusted_tx.txid();
1021
1022                         let tx_keys = trusted_tx.keys();
1023                         let holder_commitment_tx = HolderSignedTx {
1024                                 txid,
1025                                 revocation_key: tx_keys.revocation_key,
1026                                 a_htlc_key: tx_keys.broadcaster_htlc_key,
1027                                 b_htlc_key: tx_keys.countersignatory_htlc_key,
1028                                 delayed_payment_key: tx_keys.broadcaster_delayed_payment_key,
1029                                 per_commitment_point: tx_keys.per_commitment_point,
1030                                 feerate_per_kw: trusted_tx.feerate_per_kw(),
1031                                 htlc_outputs: Vec::new(), // There are never any HTLCs in the initial commitment transactions
1032                         };
1033                         (holder_commitment_tx, trusted_tx.commitment_number())
1034                 };
1035
1036                 let onchain_tx_handler =
1037                         OnchainTxHandler::new(destination_script.clone(), keys,
1038                         channel_parameters.clone(), initial_holder_commitment_tx, secp_ctx.clone());
1039
1040                 let mut outputs_to_watch = HashMap::new();
1041                 outputs_to_watch.insert(funding_info.0.txid, vec![(funding_info.0.index as u32, funding_info.1.clone())]);
1042
1043                 ChannelMonitor {
1044                         inner: Mutex::new(ChannelMonitorImpl {
1045                                 latest_update_id: 0,
1046                                 commitment_transaction_number_obscure_factor,
1047
1048                                 destination_script: destination_script.clone(),
1049                                 broadcasted_holder_revokable_script: None,
1050                                 counterparty_payment_script,
1051                                 shutdown_script,
1052
1053                                 channel_keys_id,
1054                                 holder_revocation_basepoint,
1055                                 funding_info,
1056                                 current_counterparty_commitment_txid: None,
1057                                 prev_counterparty_commitment_txid: None,
1058
1059                                 counterparty_tx_cache,
1060                                 funding_redeemscript,
1061                                 channel_value_satoshis,
1062                                 their_cur_revocation_points: None,
1063
1064                                 on_holder_tx_csv: counterparty_channel_parameters.selected_contest_delay,
1065
1066                                 commitment_secrets: CounterpartyCommitmentSecrets::new(),
1067                                 counterparty_claimable_outpoints: HashMap::new(),
1068                                 counterparty_commitment_txn_on_chain: HashMap::new(),
1069                                 counterparty_hash_commitment_number: HashMap::new(),
1070
1071                                 prev_holder_signed_commitment_tx: None,
1072                                 current_holder_commitment_tx: holder_commitment_tx,
1073                                 current_counterparty_commitment_number: 1 << 48,
1074                                 current_holder_commitment_number,
1075
1076                                 payment_preimages: HashMap::new(),
1077                                 pending_monitor_events: Vec::new(),
1078                                 pending_events: Vec::new(),
1079
1080                                 onchain_events_waiting_threshold_conf: Vec::new(),
1081                                 outputs_to_watch,
1082
1083                                 onchain_tx_handler,
1084
1085                                 lockdown_from_offchain: false,
1086                                 holder_tx_signed: false,
1087
1088                                 best_block,
1089
1090                                 secp_ctx,
1091                         }),
1092                 }
1093         }
1094
1095         #[cfg(test)]
1096         fn provide_secret(&self, idx: u64, secret: [u8; 32]) -> Result<(), MonitorUpdateError> {
1097                 self.inner.lock().unwrap().provide_secret(idx, secret)
1098         }
1099
1100         /// Informs this monitor of the latest counterparty (ie non-broadcastable) commitment transaction.
1101         /// The monitor watches for it to be broadcasted and then uses the HTLC information (and
1102         /// possibly future revocation/preimage information) to claim outputs where possible.
1103         /// We cache also the mapping hash:commitment number to lighten pruning of old preimages by watchtowers.
1104         pub(crate) fn provide_latest_counterparty_commitment_tx<L: Deref>(
1105                 &self,
1106                 txid: Txid,
1107                 htlc_outputs: Vec<(HTLCOutputInCommitment, Option<Box<HTLCSource>>)>,
1108                 commitment_number: u64,
1109                 their_revocation_point: PublicKey,
1110                 logger: &L,
1111         ) where L::Target: Logger {
1112                 self.inner.lock().unwrap().provide_latest_counterparty_commitment_tx(
1113                         txid, htlc_outputs, commitment_number, their_revocation_point, logger)
1114         }
1115
1116         #[cfg(test)]
1117         fn provide_latest_holder_commitment_tx(
1118                 &self,
1119                 holder_commitment_tx: HolderCommitmentTransaction,
1120                 htlc_outputs: Vec<(HTLCOutputInCommitment, Option<Signature>, Option<HTLCSource>)>,
1121         ) -> Result<(), MonitorUpdateError> {
1122                 self.inner.lock().unwrap().provide_latest_holder_commitment_tx(
1123                         holder_commitment_tx, htlc_outputs)
1124         }
1125
1126         #[cfg(test)]
1127         pub(crate) fn provide_payment_preimage<B: Deref, F: Deref, L: Deref>(
1128                 &self,
1129                 payment_hash: &PaymentHash,
1130                 payment_preimage: &PaymentPreimage,
1131                 broadcaster: &B,
1132                 fee_estimator: &F,
1133                 logger: &L,
1134         ) where
1135                 B::Target: BroadcasterInterface,
1136                 F::Target: FeeEstimator,
1137                 L::Target: Logger,
1138         {
1139                 self.inner.lock().unwrap().provide_payment_preimage(
1140                         payment_hash, payment_preimage, broadcaster, fee_estimator, logger)
1141         }
1142
1143         pub(crate) fn broadcast_latest_holder_commitment_txn<B: Deref, L: Deref>(
1144                 &self,
1145                 broadcaster: &B,
1146                 logger: &L,
1147         ) where
1148                 B::Target: BroadcasterInterface,
1149                 L::Target: Logger,
1150         {
1151                 self.inner.lock().unwrap().broadcast_latest_holder_commitment_txn(broadcaster, logger)
1152         }
1153
1154         /// Updates a ChannelMonitor on the basis of some new information provided by the Channel
1155         /// itself.
1156         ///
1157         /// panics if the given update is not the next update by update_id.
1158         pub fn update_monitor<B: Deref, F: Deref, L: Deref>(
1159                 &self,
1160                 updates: &ChannelMonitorUpdate,
1161                 broadcaster: &B,
1162                 fee_estimator: &F,
1163                 logger: &L,
1164         ) -> Result<(), MonitorUpdateError>
1165         where
1166                 B::Target: BroadcasterInterface,
1167                 F::Target: FeeEstimator,
1168                 L::Target: Logger,
1169         {
1170                 self.inner.lock().unwrap().update_monitor(updates, broadcaster, fee_estimator, logger)
1171         }
1172
1173         /// Gets the update_id from the latest ChannelMonitorUpdate which was applied to this
1174         /// ChannelMonitor.
1175         pub fn get_latest_update_id(&self) -> u64 {
1176                 self.inner.lock().unwrap().get_latest_update_id()
1177         }
1178
1179         /// Gets the funding transaction outpoint of the channel this ChannelMonitor is monitoring for.
1180         pub fn get_funding_txo(&self) -> (OutPoint, Script) {
1181                 self.inner.lock().unwrap().get_funding_txo().clone()
1182         }
1183
1184         /// Gets a list of txids, with their output scripts (in the order they appear in the
1185         /// transaction), which we must learn about spends of via block_connected().
1186         pub fn get_outputs_to_watch(&self) -> Vec<(Txid, Vec<(u32, Script)>)> {
1187                 self.inner.lock().unwrap().get_outputs_to_watch()
1188                         .iter().map(|(txid, outputs)| (*txid, outputs.clone())).collect()
1189         }
1190
1191         /// Loads the funding txo and outputs to watch into the given `chain::Filter` by repeatedly
1192         /// calling `chain::Filter::register_output` and `chain::Filter::register_tx` until all outputs
1193         /// have been registered.
1194         pub fn load_outputs_to_watch<F: Deref>(&self, filter: &F) where F::Target: chain::Filter {
1195                 let lock = self.inner.lock().unwrap();
1196                 filter.register_tx(&lock.get_funding_txo().0.txid, &lock.get_funding_txo().1);
1197                 for (txid, outputs) in lock.get_outputs_to_watch().iter() {
1198                         for (index, script_pubkey) in outputs.iter() {
1199                                 assert!(*index <= u16::max_value() as u32);
1200                                 filter.register_output(WatchedOutput {
1201                                         block_hash: None,
1202                                         outpoint: OutPoint { txid: *txid, index: *index as u16 },
1203                                         script_pubkey: script_pubkey.clone(),
1204                                 });
1205                         }
1206                 }
1207         }
1208
1209         /// Get the list of HTLCs who's status has been updated on chain. This should be called by
1210         /// ChannelManager via [`chain::Watch::release_pending_monitor_events`].
1211         pub fn get_and_clear_pending_monitor_events(&self) -> Vec<MonitorEvent> {
1212                 self.inner.lock().unwrap().get_and_clear_pending_monitor_events()
1213         }
1214
1215         /// Gets the list of pending events which were generated by previous actions, clearing the list
1216         /// in the process.
1217         ///
1218         /// This is called by ChainMonitor::get_and_clear_pending_events() and is equivalent to
1219         /// EventsProvider::get_and_clear_pending_events() except that it requires &mut self as we do
1220         /// no internal locking in ChannelMonitors.
1221         pub fn get_and_clear_pending_events(&self) -> Vec<Event> {
1222                 self.inner.lock().unwrap().get_and_clear_pending_events()
1223         }
1224
1225         pub(crate) fn get_min_seen_secret(&self) -> u64 {
1226                 self.inner.lock().unwrap().get_min_seen_secret()
1227         }
1228
1229         pub(crate) fn get_cur_counterparty_commitment_number(&self) -> u64 {
1230                 self.inner.lock().unwrap().get_cur_counterparty_commitment_number()
1231         }
1232
1233         pub(crate) fn get_cur_holder_commitment_number(&self) -> u64 {
1234                 self.inner.lock().unwrap().get_cur_holder_commitment_number()
1235         }
1236
1237         /// Used by ChannelManager deserialization to broadcast the latest holder state if its copy of
1238         /// the Channel was out-of-date. You may use it to get a broadcastable holder toxic tx in case of
1239         /// fallen-behind, i.e when receiving a channel_reestablish with a proof that our counterparty side knows
1240         /// a higher revocation secret than the holder commitment number we are aware of. Broadcasting these
1241         /// transactions are UNSAFE, as they allow counterparty side to punish you. Nevertheless you may want to
1242         /// broadcast them if counterparty don't close channel with his higher commitment transaction after a
1243         /// substantial amount of time (a month or even a year) to get back funds. Best may be to contact
1244         /// out-of-band the other node operator to coordinate with him if option is available to you.
1245         /// In any-case, choice is up to the user.
1246         pub fn get_latest_holder_commitment_txn<L: Deref>(&self, logger: &L) -> Vec<Transaction>
1247         where L::Target: Logger {
1248                 self.inner.lock().unwrap().get_latest_holder_commitment_txn(logger)
1249         }
1250
1251         /// Unsafe test-only version of get_latest_holder_commitment_txn used by our test framework
1252         /// to bypass HolderCommitmentTransaction state update lockdown after signature and generate
1253         /// revoked commitment transaction.
1254         #[cfg(any(test, feature = "unsafe_revoked_tx_signing"))]
1255         pub fn unsafe_get_latest_holder_commitment_txn<L: Deref>(&self, logger: &L) -> Vec<Transaction>
1256         where L::Target: Logger {
1257                 self.inner.lock().unwrap().unsafe_get_latest_holder_commitment_txn(logger)
1258         }
1259
1260         /// Processes transactions in a newly connected block, which may result in any of the following:
1261         /// - update the monitor's state against resolved HTLCs
1262         /// - punish the counterparty in the case of seeing a revoked commitment transaction
1263         /// - force close the channel and claim/timeout incoming/outgoing HTLCs if near expiration
1264         /// - detect settled outputs for later spending
1265         /// - schedule and bump any in-flight claims
1266         ///
1267         /// Returns any new outputs to watch from `txdata`; after called, these are also included in
1268         /// [`get_outputs_to_watch`].
1269         ///
1270         /// [`get_outputs_to_watch`]: #method.get_outputs_to_watch
1271         pub fn block_connected<B: Deref, F: Deref, L: Deref>(
1272                 &self,
1273                 header: &BlockHeader,
1274                 txdata: &TransactionData,
1275                 height: u32,
1276                 broadcaster: B,
1277                 fee_estimator: F,
1278                 logger: L,
1279         ) -> Vec<(Txid, Vec<(u32, TxOut)>)>
1280         where
1281                 B::Target: BroadcasterInterface,
1282                 F::Target: FeeEstimator,
1283                 L::Target: Logger,
1284         {
1285                 self.inner.lock().unwrap().block_connected(
1286                         header, txdata, height, broadcaster, fee_estimator, logger)
1287         }
1288
1289         /// Determines if the disconnected block contained any transactions of interest and updates
1290         /// appropriately.
1291         pub fn block_disconnected<B: Deref, F: Deref, L: Deref>(
1292                 &self,
1293                 header: &BlockHeader,
1294                 height: u32,
1295                 broadcaster: B,
1296                 fee_estimator: F,
1297                 logger: L,
1298         ) where
1299                 B::Target: BroadcasterInterface,
1300                 F::Target: FeeEstimator,
1301                 L::Target: Logger,
1302         {
1303                 self.inner.lock().unwrap().block_disconnected(
1304                         header, height, broadcaster, fee_estimator, logger)
1305         }
1306
1307         /// Processes transactions confirmed in a block with the given header and height, returning new
1308         /// outputs to watch. See [`block_connected`] for details.
1309         ///
1310         /// Used instead of [`block_connected`] by clients that are notified of transactions rather than
1311         /// blocks. May be called before or after [`update_best_block`] for transactions in the
1312         /// corresponding block. See [`update_best_block`] for further calling expectations. 
1313         ///
1314         /// [`block_connected`]: Self::block_connected
1315         /// [`update_best_block`]: Self::update_best_block
1316         pub fn transactions_confirmed<B: Deref, F: Deref, L: Deref>(
1317                 &self,
1318                 header: &BlockHeader,
1319                 txdata: &TransactionData,
1320                 height: u32,
1321                 broadcaster: B,
1322                 fee_estimator: F,
1323                 logger: L,
1324         ) -> Vec<(Txid, Vec<(u32, TxOut)>)>
1325         where
1326                 B::Target: BroadcasterInterface,
1327                 F::Target: FeeEstimator,
1328                 L::Target: Logger,
1329         {
1330                 self.inner.lock().unwrap().transactions_confirmed(
1331                         header, txdata, height, broadcaster, fee_estimator, logger)
1332         }
1333
1334         /// Processes a transaction that was reorganized out of the chain.
1335         ///
1336         /// Used instead of [`block_disconnected`] by clients that are notified of transactions rather
1337         /// than blocks. May be called before or after [`update_best_block`] for transactions in the
1338         /// corresponding block. See [`update_best_block`] for further calling expectations.
1339         ///
1340         /// [`block_disconnected`]: Self::block_disconnected
1341         /// [`update_best_block`]: Self::update_best_block
1342         pub fn transaction_unconfirmed<B: Deref, F: Deref, L: Deref>(
1343                 &self,
1344                 txid: &Txid,
1345                 broadcaster: B,
1346                 fee_estimator: F,
1347                 logger: L,
1348         ) where
1349                 B::Target: BroadcasterInterface,
1350                 F::Target: FeeEstimator,
1351                 L::Target: Logger,
1352         {
1353                 self.inner.lock().unwrap().transaction_unconfirmed(
1354                         txid, broadcaster, fee_estimator, logger);
1355         }
1356
1357         /// Updates the monitor with the current best chain tip, returning new outputs to watch. See
1358         /// [`block_connected`] for details.
1359         ///
1360         /// Used instead of [`block_connected`] by clients that are notified of transactions rather than
1361         /// blocks. May be called before or after [`transactions_confirmed`] for the corresponding
1362         /// block.
1363         ///
1364         /// Must be called after new blocks become available for the most recent block. Intermediary
1365         /// blocks, however, may be safely skipped. In the event of a chain re-organization, this only
1366         /// needs to be called for the most recent block assuming `transaction_unconfirmed` is called
1367         /// for any affected transactions.
1368         ///
1369         /// [`block_connected`]: Self::block_connected
1370         /// [`transactions_confirmed`]: Self::transactions_confirmed
1371         /// [`transaction_unconfirmed`]: Self::transaction_unconfirmed
1372         pub fn update_best_block<B: Deref, F: Deref, L: Deref>(
1373                 &self,
1374                 header: &BlockHeader,
1375                 height: u32,
1376                 broadcaster: B,
1377                 fee_estimator: F,
1378                 logger: L,
1379         ) -> Vec<(Txid, Vec<(u32, TxOut)>)>
1380         where
1381                 B::Target: BroadcasterInterface,
1382                 F::Target: FeeEstimator,
1383                 L::Target: Logger,
1384         {
1385                 self.inner.lock().unwrap().update_best_block(
1386                         header, height, broadcaster, fee_estimator, logger)
1387         }
1388 }
1389
1390 impl<Signer: Sign> ChannelMonitorImpl<Signer> {
1391         /// Inserts a revocation secret into this channel monitor. Prunes old preimages if neither
1392         /// needed by holder commitment transactions HTCLs nor by counterparty ones. Unless we haven't already seen
1393         /// counterparty commitment transaction's secret, they are de facto pruned (we can use revocation key).
1394         fn provide_secret(&mut self, idx: u64, secret: [u8; 32]) -> Result<(), MonitorUpdateError> {
1395                 if let Err(()) = self.commitment_secrets.provide_secret(idx, secret) {
1396                         return Err(MonitorUpdateError("Previous secret did not match new one"));
1397                 }
1398
1399                 // Prune HTLCs from the previous counterparty commitment tx so we don't generate failure/fulfill
1400                 // events for now-revoked/fulfilled HTLCs.
1401                 if let Some(txid) = self.prev_counterparty_commitment_txid.take() {
1402                         for &mut (_, ref mut source) in self.counterparty_claimable_outpoints.get_mut(&txid).unwrap() {
1403                                 *source = None;
1404                         }
1405                 }
1406
1407                 if !self.payment_preimages.is_empty() {
1408                         let cur_holder_signed_commitment_tx = &self.current_holder_commitment_tx;
1409                         let prev_holder_signed_commitment_tx = self.prev_holder_signed_commitment_tx.as_ref();
1410                         let min_idx = self.get_min_seen_secret();
1411                         let counterparty_hash_commitment_number = &mut self.counterparty_hash_commitment_number;
1412
1413                         self.payment_preimages.retain(|&k, _| {
1414                                 for &(ref htlc, _, _) in cur_holder_signed_commitment_tx.htlc_outputs.iter() {
1415                                         if k == htlc.payment_hash {
1416                                                 return true
1417                                         }
1418                                 }
1419                                 if let Some(prev_holder_commitment_tx) = prev_holder_signed_commitment_tx {
1420                                         for &(ref htlc, _, _) in prev_holder_commitment_tx.htlc_outputs.iter() {
1421                                                 if k == htlc.payment_hash {
1422                                                         return true
1423                                                 }
1424                                         }
1425                                 }
1426                                 let contains = if let Some(cn) = counterparty_hash_commitment_number.get(&k) {
1427                                         if *cn < min_idx {
1428                                                 return true
1429                                         }
1430                                         true
1431                                 } else { false };
1432                                 if contains {
1433                                         counterparty_hash_commitment_number.remove(&k);
1434                                 }
1435                                 false
1436                         });
1437                 }
1438
1439                 Ok(())
1440         }
1441
1442         pub(crate) fn provide_latest_counterparty_commitment_tx<L: Deref>(&mut self, txid: Txid, htlc_outputs: Vec<(HTLCOutputInCommitment, Option<Box<HTLCSource>>)>, commitment_number: u64, their_revocation_point: PublicKey, logger: &L) where L::Target: Logger {
1443                 // TODO: Encrypt the htlc_outputs data with the single-hash of the commitment transaction
1444                 // so that a remote monitor doesn't learn anything unless there is a malicious close.
1445                 // (only maybe, sadly we cant do the same for local info, as we need to be aware of
1446                 // timeouts)
1447                 for &(ref htlc, _) in &htlc_outputs {
1448                         self.counterparty_hash_commitment_number.insert(htlc.payment_hash, commitment_number);
1449                 }
1450
1451                 log_trace!(logger, "Tracking new counterparty commitment transaction with txid {} at commitment number {} with {} HTLC outputs", txid, commitment_number, htlc_outputs.len());
1452                 self.prev_counterparty_commitment_txid = self.current_counterparty_commitment_txid.take();
1453                 self.current_counterparty_commitment_txid = Some(txid);
1454                 self.counterparty_claimable_outpoints.insert(txid, htlc_outputs.clone());
1455                 self.current_counterparty_commitment_number = commitment_number;
1456                 //TODO: Merge this into the other per-counterparty-transaction output storage stuff
1457                 match self.their_cur_revocation_points {
1458                         Some(old_points) => {
1459                                 if old_points.0 == commitment_number + 1 {
1460                                         self.their_cur_revocation_points = Some((old_points.0, old_points.1, Some(their_revocation_point)));
1461                                 } else if old_points.0 == commitment_number + 2 {
1462                                         if let Some(old_second_point) = old_points.2 {
1463                                                 self.their_cur_revocation_points = Some((old_points.0 - 1, old_second_point, Some(their_revocation_point)));
1464                                         } else {
1465                                                 self.their_cur_revocation_points = Some((commitment_number, their_revocation_point, None));
1466                                         }
1467                                 } else {
1468                                         self.their_cur_revocation_points = Some((commitment_number, their_revocation_point, None));
1469                                 }
1470                         },
1471                         None => {
1472                                 self.their_cur_revocation_points = Some((commitment_number, their_revocation_point, None));
1473                         }
1474                 }
1475                 let mut htlcs = Vec::with_capacity(htlc_outputs.len());
1476                 for htlc in htlc_outputs {
1477                         if htlc.0.transaction_output_index.is_some() {
1478                                 htlcs.push(htlc.0);
1479                         }
1480                 }
1481                 self.counterparty_tx_cache.per_htlc.insert(txid, htlcs);
1482         }
1483
1484         /// Informs this monitor of the latest holder (ie broadcastable) commitment transaction. The
1485         /// monitor watches for timeouts and may broadcast it if we approach such a timeout. Thus, it
1486         /// is important that any clones of this channel monitor (including remote clones) by kept
1487         /// up-to-date as our holder commitment transaction is updated.
1488         /// Panics if set_on_holder_tx_csv has never been called.
1489         fn provide_latest_holder_commitment_tx(&mut self, holder_commitment_tx: HolderCommitmentTransaction, htlc_outputs: Vec<(HTLCOutputInCommitment, Option<Signature>, Option<HTLCSource>)>) -> Result<(), MonitorUpdateError> {
1490                 // block for Rust 1.34 compat
1491                 let mut new_holder_commitment_tx = {
1492                         let trusted_tx = holder_commitment_tx.trust();
1493                         let txid = trusted_tx.txid();
1494                         let tx_keys = trusted_tx.keys();
1495                         self.current_holder_commitment_number = trusted_tx.commitment_number();
1496                         HolderSignedTx {
1497                                 txid,
1498                                 revocation_key: tx_keys.revocation_key,
1499                                 a_htlc_key: tx_keys.broadcaster_htlc_key,
1500                                 b_htlc_key: tx_keys.countersignatory_htlc_key,
1501                                 delayed_payment_key: tx_keys.broadcaster_delayed_payment_key,
1502                                 per_commitment_point: tx_keys.per_commitment_point,
1503                                 feerate_per_kw: trusted_tx.feerate_per_kw(),
1504                                 htlc_outputs,
1505                         }
1506                 };
1507                 self.onchain_tx_handler.provide_latest_holder_tx(holder_commitment_tx);
1508                 mem::swap(&mut new_holder_commitment_tx, &mut self.current_holder_commitment_tx);
1509                 self.prev_holder_signed_commitment_tx = Some(new_holder_commitment_tx);
1510                 if self.holder_tx_signed {
1511                         return Err(MonitorUpdateError("Latest holder commitment signed has already been signed, update is rejected"));
1512                 }
1513                 Ok(())
1514         }
1515
1516         /// Provides a payment_hash->payment_preimage mapping. Will be automatically pruned when all
1517         /// commitment_tx_infos which contain the payment hash have been revoked.
1518         fn provide_payment_preimage<B: Deref, F: Deref, L: Deref>(&mut self, payment_hash: &PaymentHash, payment_preimage: &PaymentPreimage, broadcaster: &B, fee_estimator: &F, logger: &L)
1519         where B::Target: BroadcasterInterface,
1520                     F::Target: FeeEstimator,
1521                     L::Target: Logger,
1522         {
1523                 self.payment_preimages.insert(payment_hash.clone(), payment_preimage.clone());
1524
1525                 // If the channel is force closed, try to claim the output from this preimage.
1526                 // First check if a counterparty commitment transaction has been broadcasted:
1527                 macro_rules! claim_htlcs {
1528                         ($commitment_number: expr, $txid: expr) => {
1529                                 let htlc_claim_reqs = self.get_counterparty_htlc_output_claim_reqs($commitment_number, $txid, None);
1530                                 self.onchain_tx_handler.update_claims_view(&Vec::new(), htlc_claim_reqs, None, broadcaster, fee_estimator, logger);
1531                         }
1532                 }
1533                 if let Some(txid) = self.current_counterparty_commitment_txid {
1534                         if let Some(commitment_number) = self.counterparty_commitment_txn_on_chain.get(&txid) {
1535                                 claim_htlcs!(*commitment_number, txid);
1536                                 return;
1537                         }
1538                 }
1539                 if let Some(txid) = self.prev_counterparty_commitment_txid {
1540                         if let Some(commitment_number) = self.counterparty_commitment_txn_on_chain.get(&txid) {
1541                                 claim_htlcs!(*commitment_number, txid);
1542                                 return;
1543                         }
1544                 }
1545
1546                 // Then if a holder commitment transaction has been seen on-chain, broadcast transactions
1547                 // claiming the HTLC output from each of the holder commitment transactions.
1548                 // Note that we can't just use `self.holder_tx_signed`, because that only covers the case where
1549                 // *we* sign a holder commitment transaction, not when e.g. a watchtower broadcasts one of our
1550                 // holder commitment transactions.
1551                 if self.broadcasted_holder_revokable_script.is_some() {
1552                         let (claim_reqs, _) = self.get_broadcasted_holder_claims(&self.current_holder_commitment_tx);
1553                         self.onchain_tx_handler.update_claims_view(&Vec::new(), claim_reqs, None, broadcaster, fee_estimator, logger);
1554                         if let Some(ref tx) = self.prev_holder_signed_commitment_tx {
1555                                 let (claim_reqs, _) = self.get_broadcasted_holder_claims(&tx);
1556                                 self.onchain_tx_handler.update_claims_view(&Vec::new(), claim_reqs, None, broadcaster, fee_estimator, logger);
1557                         }
1558                 }
1559         }
1560
1561         pub(crate) fn broadcast_latest_holder_commitment_txn<B: Deref, L: Deref>(&mut self, broadcaster: &B, logger: &L)
1562                 where B::Target: BroadcasterInterface,
1563                                         L::Target: Logger,
1564         {
1565                 for tx in self.get_latest_holder_commitment_txn(logger).iter() {
1566                         broadcaster.broadcast_transaction(tx);
1567                 }
1568                 self.pending_monitor_events.push(MonitorEvent::CommitmentTxBroadcasted(self.funding_info.0));
1569         }
1570
1571         pub fn update_monitor<B: Deref, F: Deref, L: Deref>(&mut self, updates: &ChannelMonitorUpdate, broadcaster: &B, fee_estimator: &F, logger: &L) -> Result<(), MonitorUpdateError>
1572         where B::Target: BroadcasterInterface,
1573                     F::Target: FeeEstimator,
1574                     L::Target: Logger,
1575         {
1576                 // ChannelMonitor updates may be applied after force close if we receive a
1577                 // preimage for a broadcasted commitment transaction HTLC output that we'd
1578                 // like to claim on-chain. If this is the case, we no longer have guaranteed
1579                 // access to the monitor's update ID, so we use a sentinel value instead.
1580                 if updates.update_id == CLOSED_CHANNEL_UPDATE_ID {
1581                         match updates.updates[0] {
1582                                 ChannelMonitorUpdateStep::PaymentPreimage { .. } => {},
1583                                 _ => panic!("Attempted to apply post-force-close ChannelMonitorUpdate that wasn't providing a payment preimage"),
1584                         }
1585                         assert_eq!(updates.updates.len(), 1);
1586                 } else if self.latest_update_id + 1 != updates.update_id {
1587                         panic!("Attempted to apply ChannelMonitorUpdates out of order, check the update_id before passing an update to update_monitor!");
1588                 }
1589                 for update in updates.updates.iter() {
1590                         match update {
1591                                 ChannelMonitorUpdateStep::LatestHolderCommitmentTXInfo { commitment_tx, htlc_outputs } => {
1592                                         log_trace!(logger, "Updating ChannelMonitor with latest holder commitment transaction info");
1593                                         if self.lockdown_from_offchain { panic!(); }
1594                                         self.provide_latest_holder_commitment_tx(commitment_tx.clone(), htlc_outputs.clone())?
1595                                 }
1596                                 ChannelMonitorUpdateStep::LatestCounterpartyCommitmentTXInfo { commitment_txid, htlc_outputs, commitment_number, their_revocation_point } => {
1597                                         log_trace!(logger, "Updating ChannelMonitor with latest counterparty commitment transaction info");
1598                                         self.provide_latest_counterparty_commitment_tx(*commitment_txid, htlc_outputs.clone(), *commitment_number, *their_revocation_point, logger)
1599                                 },
1600                                 ChannelMonitorUpdateStep::PaymentPreimage { payment_preimage } => {
1601                                         log_trace!(logger, "Updating ChannelMonitor with payment preimage");
1602                                         self.provide_payment_preimage(&PaymentHash(Sha256::hash(&payment_preimage.0[..]).into_inner()), &payment_preimage, broadcaster, fee_estimator, logger)
1603                                 },
1604                                 ChannelMonitorUpdateStep::CommitmentSecret { idx, secret } => {
1605                                         log_trace!(logger, "Updating ChannelMonitor with commitment secret");
1606                                         self.provide_secret(*idx, *secret)?
1607                                 },
1608                                 ChannelMonitorUpdateStep::ChannelForceClosed { should_broadcast } => {
1609                                         log_trace!(logger, "Updating ChannelMonitor: channel force closed, should broadcast: {}", should_broadcast);
1610                                         self.lockdown_from_offchain = true;
1611                                         if *should_broadcast {
1612                                                 self.broadcast_latest_holder_commitment_txn(broadcaster, logger);
1613                                         } else if !self.holder_tx_signed {
1614                                                 log_error!(logger, "You have a toxic holder commitment transaction avaible in channel monitor, read comment in ChannelMonitor::get_latest_holder_commitment_txn to be informed of manual action to take");
1615                                         } else {
1616                                                 // If we generated a MonitorEvent::CommitmentTxBroadcasted, the ChannelManager
1617                                                 // will still give us a ChannelForceClosed event with !should_broadcast, but we
1618                                                 // shouldn't print the scary warning above.
1619                                                 log_info!(logger, "Channel off-chain state closed after we broadcasted our latest commitment transaction.");
1620                                         }
1621                                 }
1622                         }
1623                 }
1624                 self.latest_update_id = updates.update_id;
1625                 Ok(())
1626         }
1627
1628         pub fn get_latest_update_id(&self) -> u64 {
1629                 self.latest_update_id
1630         }
1631
1632         pub fn get_funding_txo(&self) -> &(OutPoint, Script) {
1633                 &self.funding_info
1634         }
1635
1636         pub fn get_outputs_to_watch(&self) -> &HashMap<Txid, Vec<(u32, Script)>> {
1637                 // If we've detected a counterparty commitment tx on chain, we must include it in the set
1638                 // of outputs to watch for spends of, otherwise we're likely to lose user funds. Because
1639                 // its trivial to do, double-check that here.
1640                 for (txid, _) in self.counterparty_commitment_txn_on_chain.iter() {
1641                         self.outputs_to_watch.get(txid).expect("Counterparty commitment txn which have been broadcast should have outputs registered");
1642                 }
1643                 &self.outputs_to_watch
1644         }
1645
1646         pub fn get_and_clear_pending_monitor_events(&mut self) -> Vec<MonitorEvent> {
1647                 let mut ret = Vec::new();
1648                 mem::swap(&mut ret, &mut self.pending_monitor_events);
1649                 ret
1650         }
1651
1652         pub fn get_and_clear_pending_events(&mut self) -> Vec<Event> {
1653                 let mut ret = Vec::new();
1654                 mem::swap(&mut ret, &mut self.pending_events);
1655                 ret
1656         }
1657
1658         /// Can only fail if idx is < get_min_seen_secret
1659         fn get_secret(&self, idx: u64) -> Option<[u8; 32]> {
1660                 self.commitment_secrets.get_secret(idx)
1661         }
1662
1663         pub(crate) fn get_min_seen_secret(&self) -> u64 {
1664                 self.commitment_secrets.get_min_seen_secret()
1665         }
1666
1667         pub(crate) fn get_cur_counterparty_commitment_number(&self) -> u64 {
1668                 self.current_counterparty_commitment_number
1669         }
1670
1671         pub(crate) fn get_cur_holder_commitment_number(&self) -> u64 {
1672                 self.current_holder_commitment_number
1673         }
1674
1675         /// Attempts to claim a counterparty commitment transaction's outputs using the revocation key and
1676         /// data in counterparty_claimable_outpoints. Will directly claim any HTLC outputs which expire at a
1677         /// height > height + CLTV_SHARED_CLAIM_BUFFER. In any case, will install monitoring for
1678         /// HTLC-Success/HTLC-Timeout transactions.
1679         /// Return updates for HTLC pending in the channel and failed automatically by the broadcast of
1680         /// revoked counterparty commitment tx
1681         fn check_spend_counterparty_transaction<L: Deref>(&mut self, tx: &Transaction, height: u32, logger: &L) -> (Vec<ClaimRequest>, (Txid, Vec<(u32, TxOut)>)) where L::Target: Logger {
1682                 // Most secp and related errors trying to create keys means we have no hope of constructing
1683                 // a spend transaction...so we return no transactions to broadcast
1684                 let mut claimable_outpoints = Vec::new();
1685                 let mut watch_outputs = Vec::new();
1686
1687                 let commitment_txid = tx.txid(); //TODO: This is gonna be a performance bottleneck for watchtowers!
1688                 let per_commitment_option = self.counterparty_claimable_outpoints.get(&commitment_txid);
1689
1690                 macro_rules! ignore_error {
1691                         ( $thing : expr ) => {
1692                                 match $thing {
1693                                         Ok(a) => a,
1694                                         Err(_) => return (claimable_outpoints, (commitment_txid, watch_outputs))
1695                                 }
1696                         };
1697                 }
1698
1699                 let commitment_number = 0xffffffffffff - ((((tx.input[0].sequence as u64 & 0xffffff) << 3*8) | (tx.lock_time as u64 & 0xffffff)) ^ self.commitment_transaction_number_obscure_factor);
1700                 if commitment_number >= self.get_min_seen_secret() {
1701                         let secret = self.get_secret(commitment_number).unwrap();
1702                         let per_commitment_key = ignore_error!(SecretKey::from_slice(&secret));
1703                         let per_commitment_point = PublicKey::from_secret_key(&self.secp_ctx, &per_commitment_key);
1704                         let revocation_pubkey = ignore_error!(chan_utils::derive_public_revocation_key(&self.secp_ctx, &per_commitment_point, &self.holder_revocation_basepoint));
1705                         let delayed_key = ignore_error!(chan_utils::derive_public_key(&self.secp_ctx, &PublicKey::from_secret_key(&self.secp_ctx, &per_commitment_key), &self.counterparty_tx_cache.counterparty_delayed_payment_base_key));
1706
1707                         let revokeable_redeemscript = chan_utils::get_revokeable_redeemscript(&revocation_pubkey, self.counterparty_tx_cache.on_counterparty_tx_csv, &delayed_key);
1708                         let revokeable_p2wsh = revokeable_redeemscript.to_v0_p2wsh();
1709
1710                         // First, process non-htlc outputs (to_holder & to_counterparty)
1711                         for (idx, outp) in tx.output.iter().enumerate() {
1712                                 if outp.script_pubkey == revokeable_p2wsh {
1713                                         let witness_data = InputMaterial::Revoked { per_commitment_point, counterparty_delayed_payment_base_key: self.counterparty_tx_cache.counterparty_delayed_payment_base_key, counterparty_htlc_base_key: self.counterparty_tx_cache.counterparty_htlc_base_key, per_commitment_key, input_descriptor: InputDescriptors::RevokedOutput, amount: outp.value, htlc: None, on_counterparty_tx_csv: self.counterparty_tx_cache.on_counterparty_tx_csv};
1714                                         claimable_outpoints.push(ClaimRequest { absolute_timelock: height + self.counterparty_tx_cache.on_counterparty_tx_csv as u32, aggregable: true, outpoint: BitcoinOutPoint { txid: commitment_txid, vout: idx as u32 }, witness_data});
1715                                 }
1716                         }
1717
1718                         // Then, try to find revoked htlc outputs
1719                         if let Some(ref per_commitment_data) = per_commitment_option {
1720                                 for (_, &(ref htlc, _)) in per_commitment_data.iter().enumerate() {
1721                                         if let Some(transaction_output_index) = htlc.transaction_output_index {
1722                                                 if transaction_output_index as usize >= tx.output.len() ||
1723                                                                 tx.output[transaction_output_index as usize].value != htlc.amount_msat / 1000 {
1724                                                         return (claimable_outpoints, (commitment_txid, watch_outputs)); // Corrupted per_commitment_data, fuck this user
1725                                                 }
1726                                                 let witness_data = InputMaterial::Revoked { per_commitment_point, counterparty_delayed_payment_base_key: self.counterparty_tx_cache.counterparty_delayed_payment_base_key, counterparty_htlc_base_key: self.counterparty_tx_cache.counterparty_htlc_base_key, per_commitment_key, input_descriptor: if htlc.offered { InputDescriptors::RevokedOfferedHTLC } else { InputDescriptors::RevokedReceivedHTLC }, amount: tx.output[transaction_output_index as usize].value, htlc: Some(htlc.clone()), on_counterparty_tx_csv: self.counterparty_tx_cache.on_counterparty_tx_csv};
1727                                                 claimable_outpoints.push(ClaimRequest { absolute_timelock: htlc.cltv_expiry, aggregable: true, outpoint: BitcoinOutPoint { txid: commitment_txid, vout: transaction_output_index }, witness_data });
1728                                         }
1729                                 }
1730                         }
1731
1732                         // Last, track onchain revoked commitment transaction and fail backward outgoing HTLCs as payment path is broken
1733                         if !claimable_outpoints.is_empty() || per_commitment_option.is_some() { // ie we're confident this is actually ours
1734                                 // We're definitely a counterparty commitment transaction!
1735                                 log_trace!(logger, "Got broadcast of revoked counterparty commitment transaction, going to generate general spend tx with {} inputs", claimable_outpoints.len());
1736                                 for (idx, outp) in tx.output.iter().enumerate() {
1737                                         watch_outputs.push((idx as u32, outp.clone()));
1738                                 }
1739                                 self.counterparty_commitment_txn_on_chain.insert(commitment_txid, commitment_number);
1740
1741                                 macro_rules! check_htlc_fails {
1742                                         ($txid: expr, $commitment_tx: expr) => {
1743                                                 if let Some(ref outpoints) = self.counterparty_claimable_outpoints.get($txid) {
1744                                                         for &(ref htlc, ref source_option) in outpoints.iter() {
1745                                                                 if let &Some(ref source) = source_option {
1746                                                                         self.onchain_events_waiting_threshold_conf.retain(|ref entry| {
1747                                                                                 if entry.height != height { return true; }
1748                                                                                 match entry.event {
1749                                                                                          OnchainEvent::HTLCUpdate { ref htlc_update } => {
1750                                                                                                  htlc_update.0 != **source
1751                                                                                          },
1752                                                                                          _ => true,
1753                                                                                 }
1754                                                                         });
1755                                                                         let entry = OnchainEventEntry {
1756                                                                                 txid: *$txid,
1757                                                                                 height,
1758                                                                                 event: OnchainEvent::HTLCUpdate {
1759                                                                                         htlc_update: ((**source).clone(), htlc.payment_hash.clone())
1760                                                                                 },
1761                                                                         };
1762                                                                         log_info!(logger, "Failing HTLC with payment_hash {} from {} counterparty commitment tx due to broadcast of revoked counterparty commitment transaction, waiting for confirmation (at height {})", log_bytes!(htlc.payment_hash.0), $commitment_tx, entry.confirmation_threshold());
1763                                                                         self.onchain_events_waiting_threshold_conf.push(entry);
1764                                                                 }
1765                                                         }
1766                                                 }
1767                                         }
1768                                 }
1769                                 if let Some(ref txid) = self.current_counterparty_commitment_txid {
1770                                         check_htlc_fails!(txid, "current");
1771                                 }
1772                                 if let Some(ref txid) = self.prev_counterparty_commitment_txid {
1773                                         check_htlc_fails!(txid, "counterparty");
1774                                 }
1775                                 // No need to check holder commitment txn, symmetric HTLCSource must be present as per-htlc data on counterparty commitment tx
1776                         }
1777                 } else if let Some(per_commitment_data) = per_commitment_option {
1778                         // While this isn't useful yet, there is a potential race where if a counterparty
1779                         // revokes a state at the same time as the commitment transaction for that state is
1780                         // confirmed, and the watchtower receives the block before the user, the user could
1781                         // upload a new ChannelMonitor with the revocation secret but the watchtower has
1782                         // already processed the block, resulting in the counterparty_commitment_txn_on_chain entry
1783                         // not being generated by the above conditional. Thus, to be safe, we go ahead and
1784                         // insert it here.
1785                         for (idx, outp) in tx.output.iter().enumerate() {
1786                                 watch_outputs.push((idx as u32, outp.clone()));
1787                         }
1788                         self.counterparty_commitment_txn_on_chain.insert(commitment_txid, commitment_number);
1789
1790                         log_trace!(logger, "Got broadcast of non-revoked counterparty commitment transaction {}", commitment_txid);
1791
1792                         macro_rules! check_htlc_fails {
1793                                 ($txid: expr, $commitment_tx: expr, $id: tt) => {
1794                                         if let Some(ref latest_outpoints) = self.counterparty_claimable_outpoints.get($txid) {
1795                                                 $id: for &(ref htlc, ref source_option) in latest_outpoints.iter() {
1796                                                         if let &Some(ref source) = source_option {
1797                                                                 // Check if the HTLC is present in the commitment transaction that was
1798                                                                 // broadcast, but not if it was below the dust limit, which we should
1799                                                                 // fail backwards immediately as there is no way for us to learn the
1800                                                                 // payment_preimage.
1801                                                                 // Note that if the dust limit were allowed to change between
1802                                                                 // commitment transactions we'd want to be check whether *any*
1803                                                                 // broadcastable commitment transaction has the HTLC in it, but it
1804                                                                 // cannot currently change after channel initialization, so we don't
1805                                                                 // need to here.
1806                                                                 for &(ref broadcast_htlc, ref broadcast_source) in per_commitment_data.iter() {
1807                                                                         if broadcast_htlc.transaction_output_index.is_some() && Some(source) == broadcast_source.as_ref() {
1808                                                                                 continue $id;
1809                                                                         }
1810                                                                 }
1811                                                                 log_trace!(logger, "Failing HTLC with payment_hash {} from {} counterparty commitment tx due to broadcast of counterparty commitment transaction", log_bytes!(htlc.payment_hash.0), $commitment_tx);
1812                                                                 self.onchain_events_waiting_threshold_conf.retain(|ref entry| {
1813                                                                         if entry.height != height { return true; }
1814                                                                         match entry.event {
1815                                                                                  OnchainEvent::HTLCUpdate { ref htlc_update } => {
1816                                                                                          htlc_update.0 != **source
1817                                                                                  },
1818                                                                                  _ => true,
1819                                                                         }
1820                                                                 });
1821                                                                 self.onchain_events_waiting_threshold_conf.push(OnchainEventEntry {
1822                                                                         txid: *$txid,
1823                                                                         height,
1824                                                                         event: OnchainEvent::HTLCUpdate {
1825                                                                                 htlc_update: ((**source).clone(), htlc.payment_hash.clone())
1826                                                                         },
1827                                                                 });
1828                                                         }
1829                                                 }
1830                                         }
1831                                 }
1832                         }
1833                         if let Some(ref txid) = self.current_counterparty_commitment_txid {
1834                                 check_htlc_fails!(txid, "current", 'current_loop);
1835                         }
1836                         if let Some(ref txid) = self.prev_counterparty_commitment_txid {
1837                                 check_htlc_fails!(txid, "previous", 'prev_loop);
1838                         }
1839
1840                         let htlc_claim_reqs = self.get_counterparty_htlc_output_claim_reqs(commitment_number, commitment_txid, Some(tx));
1841                         for req in htlc_claim_reqs {
1842                                 claimable_outpoints.push(req);
1843                         }
1844
1845                 }
1846                 (claimable_outpoints, (commitment_txid, watch_outputs))
1847         }
1848
1849         fn get_counterparty_htlc_output_claim_reqs(&self, commitment_number: u64, commitment_txid: Txid, tx: Option<&Transaction>) -> Vec<ClaimRequest> {
1850                 let mut claims = Vec::new();
1851                 if let Some(htlc_outputs) = self.counterparty_claimable_outpoints.get(&commitment_txid) {
1852                         if let Some(revocation_points) = self.their_cur_revocation_points {
1853                                 let revocation_point_option =
1854                                         // If the counterparty commitment tx is the latest valid state, use their latest
1855                                         // per-commitment point
1856                                         if revocation_points.0 == commitment_number { Some(&revocation_points.1) }
1857                                         else if let Some(point) = revocation_points.2.as_ref() {
1858                                                 // If counterparty commitment tx is the state previous to the latest valid state, use
1859                                                 // their previous per-commitment point (non-atomicity of revocation means it's valid for
1860                                                 // them to temporarily have two valid commitment txns from our viewpoint)
1861                                                 if revocation_points.0 == commitment_number + 1 { Some(point) } else { None }
1862                                         } else { None };
1863                                 if let Some(revocation_point) = revocation_point_option {
1864                                         for (_, &(ref htlc, _)) in htlc_outputs.iter().enumerate() {
1865                                                 if let Some(transaction_output_index) = htlc.transaction_output_index {
1866                                                         if let Some(transaction) = tx {
1867                                                                 if transaction_output_index as usize >= transaction.output.len() ||
1868                                                                         transaction.output[transaction_output_index as usize].value != htlc.amount_msat / 1000 {
1869                                                                                 return claims; // Corrupted per_commitment_data, fuck this user
1870                                                                         }
1871                                                         }
1872                                                         let preimage =
1873                                                                 if htlc.offered {
1874                                                                         if let Some(p) = self.payment_preimages.get(&htlc.payment_hash) {
1875                                                                                 Some(*p)
1876                                                                         } else { None }
1877                                                                 } else { None };
1878                                                         let aggregable = if !htlc.offered { false } else { true };
1879                                                         if preimage.is_some() || !htlc.offered {
1880                                                                 let witness_data = InputMaterial::CounterpartyHTLC { per_commitment_point: *revocation_point, counterparty_delayed_payment_base_key: self.counterparty_tx_cache.counterparty_delayed_payment_base_key, counterparty_htlc_base_key: self.counterparty_tx_cache.counterparty_htlc_base_key, preimage, htlc: htlc.clone() };
1881                                                                 claims.push(ClaimRequest { absolute_timelock: htlc.cltv_expiry, aggregable, outpoint: BitcoinOutPoint { txid: commitment_txid, vout: transaction_output_index }, witness_data });
1882                                                         }
1883                                                 }
1884                                         }
1885                                 }
1886                         }
1887                 }
1888                 claims
1889         }
1890
1891         /// Attempts to claim a counterparty HTLC-Success/HTLC-Timeout's outputs using the revocation key
1892         fn check_spend_counterparty_htlc<L: Deref>(&mut self, tx: &Transaction, commitment_number: u64, height: u32, logger: &L) -> (Vec<ClaimRequest>, Option<(Txid, Vec<(u32, TxOut)>)>) where L::Target: Logger {
1893                 let htlc_txid = tx.txid();
1894                 if tx.input.len() != 1 || tx.output.len() != 1 || tx.input[0].witness.len() != 5 {
1895                         return (Vec::new(), None)
1896                 }
1897
1898                 macro_rules! ignore_error {
1899                         ( $thing : expr ) => {
1900                                 match $thing {
1901                                         Ok(a) => a,
1902                                         Err(_) => return (Vec::new(), None)
1903                                 }
1904                         };
1905                 }
1906
1907                 let secret = if let Some(secret) = self.get_secret(commitment_number) { secret } else { return (Vec::new(), None); };
1908                 let per_commitment_key = ignore_error!(SecretKey::from_slice(&secret));
1909                 let per_commitment_point = PublicKey::from_secret_key(&self.secp_ctx, &per_commitment_key);
1910
1911                 log_trace!(logger, "Counterparty HTLC broadcast {}:{}", htlc_txid, 0);
1912                 let witness_data = InputMaterial::Revoked { per_commitment_point, counterparty_delayed_payment_base_key: self.counterparty_tx_cache.counterparty_delayed_payment_base_key, counterparty_htlc_base_key: self.counterparty_tx_cache.counterparty_htlc_base_key,  per_commitment_key, input_descriptor: InputDescriptors::RevokedOutput, amount: tx.output[0].value, htlc: None, on_counterparty_tx_csv: self.counterparty_tx_cache.on_counterparty_tx_csv };
1913                 let claimable_outpoints = vec!(ClaimRequest { absolute_timelock: height + self.counterparty_tx_cache.on_counterparty_tx_csv as u32, aggregable: true, outpoint: BitcoinOutPoint { txid: htlc_txid, vout: 0}, witness_data });
1914                 let outputs = vec![(0, tx.output[0].clone())];
1915                 (claimable_outpoints, Some((htlc_txid, outputs)))
1916         }
1917
1918         // Returns (1) `ClaimRequest`s that can be given to the OnChainTxHandler, so that the handler can
1919         // broadcast transactions claiming holder HTLC commitment outputs and (2) a holder revokable
1920         // script so we can detect whether a holder transaction has been seen on-chain.
1921         fn get_broadcasted_holder_claims(&self, holder_tx: &HolderSignedTx) -> (Vec<ClaimRequest>, Option<(Script, PublicKey, PublicKey)>) {
1922                 let mut claim_requests = Vec::with_capacity(holder_tx.htlc_outputs.len());
1923
1924                 let redeemscript = chan_utils::get_revokeable_redeemscript(&holder_tx.revocation_key, self.on_holder_tx_csv, &holder_tx.delayed_payment_key);
1925                 let broadcasted_holder_revokable_script = Some((redeemscript.to_v0_p2wsh(), holder_tx.per_commitment_point.clone(), holder_tx.revocation_key.clone()));
1926
1927                 for &(ref htlc, _, _) in holder_tx.htlc_outputs.iter() {
1928                         if let Some(transaction_output_index) = htlc.transaction_output_index {
1929                                 claim_requests.push(ClaimRequest { absolute_timelock: ::std::u32::MAX, aggregable: false, outpoint: BitcoinOutPoint { txid: holder_tx.txid, vout: transaction_output_index as u32 },
1930                                         witness_data: InputMaterial::HolderHTLC {
1931                                                 preimage: if !htlc.offered {
1932                                                                 if let Some(preimage) = self.payment_preimages.get(&htlc.payment_hash) {
1933                                                                         Some(preimage.clone())
1934                                                                 } else {
1935                                                                         // We can't build an HTLC-Success transaction without the preimage
1936                                                                         continue;
1937                                                                 }
1938                                                         } else { None },
1939                                                 amount: htlc.amount_msat,
1940                                 }});
1941                         }
1942                 }
1943
1944                 (claim_requests, broadcasted_holder_revokable_script)
1945         }
1946
1947         // Returns holder HTLC outputs to watch and react to in case of spending.
1948         fn get_broadcasted_holder_watch_outputs(&self, holder_tx: &HolderSignedTx, commitment_tx: &Transaction) -> Vec<(u32, TxOut)> {
1949                 let mut watch_outputs = Vec::with_capacity(holder_tx.htlc_outputs.len());
1950                 for &(ref htlc, _, _) in holder_tx.htlc_outputs.iter() {
1951                         if let Some(transaction_output_index) = htlc.transaction_output_index {
1952                                 watch_outputs.push((transaction_output_index, commitment_tx.output[transaction_output_index as usize].clone()));
1953                         }
1954                 }
1955                 watch_outputs
1956         }
1957
1958         /// Attempts to claim any claimable HTLCs in a commitment transaction which was not (yet)
1959         /// revoked using data in holder_claimable_outpoints.
1960         /// Should not be used if check_spend_revoked_transaction succeeds.
1961         fn check_spend_holder_transaction<L: Deref>(&mut self, tx: &Transaction, height: u32, logger: &L) -> (Vec<ClaimRequest>, (Txid, Vec<(u32, TxOut)>)) where L::Target: Logger {
1962                 let commitment_txid = tx.txid();
1963                 let mut claim_requests = Vec::new();
1964                 let mut watch_outputs = Vec::new();
1965
1966                 macro_rules! wait_threshold_conf {
1967                         ($source: expr, $commitment_tx: expr, $payment_hash: expr) => {
1968                                 self.onchain_events_waiting_threshold_conf.retain(|ref entry| {
1969                                         if entry.height != height { return true; }
1970                                         match entry.event {
1971                                                  OnchainEvent::HTLCUpdate { ref htlc_update } => {
1972                                                          htlc_update.0 != $source
1973                                                  },
1974                                                  _ => true,
1975                                         }
1976                                 });
1977                                 let entry = OnchainEventEntry {
1978                                         txid: commitment_txid,
1979                                         height,
1980                                         event: OnchainEvent::HTLCUpdate { htlc_update: ($source, $payment_hash) },
1981                                 };
1982                                 log_trace!(logger, "Failing HTLC with payment_hash {} from {} holder commitment tx due to broadcast of transaction, waiting confirmation (at height{})", log_bytes!($payment_hash.0), $commitment_tx, entry.confirmation_threshold());
1983                                 self.onchain_events_waiting_threshold_conf.push(entry);
1984                         }
1985                 }
1986
1987                 macro_rules! append_onchain_update {
1988                         ($updates: expr, $to_watch: expr) => {
1989                                 claim_requests = $updates.0;
1990                                 self.broadcasted_holder_revokable_script = $updates.1;
1991                                 watch_outputs.append(&mut $to_watch);
1992                         }
1993                 }
1994
1995                 // HTLCs set may differ between last and previous holder commitment txn, in case of one them hitting chain, ensure we cancel all HTLCs backward
1996                 let mut is_holder_tx = false;
1997
1998                 if self.current_holder_commitment_tx.txid == commitment_txid {
1999                         is_holder_tx = true;
2000                         log_trace!(logger, "Got latest holder commitment tx broadcast, searching for available HTLCs to claim");
2001                         let res = self.get_broadcasted_holder_claims(&self.current_holder_commitment_tx);
2002                         let mut to_watch = self.get_broadcasted_holder_watch_outputs(&self.current_holder_commitment_tx, tx);
2003                         append_onchain_update!(res, to_watch);
2004                 } else if let &Some(ref holder_tx) = &self.prev_holder_signed_commitment_tx {
2005                         if holder_tx.txid == commitment_txid {
2006                                 is_holder_tx = true;
2007                                 log_trace!(logger, "Got previous holder commitment tx broadcast, searching for available HTLCs to claim");
2008                                 let res = self.get_broadcasted_holder_claims(holder_tx);
2009                                 let mut to_watch = self.get_broadcasted_holder_watch_outputs(holder_tx, tx);
2010                                 append_onchain_update!(res, to_watch);
2011                         }
2012                 }
2013
2014                 macro_rules! fail_dust_htlcs_after_threshold_conf {
2015                         ($holder_tx: expr) => {
2016                                 for &(ref htlc, _, ref source) in &$holder_tx.htlc_outputs {
2017                                         if htlc.transaction_output_index.is_none() {
2018                                                 if let &Some(ref source) = source {
2019                                                         wait_threshold_conf!(source.clone(), "lastest", htlc.payment_hash.clone());
2020                                                 }
2021                                         }
2022                                 }
2023                         }
2024                 }
2025
2026                 if is_holder_tx {
2027                         fail_dust_htlcs_after_threshold_conf!(self.current_holder_commitment_tx);
2028                         if let &Some(ref holder_tx) = &self.prev_holder_signed_commitment_tx {
2029                                 fail_dust_htlcs_after_threshold_conf!(holder_tx);
2030                         }
2031                 }
2032
2033                 (claim_requests, (commitment_txid, watch_outputs))
2034         }
2035
2036         pub fn get_latest_holder_commitment_txn<L: Deref>(&mut self, logger: &L) -> Vec<Transaction> where L::Target: Logger {
2037                 log_trace!(logger, "Getting signed latest holder commitment transaction!");
2038                 self.holder_tx_signed = true;
2039                 let commitment_tx = self.onchain_tx_handler.get_fully_signed_holder_tx(&self.funding_redeemscript);
2040                 let txid = commitment_tx.txid();
2041                 let mut res = vec![commitment_tx];
2042                 for htlc in self.current_holder_commitment_tx.htlc_outputs.iter() {
2043                         if let Some(vout) = htlc.0.transaction_output_index {
2044                                 let preimage = if !htlc.0.offered {
2045                                         if let Some(preimage) = self.payment_preimages.get(&htlc.0.payment_hash) { Some(preimage.clone()) } else {
2046                                                 // We can't build an HTLC-Success transaction without the preimage
2047                                                 continue;
2048                                         }
2049                                 } else { None };
2050                                 if let Some(htlc_tx) = self.onchain_tx_handler.get_fully_signed_htlc_tx(
2051                                         &::bitcoin::OutPoint { txid, vout }, &preimage) {
2052                                         res.push(htlc_tx);
2053                                 }
2054                         }
2055                 }
2056                 // We throw away the generated waiting_first_conf data as we aren't (yet) confirmed and we don't actually know what the caller wants to do.
2057                 // The data will be re-generated and tracked in check_spend_holder_transaction if we get a confirmation.
2058                 return res;
2059         }
2060
2061         #[cfg(any(test,feature = "unsafe_revoked_tx_signing"))]
2062         fn unsafe_get_latest_holder_commitment_txn<L: Deref>(&mut self, logger: &L) -> Vec<Transaction> where L::Target: Logger {
2063                 log_trace!(logger, "Getting signed copy of latest holder commitment transaction!");
2064                 let commitment_tx = self.onchain_tx_handler.get_fully_signed_copy_holder_tx(&self.funding_redeemscript);
2065                 let txid = commitment_tx.txid();
2066                 let mut res = vec![commitment_tx];
2067                 for htlc in self.current_holder_commitment_tx.htlc_outputs.iter() {
2068                         if let Some(vout) = htlc.0.transaction_output_index {
2069                                 let preimage = if !htlc.0.offered {
2070                                         if let Some(preimage) = self.payment_preimages.get(&htlc.0.payment_hash) { Some(preimage.clone()) } else {
2071                                                 // We can't build an HTLC-Success transaction without the preimage
2072                                                 continue;
2073                                         }
2074                                 } else { None };
2075                                 if let Some(htlc_tx) = self.onchain_tx_handler.unsafe_get_fully_signed_htlc_tx(
2076                                         &::bitcoin::OutPoint { txid, vout }, &preimage) {
2077                                         res.push(htlc_tx);
2078                                 }
2079                         }
2080                 }
2081                 return res
2082         }
2083
2084         pub fn block_connected<B: Deref, F: Deref, L: Deref>(&mut self, header: &BlockHeader, txdata: &TransactionData, height: u32, broadcaster: B, fee_estimator: F, logger: L)-> Vec<(Txid, Vec<(u32, TxOut)>)>
2085                 where B::Target: BroadcasterInterface,
2086                       F::Target: FeeEstimator,
2087                                         L::Target: Logger,
2088         {
2089                 let block_hash = header.block_hash();
2090                 log_trace!(logger, "New best block {} at height {}", block_hash, height);
2091                 self.best_block = BestBlock::new(block_hash, height);
2092
2093                 self.transactions_confirmed(header, txdata, height, broadcaster, fee_estimator, logger)
2094         }
2095
2096         fn update_best_block<B: Deref, F: Deref, L: Deref>(
2097                 &mut self,
2098                 header: &BlockHeader,
2099                 height: u32,
2100                 broadcaster: B,
2101                 fee_estimator: F,
2102                 logger: L,
2103         ) -> Vec<(Txid, Vec<(u32, TxOut)>)>
2104         where
2105                 B::Target: BroadcasterInterface,
2106                 F::Target: FeeEstimator,
2107                 L::Target: Logger,
2108         {
2109                 let block_hash = header.block_hash();
2110                 log_trace!(logger, "New best block {} at height {}", block_hash, height);
2111
2112                 if height > self.best_block.height() {
2113                         self.best_block = BestBlock::new(block_hash, height);
2114                         self.block_confirmed(height, vec![], vec![], vec![], broadcaster, fee_estimator, logger)
2115                 } else {
2116                         self.best_block = BestBlock::new(block_hash, height);
2117                         self.onchain_events_waiting_threshold_conf.retain(|ref entry| entry.height <= height);
2118                         self.onchain_tx_handler.block_disconnected(height + 1, broadcaster, fee_estimator, logger);
2119                         Vec::new()
2120                 }
2121         }
2122
2123         fn transactions_confirmed<B: Deref, F: Deref, L: Deref>(
2124                 &mut self,
2125                 header: &BlockHeader,
2126                 txdata: &TransactionData,
2127                 height: u32,
2128                 broadcaster: B,
2129                 fee_estimator: F,
2130                 logger: L,
2131         ) -> Vec<(Txid, Vec<(u32, TxOut)>)>
2132         where
2133                 B::Target: BroadcasterInterface,
2134                 F::Target: FeeEstimator,
2135                 L::Target: Logger,
2136         {
2137                 let txn_matched = self.filter_block(txdata);
2138                 for tx in &txn_matched {
2139                         let mut output_val = 0;
2140                         for out in tx.output.iter() {
2141                                 if out.value > 21_000_000_0000_0000 { panic!("Value-overflowing transaction provided to block connected"); }
2142                                 output_val += out.value;
2143                                 if output_val > 21_000_000_0000_0000 { panic!("Value-overflowing transaction provided to block connected"); }
2144                         }
2145                 }
2146
2147                 let block_hash = header.block_hash();
2148                 log_trace!(logger, "Block {} at height {} connected with {} txn matched", block_hash, height, txn_matched.len());
2149
2150                 let mut watch_outputs = Vec::new();
2151                 let mut claimable_outpoints = Vec::new();
2152                 for tx in &txn_matched {
2153                         if tx.input.len() == 1 {
2154                                 // Assuming our keys were not leaked (in which case we're screwed no matter what),
2155                                 // commitment transactions and HTLC transactions will all only ever have one input,
2156                                 // which is an easy way to filter out any potential non-matching txn for lazy
2157                                 // filters.
2158                                 let prevout = &tx.input[0].previous_output;
2159                                 if prevout.txid == self.funding_info.0.txid && prevout.vout == self.funding_info.0.index as u32 {
2160                                         if (tx.input[0].sequence >> 8*3) as u8 == 0x80 && (tx.lock_time >> 8*3) as u8 == 0x20 {
2161                                                 let (mut new_outpoints, new_outputs) = self.check_spend_counterparty_transaction(&tx, height, &logger);
2162                                                 if !new_outputs.1.is_empty() {
2163                                                         watch_outputs.push(new_outputs);
2164                                                 }
2165                                                 if new_outpoints.is_empty() {
2166                                                         let (mut new_outpoints, new_outputs) = self.check_spend_holder_transaction(&tx, height, &logger);
2167                                                         if !new_outputs.1.is_empty() {
2168                                                                 watch_outputs.push(new_outputs);
2169                                                         }
2170                                                         claimable_outpoints.append(&mut new_outpoints);
2171                                                 }
2172                                                 claimable_outpoints.append(&mut new_outpoints);
2173                                         }
2174                                 } else {
2175                                         if let Some(&commitment_number) = self.counterparty_commitment_txn_on_chain.get(&prevout.txid) {
2176                                                 let (mut new_outpoints, new_outputs_option) = self.check_spend_counterparty_htlc(&tx, commitment_number, height, &logger);
2177                                                 claimable_outpoints.append(&mut new_outpoints);
2178                                                 if let Some(new_outputs) = new_outputs_option {
2179                                                         watch_outputs.push(new_outputs);
2180                                                 }
2181                                         }
2182                                 }
2183                         }
2184                         // While all commitment/HTLC-Success/HTLC-Timeout transactions have one input, HTLCs
2185                         // can also be resolved in a few other ways which can have more than one output. Thus,
2186                         // we call is_resolving_htlc_output here outside of the tx.input.len() == 1 check.
2187                         self.is_resolving_htlc_output(&tx, height, &logger);
2188
2189                         self.is_paying_spendable_output(&tx, height, &logger);
2190                 }
2191
2192                 self.block_confirmed(height, txn_matched, watch_outputs, claimable_outpoints, broadcaster, fee_estimator, logger)
2193         }
2194
2195         fn block_confirmed<B: Deref, F: Deref, L: Deref>(
2196                 &mut self,
2197                 height: u32,
2198                 txn_matched: Vec<&Transaction>,
2199                 mut watch_outputs: Vec<(Txid, Vec<(u32, TxOut)>)>,
2200                 mut claimable_outpoints: Vec<ClaimRequest>,
2201                 broadcaster: B,
2202                 fee_estimator: F,
2203                 logger: L,
2204         ) -> Vec<(Txid, Vec<(u32, TxOut)>)>
2205         where
2206                 B::Target: BroadcasterInterface,
2207                 F::Target: FeeEstimator,
2208                 L::Target: Logger,
2209         {
2210                 let should_broadcast = self.would_broadcast_at_height(height, &logger);
2211                 if should_broadcast {
2212                         claimable_outpoints.push(ClaimRequest { absolute_timelock: height, aggregable: false, outpoint: BitcoinOutPoint { txid: self.funding_info.0.txid.clone(), vout: self.funding_info.0.index as u32 }, witness_data: InputMaterial::Funding { funding_redeemscript: self.funding_redeemscript.clone() }});
2213                         self.pending_monitor_events.push(MonitorEvent::CommitmentTxBroadcasted(self.funding_info.0));
2214                         let commitment_tx = self.onchain_tx_handler.get_fully_signed_holder_tx(&self.funding_redeemscript);
2215                         self.holder_tx_signed = true;
2216                         let (mut new_outpoints, _) = self.get_broadcasted_holder_claims(&self.current_holder_commitment_tx);
2217                         let new_outputs = self.get_broadcasted_holder_watch_outputs(&self.current_holder_commitment_tx, &commitment_tx);
2218                         if !new_outputs.is_empty() {
2219                                 watch_outputs.push((self.current_holder_commitment_tx.txid.clone(), new_outputs));
2220                         }
2221                         claimable_outpoints.append(&mut new_outpoints);
2222                 }
2223
2224                 // Find which on-chain events have reached their confirmation threshold.
2225                 let onchain_events_waiting_threshold_conf =
2226                         self.onchain_events_waiting_threshold_conf.drain(..).collect::<Vec<_>>();
2227                 let mut onchain_events_reaching_threshold_conf = Vec::new();
2228                 for entry in onchain_events_waiting_threshold_conf {
2229                         if entry.has_reached_confirmation_threshold(height) {
2230                                 onchain_events_reaching_threshold_conf.push(entry);
2231                         } else {
2232                                 self.onchain_events_waiting_threshold_conf.push(entry);
2233                         }
2234                 }
2235
2236                 // Used to check for duplicate HTLC resolutions.
2237                 #[cfg(debug_assertions)]
2238                 let unmatured_htlcs: Vec<_> = self.onchain_events_waiting_threshold_conf
2239                         .iter()
2240                         .filter_map(|entry| match &entry.event {
2241                                 OnchainEvent::HTLCUpdate { htlc_update } => Some(htlc_update.0.clone()),
2242                                 OnchainEvent::MaturingOutput { .. } => None,
2243                         })
2244                         .collect();
2245                 #[cfg(debug_assertions)]
2246                 let mut matured_htlcs = Vec::new();
2247
2248                 // Produce actionable events from on-chain events having reached their threshold.
2249                 for entry in onchain_events_reaching_threshold_conf.drain(..) {
2250                         match entry.event {
2251                                 OnchainEvent::HTLCUpdate { htlc_update } => {
2252                                         // Check for duplicate HTLC resolutions.
2253                                         #[cfg(debug_assertions)]
2254                                         {
2255                                                 debug_assert!(
2256                                                         unmatured_htlcs.iter().find(|&htlc| htlc == &htlc_update.0).is_none(),
2257                                                         "An unmature HTLC transaction conflicts with a maturing one; failed to \
2258                                                          call either transaction_unconfirmed for the conflicting transaction \
2259                                                          or block_disconnected for a block containing it.");
2260                                                 debug_assert!(
2261                                                         matured_htlcs.iter().find(|&htlc| htlc == &htlc_update.0).is_none(),
2262                                                         "A matured HTLC transaction conflicts with a maturing one; failed to \
2263                                                          call either transaction_unconfirmed for the conflicting transaction \
2264                                                          or block_disconnected for a block containing it.");
2265                                                 matured_htlcs.push(htlc_update.0.clone());
2266                                         }
2267
2268                                         log_trace!(logger, "HTLC {} failure update has got enough confirmations to be passed upstream", log_bytes!((htlc_update.1).0));
2269                                         self.pending_monitor_events.push(MonitorEvent::HTLCEvent(HTLCUpdate {
2270                                                 payment_hash: htlc_update.1,
2271                                                 payment_preimage: None,
2272                                                 source: htlc_update.0,
2273                                         }));
2274                                 },
2275                                 OnchainEvent::MaturingOutput { descriptor } => {
2276                                         log_trace!(logger, "Descriptor {} has got enough confirmations to be passed upstream", log_spendable!(descriptor));
2277                                         self.pending_events.push(Event::SpendableOutputs {
2278                                                 outputs: vec![descriptor]
2279                                         });
2280                                 }
2281                         }
2282                 }
2283
2284                 self.onchain_tx_handler.update_claims_view(&txn_matched, claimable_outpoints, Some(height), &&*broadcaster, &&*fee_estimator, &&*logger);
2285
2286                 // Determine new outputs to watch by comparing against previously known outputs to watch,
2287                 // updating the latter in the process.
2288                 watch_outputs.retain(|&(ref txid, ref txouts)| {
2289                         let idx_and_scripts = txouts.iter().map(|o| (o.0, o.1.script_pubkey.clone())).collect();
2290                         self.outputs_to_watch.insert(txid.clone(), idx_and_scripts).is_none()
2291                 });
2292                 #[cfg(test)]
2293                 {
2294                         // If we see a transaction for which we registered outputs previously,
2295                         // make sure the registered scriptpubkey at the expected index match
2296                         // the actual transaction output one. We failed this case before #653.
2297                         for tx in &txn_matched {
2298                                 if let Some(outputs) = self.get_outputs_to_watch().get(&tx.txid()) {
2299                                         for idx_and_script in outputs.iter() {
2300                                                 assert!((idx_and_script.0 as usize) < tx.output.len());
2301                                                 assert_eq!(tx.output[idx_and_script.0 as usize].script_pubkey, idx_and_script.1);
2302                                         }
2303                                 }
2304                         }
2305                 }
2306                 watch_outputs
2307         }
2308
2309         pub fn block_disconnected<B: Deref, F: Deref, L: Deref>(&mut self, header: &BlockHeader, height: u32, broadcaster: B, fee_estimator: F, logger: L)
2310                 where B::Target: BroadcasterInterface,
2311                       F::Target: FeeEstimator,
2312                       L::Target: Logger,
2313         {
2314                 log_trace!(logger, "Block {} at height {} disconnected", header.block_hash(), height);
2315
2316                 //We may discard:
2317                 //- htlc update there as failure-trigger tx (revoked commitment tx, non-revoked commitment tx, HTLC-timeout tx) has been disconnected
2318                 //- maturing spendable output has transaction paying us has been disconnected
2319                 self.onchain_events_waiting_threshold_conf.retain(|ref entry| entry.height < height);
2320
2321                 self.onchain_tx_handler.block_disconnected(height, broadcaster, fee_estimator, logger);
2322
2323                 self.best_block = BestBlock::new(header.prev_blockhash, height - 1);
2324         }
2325
2326         fn transaction_unconfirmed<B: Deref, F: Deref, L: Deref>(
2327                 &mut self,
2328                 txid: &Txid,
2329                 broadcaster: B,
2330                 fee_estimator: F,
2331                 logger: L,
2332         ) where
2333                 B::Target: BroadcasterInterface,
2334                 F::Target: FeeEstimator,
2335                 L::Target: Logger,
2336         {
2337                 self.onchain_events_waiting_threshold_conf.retain(|ref entry| entry.txid != *txid);
2338                 self.onchain_tx_handler.transaction_unconfirmed(txid, broadcaster, fee_estimator, logger);
2339         }
2340
2341         /// Filters a block's `txdata` for transactions spending watched outputs or for any child
2342         /// transactions thereof.
2343         fn filter_block<'a>(&self, txdata: &TransactionData<'a>) -> Vec<&'a Transaction> {
2344                 let mut matched_txn = HashSet::new();
2345                 txdata.iter().filter(|&&(_, tx)| {
2346                         let mut matches = self.spends_watched_output(tx);
2347                         for input in tx.input.iter() {
2348                                 if matches { break; }
2349                                 if matched_txn.contains(&input.previous_output.txid) {
2350                                         matches = true;
2351                                 }
2352                         }
2353                         if matches {
2354                                 matched_txn.insert(tx.txid());
2355                         }
2356                         matches
2357                 }).map(|(_, tx)| *tx).collect()
2358         }
2359
2360         /// Checks if a given transaction spends any watched outputs.
2361         fn spends_watched_output(&self, tx: &Transaction) -> bool {
2362                 for input in tx.input.iter() {
2363                         if let Some(outputs) = self.get_outputs_to_watch().get(&input.previous_output.txid) {
2364                                 for (idx, _script_pubkey) in outputs.iter() {
2365                                         if *idx == input.previous_output.vout {
2366                                                 #[cfg(test)]
2367                                                 {
2368                                                         // If the expected script is a known type, check that the witness
2369                                                         // appears to be spending the correct type (ie that the match would
2370                                                         // actually succeed in BIP 158/159-style filters).
2371                                                         if _script_pubkey.is_v0_p2wsh() {
2372                                                                 assert_eq!(&bitcoin::Address::p2wsh(&Script::from(input.witness.last().unwrap().clone()), bitcoin::Network::Bitcoin).script_pubkey(), _script_pubkey);
2373                                                         } else if _script_pubkey.is_v0_p2wpkh() {
2374                                                                 assert_eq!(&bitcoin::Address::p2wpkh(&bitcoin::PublicKey::from_slice(&input.witness.last().unwrap()).unwrap(), bitcoin::Network::Bitcoin).unwrap().script_pubkey(), _script_pubkey);
2375                                                         } else { panic!(); }
2376                                                 }
2377                                                 return true;
2378                                         }
2379                                 }
2380                         }
2381                 }
2382
2383                 false
2384         }
2385
2386         fn would_broadcast_at_height<L: Deref>(&self, height: u32, logger: &L) -> bool where L::Target: Logger {
2387                 // We need to consider all HTLCs which are:
2388                 //  * in any unrevoked counterparty commitment transaction, as they could broadcast said
2389                 //    transactions and we'd end up in a race, or
2390                 //  * are in our latest holder commitment transaction, as this is the thing we will
2391                 //    broadcast if we go on-chain.
2392                 // Note that we consider HTLCs which were below dust threshold here - while they don't
2393                 // strictly imply that we need to fail the channel, we need to go ahead and fail them back
2394                 // to the source, and if we don't fail the channel we will have to ensure that the next
2395                 // updates that peer sends us are update_fails, failing the channel if not. It's probably
2396                 // easier to just fail the channel as this case should be rare enough anyway.
2397                 macro_rules! scan_commitment {
2398                         ($htlcs: expr, $holder_tx: expr) => {
2399                                 for ref htlc in $htlcs {
2400                                         // For inbound HTLCs which we know the preimage for, we have to ensure we hit the
2401                                         // chain with enough room to claim the HTLC without our counterparty being able to
2402                                         // time out the HTLC first.
2403                                         // For outbound HTLCs which our counterparty hasn't failed/claimed, our primary
2404                                         // concern is being able to claim the corresponding inbound HTLC (on another
2405                                         // channel) before it expires. In fact, we don't even really care if our
2406                                         // counterparty here claims such an outbound HTLC after it expired as long as we
2407                                         // can still claim the corresponding HTLC. Thus, to avoid needlessly hitting the
2408                                         // chain when our counterparty is waiting for expiration to off-chain fail an HTLC
2409                                         // we give ourselves a few blocks of headroom after expiration before going
2410                                         // on-chain for an expired HTLC.
2411                                         // Note that, to avoid a potential attack whereby a node delays claiming an HTLC
2412                                         // from us until we've reached the point where we go on-chain with the
2413                                         // corresponding inbound HTLC, we must ensure that outbound HTLCs go on chain at
2414                                         // least CLTV_CLAIM_BUFFER blocks prior to the inbound HTLC.
2415                                         //  aka outbound_cltv + LATENCY_GRACE_PERIOD_BLOCKS == height - CLTV_CLAIM_BUFFER
2416                                         //      inbound_cltv == height + CLTV_CLAIM_BUFFER
2417                                         //      outbound_cltv + LATENCY_GRACE_PERIOD_BLOCKS + CLTV_CLAIM_BUFFER <= inbound_cltv - CLTV_CLAIM_BUFFER
2418                                         //      LATENCY_GRACE_PERIOD_BLOCKS + 2*CLTV_CLAIM_BUFFER <= inbound_cltv - outbound_cltv
2419                                         //      CLTV_EXPIRY_DELTA <= inbound_cltv - outbound_cltv (by check in ChannelManager::decode_update_add_htlc_onion)
2420                                         //      LATENCY_GRACE_PERIOD_BLOCKS + 2*CLTV_CLAIM_BUFFER <= CLTV_EXPIRY_DELTA
2421                                         //  The final, above, condition is checked for statically in channelmanager
2422                                         //  with CHECK_CLTV_EXPIRY_SANITY_2.
2423                                         let htlc_outbound = $holder_tx == htlc.offered;
2424                                         if ( htlc_outbound && htlc.cltv_expiry + LATENCY_GRACE_PERIOD_BLOCKS <= height) ||
2425                                            (!htlc_outbound && htlc.cltv_expiry <= height + CLTV_CLAIM_BUFFER && self.payment_preimages.contains_key(&htlc.payment_hash)) {
2426                                                 log_info!(logger, "Force-closing channel due to {} HTLC timeout, HTLC expiry is {}", if htlc_outbound { "outbound" } else { "inbound "}, htlc.cltv_expiry);
2427                                                 return true;
2428                                         }
2429                                 }
2430                         }
2431                 }
2432
2433                 scan_commitment!(self.current_holder_commitment_tx.htlc_outputs.iter().map(|&(ref a, _, _)| a), true);
2434
2435                 if let Some(ref txid) = self.current_counterparty_commitment_txid {
2436                         if let Some(ref htlc_outputs) = self.counterparty_claimable_outpoints.get(txid) {
2437                                 scan_commitment!(htlc_outputs.iter().map(|&(ref a, _)| a), false);
2438                         }
2439                 }
2440                 if let Some(ref txid) = self.prev_counterparty_commitment_txid {
2441                         if let Some(ref htlc_outputs) = self.counterparty_claimable_outpoints.get(txid) {
2442                                 scan_commitment!(htlc_outputs.iter().map(|&(ref a, _)| a), false);
2443                         }
2444                 }
2445
2446                 false
2447         }
2448
2449         /// Check if any transaction broadcasted is resolving HTLC output by a success or timeout on a holder
2450         /// or counterparty commitment tx, if so send back the source, preimage if found and payment_hash of resolved HTLC
2451         fn is_resolving_htlc_output<L: Deref>(&mut self, tx: &Transaction, height: u32, logger: &L) where L::Target: Logger {
2452                 'outer_loop: for input in &tx.input {
2453                         let mut payment_data = None;
2454                         let revocation_sig_claim = (input.witness.len() == 3 && HTLCType::scriptlen_to_htlctype(input.witness[2].len()) == Some(HTLCType::OfferedHTLC) && input.witness[1].len() == 33)
2455                                 || (input.witness.len() == 3 && HTLCType::scriptlen_to_htlctype(input.witness[2].len()) == Some(HTLCType::AcceptedHTLC) && input.witness[1].len() == 33);
2456                         let accepted_preimage_claim = input.witness.len() == 5 && HTLCType::scriptlen_to_htlctype(input.witness[4].len()) == Some(HTLCType::AcceptedHTLC);
2457                         let offered_preimage_claim = input.witness.len() == 3 && HTLCType::scriptlen_to_htlctype(input.witness[2].len()) == Some(HTLCType::OfferedHTLC);
2458
2459                         macro_rules! log_claim {
2460                                 ($tx_info: expr, $holder_tx: expr, $htlc: expr, $source_avail: expr) => {
2461                                         // We found the output in question, but aren't failing it backwards
2462                                         // as we have no corresponding source and no valid counterparty commitment txid
2463                                         // to try a weak source binding with same-hash, same-value still-valid offered HTLC.
2464                                         // This implies either it is an inbound HTLC or an outbound HTLC on a revoked transaction.
2465                                         let outbound_htlc = $holder_tx == $htlc.offered;
2466                                         if ($holder_tx && revocation_sig_claim) ||
2467                                                         (outbound_htlc && !$source_avail && (accepted_preimage_claim || offered_preimage_claim)) {
2468                                                 log_error!(logger, "Input spending {} ({}:{}) in {} resolves {} HTLC with payment hash {} with {}!",
2469                                                         $tx_info, input.previous_output.txid, input.previous_output.vout, tx.txid(),
2470                                                         if outbound_htlc { "outbound" } else { "inbound" }, log_bytes!($htlc.payment_hash.0),
2471                                                         if revocation_sig_claim { "revocation sig" } else { "preimage claim after we'd passed the HTLC resolution back" });
2472                                         } else {
2473                                                 log_info!(logger, "Input spending {} ({}:{}) in {} resolves {} HTLC with payment hash {} with {}",
2474                                                         $tx_info, input.previous_output.txid, input.previous_output.vout, tx.txid(),
2475                                                         if outbound_htlc { "outbound" } else { "inbound" }, log_bytes!($htlc.payment_hash.0),
2476                                                         if revocation_sig_claim { "revocation sig" } else if accepted_preimage_claim || offered_preimage_claim { "preimage" } else { "timeout" });
2477                                         }
2478                                 }
2479                         }
2480
2481                         macro_rules! check_htlc_valid_counterparty {
2482                                 ($counterparty_txid: expr, $htlc_output: expr) => {
2483                                         if let Some(txid) = $counterparty_txid {
2484                                                 for &(ref pending_htlc, ref pending_source) in self.counterparty_claimable_outpoints.get(&txid).unwrap() {
2485                                                         if pending_htlc.payment_hash == $htlc_output.payment_hash && pending_htlc.amount_msat == $htlc_output.amount_msat {
2486                                                                 if let &Some(ref source) = pending_source {
2487                                                                         log_claim!("revoked counterparty commitment tx", false, pending_htlc, true);
2488                                                                         payment_data = Some(((**source).clone(), $htlc_output.payment_hash));
2489                                                                         break;
2490                                                                 }
2491                                                         }
2492                                                 }
2493                                         }
2494                                 }
2495                         }
2496
2497                         macro_rules! scan_commitment {
2498                                 ($htlcs: expr, $tx_info: expr, $holder_tx: expr) => {
2499                                         for (ref htlc_output, source_option) in $htlcs {
2500                                                 if Some(input.previous_output.vout) == htlc_output.transaction_output_index {
2501                                                         if let Some(ref source) = source_option {
2502                                                                 log_claim!($tx_info, $holder_tx, htlc_output, true);
2503                                                                 // We have a resolution of an HTLC either from one of our latest
2504                                                                 // holder commitment transactions or an unrevoked counterparty commitment
2505                                                                 // transaction. This implies we either learned a preimage, the HTLC
2506                                                                 // has timed out, or we screwed up. In any case, we should now
2507                                                                 // resolve the source HTLC with the original sender.
2508                                                                 payment_data = Some(((*source).clone(), htlc_output.payment_hash));
2509                                                         } else if !$holder_tx {
2510                                                                         check_htlc_valid_counterparty!(self.current_counterparty_commitment_txid, htlc_output);
2511                                                                 if payment_data.is_none() {
2512                                                                         check_htlc_valid_counterparty!(self.prev_counterparty_commitment_txid, htlc_output);
2513                                                                 }
2514                                                         }
2515                                                         if payment_data.is_none() {
2516                                                                 log_claim!($tx_info, $holder_tx, htlc_output, false);
2517                                                                 continue 'outer_loop;
2518                                                         }
2519                                                 }
2520                                         }
2521                                 }
2522                         }
2523
2524                         if input.previous_output.txid == self.current_holder_commitment_tx.txid {
2525                                 scan_commitment!(self.current_holder_commitment_tx.htlc_outputs.iter().map(|&(ref a, _, ref b)| (a, b.as_ref())),
2526                                         "our latest holder commitment tx", true);
2527                         }
2528                         if let Some(ref prev_holder_signed_commitment_tx) = self.prev_holder_signed_commitment_tx {
2529                                 if input.previous_output.txid == prev_holder_signed_commitment_tx.txid {
2530                                         scan_commitment!(prev_holder_signed_commitment_tx.htlc_outputs.iter().map(|&(ref a, _, ref b)| (a, b.as_ref())),
2531                                                 "our previous holder commitment tx", true);
2532                                 }
2533                         }
2534                         if let Some(ref htlc_outputs) = self.counterparty_claimable_outpoints.get(&input.previous_output.txid) {
2535                                 scan_commitment!(htlc_outputs.iter().map(|&(ref a, ref b)| (a, (b.as_ref().clone()).map(|boxed| &**boxed))),
2536                                         "counterparty commitment tx", false);
2537                         }
2538
2539                         // Check that scan_commitment, above, decided there is some source worth relaying an
2540                         // HTLC resolution backwards to and figure out whether we learned a preimage from it.
2541                         if let Some((source, payment_hash)) = payment_data {
2542                                 let mut payment_preimage = PaymentPreimage([0; 32]);
2543                                 if accepted_preimage_claim {
2544                                         if !self.pending_monitor_events.iter().any(
2545                                                 |update| if let &MonitorEvent::HTLCEvent(ref upd) = update { upd.source == source } else { false }) {
2546                                                 payment_preimage.0.copy_from_slice(&input.witness[3]);
2547                                                 self.pending_monitor_events.push(MonitorEvent::HTLCEvent(HTLCUpdate {
2548                                                         source,
2549                                                         payment_preimage: Some(payment_preimage),
2550                                                         payment_hash
2551                                                 }));
2552                                         }
2553                                 } else if offered_preimage_claim {
2554                                         if !self.pending_monitor_events.iter().any(
2555                                                 |update| if let &MonitorEvent::HTLCEvent(ref upd) = update {
2556                                                         upd.source == source
2557                                                 } else { false }) {
2558                                                 payment_preimage.0.copy_from_slice(&input.witness[1]);
2559                                                 self.pending_monitor_events.push(MonitorEvent::HTLCEvent(HTLCUpdate {
2560                                                         source,
2561                                                         payment_preimage: Some(payment_preimage),
2562                                                         payment_hash
2563                                                 }));
2564                                         }
2565                                 } else {
2566                                         self.onchain_events_waiting_threshold_conf.retain(|ref entry| {
2567                                                 if entry.height != height { return true; }
2568                                                 match entry.event {
2569                                                          OnchainEvent::HTLCUpdate { ref htlc_update } => {
2570                                                                  htlc_update.0 != source
2571                                                          },
2572                                                          _ => true,
2573                                                 }
2574                                         });
2575                                         let entry = OnchainEventEntry {
2576                                                 txid: tx.txid(),
2577                                                 height,
2578                                                 event: OnchainEvent::HTLCUpdate { htlc_update: (source, payment_hash) },
2579                                         };
2580                                         log_info!(logger, "Failing HTLC with payment_hash {} timeout by a spend tx, waiting for confirmation (at height{})", log_bytes!(payment_hash.0), entry.confirmation_threshold());
2581                                         self.onchain_events_waiting_threshold_conf.push(entry);
2582                                 }
2583                         }
2584                 }
2585         }
2586
2587         /// Check if any transaction broadcasted is paying fund back to some address we can assume to own
2588         fn is_paying_spendable_output<L: Deref>(&mut self, tx: &Transaction, height: u32, logger: &L) where L::Target: Logger {
2589                 let mut spendable_output = None;
2590                 for (i, outp) in tx.output.iter().enumerate() { // There is max one spendable output for any channel tx, including ones generated by us
2591                         if i > ::std::u16::MAX as usize {
2592                                 // While it is possible that an output exists on chain which is greater than the
2593                                 // 2^16th output in a given transaction, this is only possible if the output is not
2594                                 // in a lightning transaction and was instead placed there by some third party who
2595                                 // wishes to give us money for no reason.
2596                                 // Namely, any lightning transactions which we pre-sign will never have anywhere
2597                                 // near 2^16 outputs both because such transactions must have ~2^16 outputs who's
2598                                 // scripts are not longer than one byte in length and because they are inherently
2599                                 // non-standard due to their size.
2600                                 // Thus, it is completely safe to ignore such outputs, and while it may result in
2601                                 // us ignoring non-lightning fund to us, that is only possible if someone fills
2602                                 // nearly a full block with garbage just to hit this case.
2603                                 continue;
2604                         }
2605                         if outp.script_pubkey == self.destination_script {
2606                                 spendable_output =  Some(SpendableOutputDescriptor::StaticOutput {
2607                                         outpoint: OutPoint { txid: tx.txid(), index: i as u16 },
2608                                         output: outp.clone(),
2609                                 });
2610                                 break;
2611                         } else if let Some(ref broadcasted_holder_revokable_script) = self.broadcasted_holder_revokable_script {
2612                                 if broadcasted_holder_revokable_script.0 == outp.script_pubkey {
2613                                         spendable_output =  Some(SpendableOutputDescriptor::DelayedPaymentOutput(DelayedPaymentOutputDescriptor {
2614                                                 outpoint: OutPoint { txid: tx.txid(), index: i as u16 },
2615                                                 per_commitment_point: broadcasted_holder_revokable_script.1,
2616                                                 to_self_delay: self.on_holder_tx_csv,
2617                                                 output: outp.clone(),
2618                                                 revocation_pubkey: broadcasted_holder_revokable_script.2.clone(),
2619                                                 channel_keys_id: self.channel_keys_id,
2620                                                 channel_value_satoshis: self.channel_value_satoshis,
2621                                         }));
2622                                         break;
2623                                 }
2624                         } else if self.counterparty_payment_script == outp.script_pubkey {
2625                                 spendable_output = Some(SpendableOutputDescriptor::StaticPaymentOutput(StaticPaymentOutputDescriptor {
2626                                         outpoint: OutPoint { txid: tx.txid(), index: i as u16 },
2627                                         output: outp.clone(),
2628                                         channel_keys_id: self.channel_keys_id,
2629                                         channel_value_satoshis: self.channel_value_satoshis,
2630                                 }));
2631                                 break;
2632                         } else if outp.script_pubkey == self.shutdown_script {
2633                                 spendable_output = Some(SpendableOutputDescriptor::StaticOutput {
2634                                         outpoint: OutPoint { txid: tx.txid(), index: i as u16 },
2635                                         output: outp.clone(),
2636                                 });
2637                         }
2638                 }
2639                 if let Some(spendable_output) = spendable_output {
2640                         let entry = OnchainEventEntry {
2641                                 txid: tx.txid(),
2642                                 height: height,
2643                                 event: OnchainEvent::MaturingOutput { descriptor: spendable_output.clone() },
2644                         };
2645                         log_trace!(logger, "Maturing {} until {}", log_spendable!(spendable_output), entry.confirmation_threshold());
2646                         self.onchain_events_waiting_threshold_conf.push(entry);
2647                 }
2648         }
2649 }
2650
2651 /// `Persist` defines behavior for persisting channel monitors: this could mean
2652 /// writing once to disk, and/or uploading to one or more backup services.
2653 ///
2654 /// Note that for every new monitor, you **must** persist the new `ChannelMonitor`
2655 /// to disk/backups. And, on every update, you **must** persist either the
2656 /// `ChannelMonitorUpdate` or the updated monitor itself. Otherwise, there is risk
2657 /// of situations such as revoking a transaction, then crashing before this
2658 /// revocation can be persisted, then unintentionally broadcasting a revoked
2659 /// transaction and losing money. This is a risk because previous channel states
2660 /// are toxic, so it's important that whatever channel state is persisted is
2661 /// kept up-to-date.
2662 pub trait Persist<ChannelSigner: Sign>: Send + Sync {
2663         /// Persist a new channel's data. The data can be stored any way you want, but
2664         /// the identifier provided by Rust-Lightning is the channel's outpoint (and
2665         /// it is up to you to maintain a correct mapping between the outpoint and the
2666         /// stored channel data). Note that you **must** persist every new monitor to
2667         /// disk. See the `Persist` trait documentation for more details.
2668         ///
2669         /// See [`ChannelMonitor::write`] for writing out a `ChannelMonitor`,
2670         /// and [`ChannelMonitorUpdateErr`] for requirements when returning errors.
2671         fn persist_new_channel(&self, id: OutPoint, data: &ChannelMonitor<ChannelSigner>) -> Result<(), ChannelMonitorUpdateErr>;
2672
2673         /// Update one channel's data. The provided `ChannelMonitor` has already
2674         /// applied the given update.
2675         ///
2676         /// Note that on every update, you **must** persist either the
2677         /// `ChannelMonitorUpdate` or the updated monitor itself to disk/backups. See
2678         /// the `Persist` trait documentation for more details.
2679         ///
2680         /// If an implementer chooses to persist the updates only, they need to make
2681         /// sure that all the updates are applied to the `ChannelMonitors` *before*
2682         /// the set of channel monitors is given to the `ChannelManager`
2683         /// deserialization routine. See [`ChannelMonitor::update_monitor`] for
2684         /// applying a monitor update to a monitor. If full `ChannelMonitors` are
2685         /// persisted, then there is no need to persist individual updates.
2686         ///
2687         /// Note that there could be a performance tradeoff between persisting complete
2688         /// channel monitors on every update vs. persisting only updates and applying
2689         /// them in batches. The size of each monitor grows `O(number of state updates)`
2690         /// whereas updates are small and `O(1)`.
2691         ///
2692         /// See [`ChannelMonitor::write`] for writing out a `ChannelMonitor`,
2693         /// [`ChannelMonitorUpdate::write`] for writing out an update, and
2694         /// [`ChannelMonitorUpdateErr`] for requirements when returning errors.
2695         fn update_persisted_channel(&self, id: OutPoint, update: &ChannelMonitorUpdate, data: &ChannelMonitor<ChannelSigner>) -> Result<(), ChannelMonitorUpdateErr>;
2696 }
2697
2698 impl<Signer: Sign, T: Deref, F: Deref, L: Deref> chain::Listen for (ChannelMonitor<Signer>, T, F, L)
2699 where
2700         T::Target: BroadcasterInterface,
2701         F::Target: FeeEstimator,
2702         L::Target: Logger,
2703 {
2704         fn block_connected(&self, block: &Block, height: u32) {
2705                 let txdata: Vec<_> = block.txdata.iter().enumerate().collect();
2706                 self.0.block_connected(&block.header, &txdata, height, &*self.1, &*self.2, &*self.3);
2707         }
2708
2709         fn block_disconnected(&self, header: &BlockHeader, height: u32) {
2710                 self.0.block_disconnected(header, height, &*self.1, &*self.2, &*self.3);
2711         }
2712 }
2713
2714 const MAX_ALLOC_SIZE: usize = 64*1024;
2715
2716 impl<'a, Signer: Sign, K: KeysInterface<Signer = Signer>> ReadableArgs<&'a K>
2717                 for (BlockHash, ChannelMonitor<Signer>) {
2718         fn read<R: ::std::io::Read>(reader: &mut R, keys_manager: &'a K) -> Result<Self, DecodeError> {
2719                 macro_rules! unwrap_obj {
2720                         ($key: expr) => {
2721                                 match $key {
2722                                         Ok(res) => res,
2723                                         Err(_) => return Err(DecodeError::InvalidValue),
2724                                 }
2725                         }
2726                 }
2727
2728                 let _ver: u8 = Readable::read(reader)?;
2729                 let min_ver: u8 = Readable::read(reader)?;
2730                 if min_ver > SERIALIZATION_VERSION {
2731                         return Err(DecodeError::UnknownVersion);
2732                 }
2733
2734                 let latest_update_id: u64 = Readable::read(reader)?;
2735                 let commitment_transaction_number_obscure_factor = <U48 as Readable>::read(reader)?.0;
2736
2737                 let destination_script = Readable::read(reader)?;
2738                 let broadcasted_holder_revokable_script = match <u8 as Readable>::read(reader)? {
2739                         0 => {
2740                                 let revokable_address = Readable::read(reader)?;
2741                                 let per_commitment_point = Readable::read(reader)?;
2742                                 let revokable_script = Readable::read(reader)?;
2743                                 Some((revokable_address, per_commitment_point, revokable_script))
2744                         },
2745                         1 => { None },
2746                         _ => return Err(DecodeError::InvalidValue),
2747                 };
2748                 let counterparty_payment_script = Readable::read(reader)?;
2749                 let shutdown_script = Readable::read(reader)?;
2750
2751                 let channel_keys_id = Readable::read(reader)?;
2752                 let holder_revocation_basepoint = Readable::read(reader)?;
2753                 // Technically this can fail and serialize fail a round-trip, but only for serialization of
2754                 // barely-init'd ChannelMonitors that we can't do anything with.
2755                 let outpoint = OutPoint {
2756                         txid: Readable::read(reader)?,
2757                         index: Readable::read(reader)?,
2758                 };
2759                 let funding_info = (outpoint, Readable::read(reader)?);
2760                 let current_counterparty_commitment_txid = Readable::read(reader)?;
2761                 let prev_counterparty_commitment_txid = Readable::read(reader)?;
2762
2763                 let counterparty_tx_cache = Readable::read(reader)?;
2764                 let funding_redeemscript = Readable::read(reader)?;
2765                 let channel_value_satoshis = Readable::read(reader)?;
2766
2767                 let their_cur_revocation_points = {
2768                         let first_idx = <U48 as Readable>::read(reader)?.0;
2769                         if first_idx == 0 {
2770                                 None
2771                         } else {
2772                                 let first_point = Readable::read(reader)?;
2773                                 let second_point_slice: [u8; 33] = Readable::read(reader)?;
2774                                 if second_point_slice[0..32] == [0; 32] && second_point_slice[32] == 0 {
2775                                         Some((first_idx, first_point, None))
2776                                 } else {
2777                                         Some((first_idx, first_point, Some(unwrap_obj!(PublicKey::from_slice(&second_point_slice)))))
2778                                 }
2779                         }
2780                 };
2781
2782                 let on_holder_tx_csv: u16 = Readable::read(reader)?;
2783
2784                 let commitment_secrets = Readable::read(reader)?;
2785
2786                 macro_rules! read_htlc_in_commitment {
2787                         () => {
2788                                 {
2789                                         let offered: bool = Readable::read(reader)?;
2790                                         let amount_msat: u64 = Readable::read(reader)?;
2791                                         let cltv_expiry: u32 = Readable::read(reader)?;
2792                                         let payment_hash: PaymentHash = Readable::read(reader)?;
2793                                         let transaction_output_index: Option<u32> = Readable::read(reader)?;
2794
2795                                         HTLCOutputInCommitment {
2796                                                 offered, amount_msat, cltv_expiry, payment_hash, transaction_output_index
2797                                         }
2798                                 }
2799                         }
2800                 }
2801
2802                 let counterparty_claimable_outpoints_len: u64 = Readable::read(reader)?;
2803                 let mut counterparty_claimable_outpoints = HashMap::with_capacity(cmp::min(counterparty_claimable_outpoints_len as usize, MAX_ALLOC_SIZE / 64));
2804                 for _ in 0..counterparty_claimable_outpoints_len {
2805                         let txid: Txid = Readable::read(reader)?;
2806                         let htlcs_count: u64 = Readable::read(reader)?;
2807                         let mut htlcs = Vec::with_capacity(cmp::min(htlcs_count as usize, MAX_ALLOC_SIZE / 32));
2808                         for _ in 0..htlcs_count {
2809                                 htlcs.push((read_htlc_in_commitment!(), <Option<HTLCSource> as Readable>::read(reader)?.map(|o: HTLCSource| Box::new(o))));
2810                         }
2811                         if let Some(_) = counterparty_claimable_outpoints.insert(txid, htlcs) {
2812                                 return Err(DecodeError::InvalidValue);
2813                         }
2814                 }
2815
2816                 let counterparty_commitment_txn_on_chain_len: u64 = Readable::read(reader)?;
2817                 let mut counterparty_commitment_txn_on_chain = HashMap::with_capacity(cmp::min(counterparty_commitment_txn_on_chain_len as usize, MAX_ALLOC_SIZE / 32));
2818                 for _ in 0..counterparty_commitment_txn_on_chain_len {
2819                         let txid: Txid = Readable::read(reader)?;
2820                         let commitment_number = <U48 as Readable>::read(reader)?.0;
2821                         if let Some(_) = counterparty_commitment_txn_on_chain.insert(txid, commitment_number) {
2822                                 return Err(DecodeError::InvalidValue);
2823                         }
2824                 }
2825
2826                 let counterparty_hash_commitment_number_len: u64 = Readable::read(reader)?;
2827                 let mut counterparty_hash_commitment_number = HashMap::with_capacity(cmp::min(counterparty_hash_commitment_number_len as usize, MAX_ALLOC_SIZE / 32));
2828                 for _ in 0..counterparty_hash_commitment_number_len {
2829                         let payment_hash: PaymentHash = Readable::read(reader)?;
2830                         let commitment_number = <U48 as Readable>::read(reader)?.0;
2831                         if let Some(_) = counterparty_hash_commitment_number.insert(payment_hash, commitment_number) {
2832                                 return Err(DecodeError::InvalidValue);
2833                         }
2834                 }
2835
2836                 macro_rules! read_holder_tx {
2837                         () => {
2838                                 {
2839                                         let txid = Readable::read(reader)?;
2840                                         let revocation_key = Readable::read(reader)?;
2841                                         let a_htlc_key = Readable::read(reader)?;
2842                                         let b_htlc_key = Readable::read(reader)?;
2843                                         let delayed_payment_key = Readable::read(reader)?;
2844                                         let per_commitment_point = Readable::read(reader)?;
2845                                         let feerate_per_kw: u32 = Readable::read(reader)?;
2846
2847                                         let htlcs_len: u64 = Readable::read(reader)?;
2848                                         let mut htlcs = Vec::with_capacity(cmp::min(htlcs_len as usize, MAX_ALLOC_SIZE / 128));
2849                                         for _ in 0..htlcs_len {
2850                                                 let htlc = read_htlc_in_commitment!();
2851                                                 let sigs = match <u8 as Readable>::read(reader)? {
2852                                                         0 => None,
2853                                                         1 => Some(Readable::read(reader)?),
2854                                                         _ => return Err(DecodeError::InvalidValue),
2855                                                 };
2856                                                 htlcs.push((htlc, sigs, Readable::read(reader)?));
2857                                         }
2858
2859                                         HolderSignedTx {
2860                                                 txid,
2861                                                 revocation_key, a_htlc_key, b_htlc_key, delayed_payment_key, per_commitment_point, feerate_per_kw,
2862                                                 htlc_outputs: htlcs
2863                                         }
2864                                 }
2865                         }
2866                 }
2867
2868                 let prev_holder_signed_commitment_tx = match <u8 as Readable>::read(reader)? {
2869                         0 => None,
2870                         1 => {
2871                                 Some(read_holder_tx!())
2872                         },
2873                         _ => return Err(DecodeError::InvalidValue),
2874                 };
2875                 let current_holder_commitment_tx = read_holder_tx!();
2876
2877                 let current_counterparty_commitment_number = <U48 as Readable>::read(reader)?.0;
2878                 let current_holder_commitment_number = <U48 as Readable>::read(reader)?.0;
2879
2880                 let payment_preimages_len: u64 = Readable::read(reader)?;
2881                 let mut payment_preimages = HashMap::with_capacity(cmp::min(payment_preimages_len as usize, MAX_ALLOC_SIZE / 32));
2882                 for _ in 0..payment_preimages_len {
2883                         let preimage: PaymentPreimage = Readable::read(reader)?;
2884                         let hash = PaymentHash(Sha256::hash(&preimage.0[..]).into_inner());
2885                         if let Some(_) = payment_preimages.insert(hash, preimage) {
2886                                 return Err(DecodeError::InvalidValue);
2887                         }
2888                 }
2889
2890                 let pending_monitor_events_len: u64 = Readable::read(reader)?;
2891                 let mut pending_monitor_events = Vec::with_capacity(cmp::min(pending_monitor_events_len as usize, MAX_ALLOC_SIZE / (32 + 8*3)));
2892                 for _ in 0..pending_monitor_events_len {
2893                         let ev = match <u8 as Readable>::read(reader)? {
2894                                 0 => MonitorEvent::HTLCEvent(Readable::read(reader)?),
2895                                 1 => MonitorEvent::CommitmentTxBroadcasted(funding_info.0),
2896                                 _ => return Err(DecodeError::InvalidValue)
2897                         };
2898                         pending_monitor_events.push(ev);
2899                 }
2900
2901                 let pending_events_len: u64 = Readable::read(reader)?;
2902                 let mut pending_events = Vec::with_capacity(cmp::min(pending_events_len as usize, MAX_ALLOC_SIZE / mem::size_of::<Event>()));
2903                 for _ in 0..pending_events_len {
2904                         if let Some(event) = MaybeReadable::read(reader)? {
2905                                 pending_events.push(event);
2906                         }
2907                 }
2908
2909                 let best_block = BestBlock::new(Readable::read(reader)?, Readable::read(reader)?);
2910
2911                 let waiting_threshold_conf_len: u64 = Readable::read(reader)?;
2912                 let mut onchain_events_waiting_threshold_conf = Vec::with_capacity(cmp::min(waiting_threshold_conf_len as usize, MAX_ALLOC_SIZE / 128));
2913                 for _ in 0..waiting_threshold_conf_len {
2914                         let txid = Readable::read(reader)?;
2915                         let height = Readable::read(reader)?;
2916                         let event = match <u8 as Readable>::read(reader)? {
2917                                 0 => {
2918                                         let htlc_source = Readable::read(reader)?;
2919                                         let hash = Readable::read(reader)?;
2920                                         OnchainEvent::HTLCUpdate {
2921                                                 htlc_update: (htlc_source, hash)
2922                                         }
2923                                 },
2924                                 1 => {
2925                                         let descriptor = Readable::read(reader)?;
2926                                         OnchainEvent::MaturingOutput {
2927                                                 descriptor
2928                                         }
2929                                 },
2930                                 _ => return Err(DecodeError::InvalidValue),
2931                         };
2932                         onchain_events_waiting_threshold_conf.push(OnchainEventEntry { txid, height, event });
2933                 }
2934
2935                 let outputs_to_watch_len: u64 = Readable::read(reader)?;
2936                 let mut outputs_to_watch = HashMap::with_capacity(cmp::min(outputs_to_watch_len as usize, MAX_ALLOC_SIZE / (mem::size_of::<Txid>() + mem::size_of::<u32>() + mem::size_of::<Vec<Script>>())));
2937                 for _ in 0..outputs_to_watch_len {
2938                         let txid = Readable::read(reader)?;
2939                         let outputs_len: u64 = Readable::read(reader)?;
2940                         let mut outputs = Vec::with_capacity(cmp::min(outputs_len as usize, MAX_ALLOC_SIZE / (mem::size_of::<u32>() + mem::size_of::<Script>())));
2941                         for _ in 0..outputs_len {
2942                                 outputs.push((Readable::read(reader)?, Readable::read(reader)?));
2943                         }
2944                         if let Some(_) = outputs_to_watch.insert(txid, outputs) {
2945                                 return Err(DecodeError::InvalidValue);
2946                         }
2947                 }
2948                 let onchain_tx_handler = ReadableArgs::read(reader, keys_manager)?;
2949
2950                 let lockdown_from_offchain = Readable::read(reader)?;
2951                 let holder_tx_signed = Readable::read(reader)?;
2952
2953                 let mut secp_ctx = Secp256k1::new();
2954                 secp_ctx.seeded_randomize(&keys_manager.get_secure_random_bytes());
2955
2956                 Ok((best_block.block_hash(), ChannelMonitor {
2957                         inner: Mutex::new(ChannelMonitorImpl {
2958                                 latest_update_id,
2959                                 commitment_transaction_number_obscure_factor,
2960
2961                                 destination_script,
2962                                 broadcasted_holder_revokable_script,
2963                                 counterparty_payment_script,
2964                                 shutdown_script,
2965
2966                                 channel_keys_id,
2967                                 holder_revocation_basepoint,
2968                                 funding_info,
2969                                 current_counterparty_commitment_txid,
2970                                 prev_counterparty_commitment_txid,
2971
2972                                 counterparty_tx_cache,
2973                                 funding_redeemscript,
2974                                 channel_value_satoshis,
2975                                 their_cur_revocation_points,
2976
2977                                 on_holder_tx_csv,
2978
2979                                 commitment_secrets,
2980                                 counterparty_claimable_outpoints,
2981                                 counterparty_commitment_txn_on_chain,
2982                                 counterparty_hash_commitment_number,
2983
2984                                 prev_holder_signed_commitment_tx,
2985                                 current_holder_commitment_tx,
2986                                 current_counterparty_commitment_number,
2987                                 current_holder_commitment_number,
2988
2989                                 payment_preimages,
2990                                 pending_monitor_events,
2991                                 pending_events,
2992
2993                                 onchain_events_waiting_threshold_conf,
2994                                 outputs_to_watch,
2995
2996                                 onchain_tx_handler,
2997
2998                                 lockdown_from_offchain,
2999                                 holder_tx_signed,
3000
3001                                 best_block,
3002
3003                                 secp_ctx,
3004                         }),
3005                 }))
3006         }
3007 }
3008
3009 #[cfg(test)]
3010 mod tests {
3011         use bitcoin::blockdata::script::{Script, Builder};
3012         use bitcoin::blockdata::opcodes;
3013         use bitcoin::blockdata::transaction::{Transaction, TxIn, TxOut, SigHashType};
3014         use bitcoin::blockdata::transaction::OutPoint as BitcoinOutPoint;
3015         use bitcoin::util::bip143;
3016         use bitcoin::hashes::Hash;
3017         use bitcoin::hashes::sha256::Hash as Sha256;
3018         use bitcoin::hashes::hex::FromHex;
3019         use bitcoin::hash_types::Txid;
3020         use bitcoin::network::constants::Network;
3021         use hex;
3022         use chain::channelmonitor::ChannelMonitor;
3023         use chain::transaction::OutPoint;
3024         use ln::channelmanager::{BestBlock, PaymentPreimage, PaymentHash};
3025         use ln::onchaintx::{OnchainTxHandler, InputDescriptors};
3026         use ln::chan_utils;
3027         use ln::chan_utils::{HTLCOutputInCommitment, ChannelPublicKeys, ChannelTransactionParameters, HolderCommitmentTransaction, CounterpartyChannelTransactionParameters};
3028         use util::test_utils::{TestLogger, TestBroadcaster, TestFeeEstimator};
3029         use bitcoin::secp256k1::key::{SecretKey,PublicKey};
3030         use bitcoin::secp256k1::Secp256k1;
3031         use std::sync::{Arc, Mutex};
3032         use chain::keysinterface::InMemorySigner;
3033
3034         #[test]
3035         fn test_prune_preimages() {
3036                 let secp_ctx = Secp256k1::new();
3037                 let logger = Arc::new(TestLogger::new());
3038                 let broadcaster = Arc::new(TestBroadcaster{txn_broadcasted: Mutex::new(Vec::new())});
3039                 let fee_estimator = Arc::new(TestFeeEstimator { sat_per_kw: 253 });
3040
3041                 let dummy_key = PublicKey::from_secret_key(&secp_ctx, &SecretKey::from_slice(&[42; 32]).unwrap());
3042                 let dummy_tx = Transaction { version: 0, lock_time: 0, input: Vec::new(), output: Vec::new() };
3043
3044                 let mut preimages = Vec::new();
3045                 {
3046                         for i in 0..20 {
3047                                 let preimage = PaymentPreimage([i; 32]);
3048                                 let hash = PaymentHash(Sha256::hash(&preimage.0[..]).into_inner());
3049                                 preimages.push((preimage, hash));
3050                         }
3051                 }
3052
3053                 macro_rules! preimages_slice_to_htlc_outputs {
3054                         ($preimages_slice: expr) => {
3055                                 {
3056                                         let mut res = Vec::new();
3057                                         for (idx, preimage) in $preimages_slice.iter().enumerate() {
3058                                                 res.push((HTLCOutputInCommitment {
3059                                                         offered: true,
3060                                                         amount_msat: 0,
3061                                                         cltv_expiry: 0,
3062                                                         payment_hash: preimage.1.clone(),
3063                                                         transaction_output_index: Some(idx as u32),
3064                                                 }, None));
3065                                         }
3066                                         res
3067                                 }
3068                         }
3069                 }
3070                 macro_rules! preimages_to_holder_htlcs {
3071                         ($preimages_slice: expr) => {
3072                                 {
3073                                         let mut inp = preimages_slice_to_htlc_outputs!($preimages_slice);
3074                                         let res: Vec<_> = inp.drain(..).map(|e| { (e.0, None, e.1) }).collect();
3075                                         res
3076                                 }
3077                         }
3078                 }
3079
3080                 macro_rules! test_preimages_exist {
3081                         ($preimages_slice: expr, $monitor: expr) => {
3082                                 for preimage in $preimages_slice {
3083                                         assert!($monitor.inner.lock().unwrap().payment_preimages.contains_key(&preimage.1));
3084                                 }
3085                         }
3086                 }
3087
3088                 let keys = InMemorySigner::new(
3089                         &secp_ctx,
3090                         SecretKey::from_slice(&[41; 32]).unwrap(),
3091                         SecretKey::from_slice(&[41; 32]).unwrap(),
3092                         SecretKey::from_slice(&[41; 32]).unwrap(),
3093                         SecretKey::from_slice(&[41; 32]).unwrap(),
3094                         SecretKey::from_slice(&[41; 32]).unwrap(),
3095                         [41; 32],
3096                         0,
3097                         [0; 32]
3098                 );
3099
3100                 let counterparty_pubkeys = ChannelPublicKeys {
3101                         funding_pubkey: PublicKey::from_secret_key(&secp_ctx, &SecretKey::from_slice(&[44; 32]).unwrap()),
3102                         revocation_basepoint: PublicKey::from_secret_key(&secp_ctx, &SecretKey::from_slice(&[45; 32]).unwrap()),
3103                         payment_point: PublicKey::from_secret_key(&secp_ctx, &SecretKey::from_slice(&[46; 32]).unwrap()),
3104                         delayed_payment_basepoint: PublicKey::from_secret_key(&secp_ctx, &SecretKey::from_slice(&[47; 32]).unwrap()),
3105                         htlc_basepoint: PublicKey::from_secret_key(&secp_ctx, &SecretKey::from_slice(&[48; 32]).unwrap())
3106                 };
3107                 let funding_outpoint = OutPoint { txid: Default::default(), index: u16::max_value() };
3108                 let channel_parameters = ChannelTransactionParameters {
3109                         holder_pubkeys: keys.holder_channel_pubkeys.clone(),
3110                         holder_selected_contest_delay: 66,
3111                         is_outbound_from_holder: true,
3112                         counterparty_parameters: Some(CounterpartyChannelTransactionParameters {
3113                                 pubkeys: counterparty_pubkeys,
3114                                 selected_contest_delay: 67,
3115                         }),
3116                         funding_outpoint: Some(funding_outpoint),
3117                 };
3118                 // Prune with one old state and a holder commitment tx holding a few overlaps with the
3119                 // old state.
3120                 let best_block = BestBlock::from_genesis(Network::Testnet);
3121                 let monitor = ChannelMonitor::new(Secp256k1::new(), keys,
3122                                                   &PublicKey::from_secret_key(&secp_ctx, &SecretKey::from_slice(&[42; 32]).unwrap()), 0, &Script::new(),
3123                                                   (OutPoint { txid: Txid::from_slice(&[43; 32]).unwrap(), index: 0 }, Script::new()),
3124                                                   &channel_parameters,
3125                                                   Script::new(), 46, 0,
3126                                                   HolderCommitmentTransaction::dummy(), best_block);
3127
3128                 monitor.provide_latest_holder_commitment_tx(HolderCommitmentTransaction::dummy(), preimages_to_holder_htlcs!(preimages[0..10])).unwrap();
3129                 let dummy_txid = dummy_tx.txid();
3130                 monitor.provide_latest_counterparty_commitment_tx(dummy_txid, preimages_slice_to_htlc_outputs!(preimages[5..15]), 281474976710655, dummy_key, &logger);
3131                 monitor.provide_latest_counterparty_commitment_tx(dummy_txid, preimages_slice_to_htlc_outputs!(preimages[15..20]), 281474976710654, dummy_key, &logger);
3132                 monitor.provide_latest_counterparty_commitment_tx(dummy_txid, preimages_slice_to_htlc_outputs!(preimages[17..20]), 281474976710653, dummy_key, &logger);
3133                 monitor.provide_latest_counterparty_commitment_tx(dummy_txid, preimages_slice_to_htlc_outputs!(preimages[18..20]), 281474976710652, dummy_key, &logger);
3134                 for &(ref preimage, ref hash) in preimages.iter() {
3135                         monitor.provide_payment_preimage(hash, preimage, &broadcaster, &fee_estimator, &logger);
3136                 }
3137
3138                 // Now provide a secret, pruning preimages 10-15
3139                 let mut secret = [0; 32];
3140                 secret[0..32].clone_from_slice(&hex::decode("7cc854b54e3e0dcdb010d7a3fee464a9687be6e8db3be6854c475621e007a5dc").unwrap());
3141                 monitor.provide_secret(281474976710655, secret.clone()).unwrap();
3142                 assert_eq!(monitor.inner.lock().unwrap().payment_preimages.len(), 15);
3143                 test_preimages_exist!(&preimages[0..10], monitor);
3144                 test_preimages_exist!(&preimages[15..20], monitor);
3145
3146                 // Now provide a further secret, pruning preimages 15-17
3147                 secret[0..32].clone_from_slice(&hex::decode("c7518c8ae4660ed02894df8976fa1a3659c1a8b4b5bec0c4b872abeba4cb8964").unwrap());
3148                 monitor.provide_secret(281474976710654, secret.clone()).unwrap();
3149                 assert_eq!(monitor.inner.lock().unwrap().payment_preimages.len(), 13);
3150                 test_preimages_exist!(&preimages[0..10], monitor);
3151                 test_preimages_exist!(&preimages[17..20], monitor);
3152
3153                 // Now update holder commitment tx info, pruning only element 18 as we still care about the
3154                 // previous commitment tx's preimages too
3155                 monitor.provide_latest_holder_commitment_tx(HolderCommitmentTransaction::dummy(), preimages_to_holder_htlcs!(preimages[0..5])).unwrap();
3156                 secret[0..32].clone_from_slice(&hex::decode("2273e227a5b7449b6e70f1fb4652864038b1cbf9cd7c043a7d6456b7fc275ad8").unwrap());
3157                 monitor.provide_secret(281474976710653, secret.clone()).unwrap();
3158                 assert_eq!(monitor.inner.lock().unwrap().payment_preimages.len(), 12);
3159                 test_preimages_exist!(&preimages[0..10], monitor);
3160                 test_preimages_exist!(&preimages[18..20], monitor);
3161
3162                 // But if we do it again, we'll prune 5-10
3163                 monitor.provide_latest_holder_commitment_tx(HolderCommitmentTransaction::dummy(), preimages_to_holder_htlcs!(preimages[0..3])).unwrap();
3164                 secret[0..32].clone_from_slice(&hex::decode("27cddaa5624534cb6cb9d7da077cf2b22ab21e9b506fd4998a51d54502e99116").unwrap());
3165                 monitor.provide_secret(281474976710652, secret.clone()).unwrap();
3166                 assert_eq!(monitor.inner.lock().unwrap().payment_preimages.len(), 5);
3167                 test_preimages_exist!(&preimages[0..5], monitor);
3168         }
3169
3170         #[test]
3171         fn test_claim_txn_weight_computation() {
3172                 // We test Claim txn weight, knowing that we want expected weigth and
3173                 // not actual case to avoid sigs and time-lock delays hell variances.
3174
3175                 let secp_ctx = Secp256k1::new();
3176                 let privkey = SecretKey::from_slice(&hex::decode("0101010101010101010101010101010101010101010101010101010101010101").unwrap()[..]).unwrap();
3177                 let pubkey = PublicKey::from_secret_key(&secp_ctx, &privkey);
3178                 let mut sum_actual_sigs = 0;
3179
3180                 macro_rules! sign_input {
3181                         ($sighash_parts: expr, $idx: expr, $amount: expr, $input_type: expr, $sum_actual_sigs: expr) => {
3182                                 let htlc = HTLCOutputInCommitment {
3183                                         offered: if *$input_type == InputDescriptors::RevokedOfferedHTLC || *$input_type == InputDescriptors::OfferedHTLC { true } else { false },
3184                                         amount_msat: 0,
3185                                         cltv_expiry: 2 << 16,
3186                                         payment_hash: PaymentHash([1; 32]),
3187                                         transaction_output_index: Some($idx as u32),
3188                                 };
3189                                 let redeem_script = if *$input_type == InputDescriptors::RevokedOutput { chan_utils::get_revokeable_redeemscript(&pubkey, 256, &pubkey) } else { chan_utils::get_htlc_redeemscript_with_explicit_keys(&htlc, &pubkey, &pubkey, &pubkey) };
3190                                 let sighash = hash_to_message!(&$sighash_parts.signature_hash($idx, &redeem_script, $amount, SigHashType::All)[..]);
3191                                 let sig = secp_ctx.sign(&sighash, &privkey);
3192                                 $sighash_parts.access_witness($idx).push(sig.serialize_der().to_vec());
3193                                 $sighash_parts.access_witness($idx)[0].push(SigHashType::All as u8);
3194                                 sum_actual_sigs += $sighash_parts.access_witness($idx)[0].len();
3195                                 if *$input_type == InputDescriptors::RevokedOutput {
3196                                         $sighash_parts.access_witness($idx).push(vec!(1));
3197                                 } else if *$input_type == InputDescriptors::RevokedOfferedHTLC || *$input_type == InputDescriptors::RevokedReceivedHTLC {
3198                                         $sighash_parts.access_witness($idx).push(pubkey.clone().serialize().to_vec());
3199                                 } else if *$input_type == InputDescriptors::ReceivedHTLC {
3200                                         $sighash_parts.access_witness($idx).push(vec![0]);
3201                                 } else {
3202                                         $sighash_parts.access_witness($idx).push(PaymentPreimage([1; 32]).0.to_vec());
3203                                 }
3204                                 $sighash_parts.access_witness($idx).push(redeem_script.into_bytes());
3205                                 println!("witness[0] {}", $sighash_parts.access_witness($idx)[0].len());
3206                                 println!("witness[1] {}", $sighash_parts.access_witness($idx)[1].len());
3207                                 println!("witness[2] {}", $sighash_parts.access_witness($idx)[2].len());
3208                         }
3209                 }
3210
3211                 let script_pubkey = Builder::new().push_opcode(opcodes::all::OP_RETURN).into_script();
3212                 let txid = Txid::from_hex("56944c5d3f98413ef45cf54545538103cc9f298e0575820ad3591376e2e0f65d").unwrap();
3213
3214                 // Justice tx with 1 to_holder, 2 revoked offered HTLCs, 1 revoked received HTLCs
3215                 let mut claim_tx = Transaction { version: 0, lock_time: 0, input: Vec::new(), output: Vec::new() };
3216                 for i in 0..4 {
3217                         claim_tx.input.push(TxIn {
3218                                 previous_output: BitcoinOutPoint {
3219                                         txid,
3220                                         vout: i,
3221                                 },
3222                                 script_sig: Script::new(),
3223                                 sequence: 0xfffffffd,
3224                                 witness: Vec::new(),
3225                         });
3226                 }
3227                 claim_tx.output.push(TxOut {
3228                         script_pubkey: script_pubkey.clone(),
3229                         value: 0,
3230                 });
3231                 let base_weight = claim_tx.get_weight();
3232                 let inputs_des = vec![InputDescriptors::RevokedOutput, InputDescriptors::RevokedOfferedHTLC, InputDescriptors::RevokedOfferedHTLC, InputDescriptors::RevokedReceivedHTLC];
3233                 {
3234                         let mut sighash_parts = bip143::SigHashCache::new(&mut claim_tx);
3235                         for (idx, inp) in inputs_des.iter().enumerate() {
3236                                 sign_input!(sighash_parts, idx, 0, inp, sum_actual_sigs);
3237                         }
3238                 }
3239                 assert_eq!(base_weight + OnchainTxHandler::<InMemorySigner>::get_witnesses_weight(&inputs_des[..]),  claim_tx.get_weight() + /* max_length_sig */ (73 * inputs_des.len() - sum_actual_sigs));
3240
3241                 // Claim tx with 1 offered HTLCs, 3 received HTLCs
3242                 claim_tx.input.clear();
3243                 sum_actual_sigs = 0;
3244                 for i in 0..4 {
3245                         claim_tx.input.push(TxIn {
3246                                 previous_output: BitcoinOutPoint {
3247                                         txid,
3248                                         vout: i,
3249                                 },
3250                                 script_sig: Script::new(),
3251                                 sequence: 0xfffffffd,
3252                                 witness: Vec::new(),
3253                         });
3254                 }
3255                 let base_weight = claim_tx.get_weight();
3256                 let inputs_des = vec![InputDescriptors::OfferedHTLC, InputDescriptors::ReceivedHTLC, InputDescriptors::ReceivedHTLC, InputDescriptors::ReceivedHTLC];
3257                 {
3258                         let mut sighash_parts = bip143::SigHashCache::new(&mut claim_tx);
3259                         for (idx, inp) in inputs_des.iter().enumerate() {
3260                                 sign_input!(sighash_parts, idx, 0, inp, sum_actual_sigs);
3261                         }
3262                 }
3263                 assert_eq!(base_weight + OnchainTxHandler::<InMemorySigner>::get_witnesses_weight(&inputs_des[..]),  claim_tx.get_weight() + /* max_length_sig */ (73 * inputs_des.len() - sum_actual_sigs));
3264
3265                 // Justice tx with 1 revoked HTLC-Success tx output
3266                 claim_tx.input.clear();
3267                 sum_actual_sigs = 0;
3268                 claim_tx.input.push(TxIn {
3269                         previous_output: BitcoinOutPoint {
3270                                 txid,
3271                                 vout: 0,
3272                         },
3273                         script_sig: Script::new(),
3274                         sequence: 0xfffffffd,
3275                         witness: Vec::new(),
3276                 });
3277                 let base_weight = claim_tx.get_weight();
3278                 let inputs_des = vec![InputDescriptors::RevokedOutput];
3279                 {
3280                         let mut sighash_parts = bip143::SigHashCache::new(&mut claim_tx);
3281                         for (idx, inp) in inputs_des.iter().enumerate() {
3282                                 sign_input!(sighash_parts, idx, 0, inp, sum_actual_sigs);
3283                         }
3284                 }
3285                 assert_eq!(base_weight + OnchainTxHandler::<InMemorySigner>::get_witnesses_weight(&inputs_des[..]), claim_tx.get_weight() + /* max_length_isg */ (73 * inputs_des.len() - sum_actual_sigs));
3286         }
3287
3288         // Further testing is done in the ChannelManager integration tests.
3289 }