Check amt_to_forward and outgoing_cltv_value in add_update_htlc
[rust-lightning] / src / ln / channelmanager.rs
1 use bitcoin::blockdata::block::BlockHeader;
2 use bitcoin::blockdata::transaction::Transaction;
3 use bitcoin::blockdata::constants::genesis_block;
4 use bitcoin::network::constants::Network;
5 use bitcoin::network::serialize::BitcoinHash;
6 use bitcoin::util::hash::Sha256dHash;
7
8 use secp256k1::key::{SecretKey,PublicKey};
9 use secp256k1::{Secp256k1,Message};
10 use secp256k1::ecdh::SharedSecret;
11 use secp256k1;
12
13 use chain::chaininterface::{BroadcasterInterface,ChainListener,ChainWatchInterface,FeeEstimator};
14 use chain::transaction::OutPoint;
15 use ln::channel::{Channel, ChannelKeys};
16 use ln::channelmonitor::ManyChannelMonitor;
17 use ln::router::{Route,RouteHop};
18 use ln::msgs;
19 use ln::msgs::{HandleError,ChannelMessageHandler,MsgEncodable,MsgDecodable};
20 use util::{byte_utils, events, internal_traits, rng};
21 use util::sha2::Sha256;
22 use util::chacha20poly1305rfc::ChaCha20;
23 use util::logger::Logger;
24 use util::errors::APIError;
25
26 use crypto;
27 use crypto::mac::{Mac,MacResult};
28 use crypto::hmac::Hmac;
29 use crypto::digest::Digest;
30 use crypto::symmetriccipher::SynchronousStreamCipher;
31
32 use std::{ptr, mem};
33 use std::collections::HashMap;
34 use std::collections::hash_map;
35 use std::sync::{Mutex,MutexGuard,Arc};
36 use std::sync::atomic::{AtomicUsize, Ordering};
37 use std::time::{Instant,Duration};
38
39 mod channel_held_info {
40         use ln::msgs;
41
42         /// Stores the info we will need to send when we want to forward an HTLC onwards
43         pub struct PendingForwardHTLCInfo {
44                 pub(super) onion_packet: Option<msgs::OnionPacket>,
45                 pub(super) payment_hash: [u8; 32],
46                 pub(super) short_channel_id: u64,
47                 pub(super) prev_short_channel_id: u64,
48                 pub(super) amt_to_forward: u64,
49                 pub(super) outgoing_cltv_value: u32,
50         }
51
52         #[cfg(feature = "fuzztarget")]
53         impl PendingForwardHTLCInfo {
54                 pub fn dummy() -> Self {
55                         Self {
56                                 onion_packet: None,
57                                 payment_hash: [0; 32],
58                                 short_channel_id: 0,
59                                 prev_short_channel_id: 0,
60                                 amt_to_forward: 0,
61                                 outgoing_cltv_value: 0,
62                         }
63                 }
64         }
65
66         #[derive(Clone)] // See Channel::revoke_and_ack for why, tl;dr: Rust bug
67         pub enum HTLCFailReason {
68                 ErrorPacket {
69                         err: msgs::OnionErrorPacket,
70                 },
71                 Reason {
72                         failure_code: u16,
73                         data: Vec<u8>,
74                 }
75         }
76
77         #[cfg(feature = "fuzztarget")]
78         impl HTLCFailReason {
79                 pub fn dummy() -> Self {
80                         HTLCFailReason::Reason {
81                                 failure_code: 0, data: Vec::new(),
82                         }
83                 }
84         }
85 }
86 #[cfg(feature = "fuzztarget")]
87 pub use self::channel_held_info::*;
88 #[cfg(not(feature = "fuzztarget"))]
89 pub(crate) use self::channel_held_info::*;
90
91 enum PendingOutboundHTLC {
92         IntermediaryHopData {
93                 source_short_channel_id: u64,
94                 incoming_packet_shared_secret: SharedSecret,
95         },
96         OutboundRoute {
97                 route: Route,
98                 session_priv: SecretKey,
99         },
100         /// Used for channel rebalancing
101         CycledRoute {
102                 source_short_channel_id: u64,
103                 incoming_packet_shared_secret: SharedSecret,
104                 route: Route,
105                 session_priv: SecretKey,
106         }
107 }
108
109 /// We hold back HTLCs we intend to relay for a random interval in the range (this, 5*this). This
110 /// provides some limited amount of privacy. Ideally this would range from somewhere like 1 second
111 /// to 30 seconds, but people expect lightning to be, you know, kinda fast, sadly. We could
112 /// probably increase this significantly.
113 const MIN_HTLC_RELAY_HOLDING_CELL_MILLIS: u32 = 50;
114
115 struct ChannelHolder {
116         by_id: HashMap<[u8; 32], Channel>,
117         short_to_id: HashMap<u64, [u8; 32]>,
118         next_forward: Instant,
119         /// short channel id -> forward infos. Key of 0 means payments received
120         /// Note that while this is held in the same mutex as the channels themselves, no consistency
121         /// guarantees are made about there existing a channel with the short id here, nor the short
122         /// ids in the PendingForwardHTLCInfo!
123         forward_htlcs: HashMap<u64, Vec<PendingForwardHTLCInfo>>,
124         /// Note that while this is held in the same mutex as the channels themselves, no consistency
125         /// guarantees are made about the channels given here actually existing anymore by the time you
126         /// go to read them!
127         claimable_htlcs: HashMap<[u8; 32], PendingOutboundHTLC>,
128 }
129 struct MutChannelHolder<'a> {
130         by_id: &'a mut HashMap<[u8; 32], Channel>,
131         short_to_id: &'a mut HashMap<u64, [u8; 32]>,
132         next_forward: &'a mut Instant,
133         forward_htlcs: &'a mut HashMap<u64, Vec<PendingForwardHTLCInfo>>,
134         claimable_htlcs: &'a mut HashMap<[u8; 32], PendingOutboundHTLC>,
135 }
136 impl ChannelHolder {
137         fn borrow_parts(&mut self) -> MutChannelHolder {
138                 MutChannelHolder {
139                         by_id: &mut self.by_id,
140                         short_to_id: &mut self.short_to_id,
141                         next_forward: &mut self.next_forward,
142                         forward_htlcs: &mut self.forward_htlcs,
143                         claimable_htlcs: &mut self.claimable_htlcs,
144                 }
145         }
146 }
147
148 #[cfg(not(any(target_pointer_width = "32", target_pointer_width = "64")))]
149 const ERR: () = "You need at least 32 bit pointers (well, usize, but we'll assume they're the same) for ChannelManager::latest_block_height";
150
151 /// Manager which keeps track of a number of channels and sends messages to the appropriate
152 /// channel, also tracking HTLC preimages and forwarding onion packets appropriately.
153 /// Implements ChannelMessageHandler, handling the multi-channel parts and passing things through
154 /// to individual Channels.
155 pub struct ChannelManager {
156         genesis_hash: Sha256dHash,
157         fee_estimator: Arc<FeeEstimator>,
158         monitor: Arc<ManyChannelMonitor>,
159         chain_monitor: Arc<ChainWatchInterface>,
160         tx_broadcaster: Arc<BroadcasterInterface>,
161
162         announce_channels_publicly: bool,
163         fee_proportional_millionths: u32,
164         latest_block_height: AtomicUsize,
165         secp_ctx: Secp256k1,
166
167         channel_state: Mutex<ChannelHolder>,
168         our_network_key: SecretKey,
169
170         pending_events: Mutex<Vec<events::Event>>,
171
172         logger: Arc<Logger>,
173 }
174
175 const CLTV_EXPIRY_DELTA: u16 = 6 * 24 * 2; //TODO?
176
177 macro_rules! secp_call {
178         ( $res : expr ) => {
179                 match $res {
180                         Ok(key) => key,
181                         //TODO: Make the err a parameter!
182                         Err(_) => return Err(HandleError{err: "Key error", action: None})
183                 }
184         };
185 }
186
187 struct OnionKeys {
188         #[cfg(test)]
189         shared_secret: SharedSecret,
190         #[cfg(test)]
191         blinding_factor: [u8; 32],
192         ephemeral_pubkey: PublicKey,
193         rho: [u8; 32],
194         mu: [u8; 32],
195 }
196
197 pub struct ChannelDetails {
198         /// The channel's ID (prior to funding transaction generation, this is a random 32 bytes,
199         /// thereafter this is the txid of the funding transaction xor the funding transaction output).
200         /// Note that this means this value is *not* persistent - it can change once during the
201         /// lifetime of the channel.
202         pub channel_id: [u8; 32],
203         /// The position of the funding transaction in the chain. None if the funding transaction has
204         /// not yet been confirmed and the channel fully opened.
205         pub short_channel_id: Option<u64>,
206         pub remote_network_id: PublicKey,
207         pub channel_value_satoshis: u64,
208         /// The user_id passed in to create_channel, or 0 if the channel was inbound.
209         pub user_id: u64,
210 }
211
212 impl ChannelManager {
213         /// Constructs a new ChannelManager to hold several channels and route between them. This is
214         /// the main "logic hub" for all channel-related actions, and implements ChannelMessageHandler.
215         /// fee_proportional_millionths is an optional fee to charge any payments routed through us.
216         /// Non-proportional fees are fixed according to our risk using the provided fee estimator.
217         /// panics if channel_value_satoshis is >= `MAX_FUNDING_SATOSHIS`!
218         pub fn new(our_network_key: SecretKey, fee_proportional_millionths: u32, announce_channels_publicly: bool, network: Network, feeest: Arc<FeeEstimator>, monitor: Arc<ManyChannelMonitor>, chain_monitor: Arc<ChainWatchInterface>, tx_broadcaster: Arc<BroadcasterInterface>, logger: Arc<Logger>) -> Result<Arc<ChannelManager>, secp256k1::Error> {
219                 let secp_ctx = Secp256k1::new();
220
221                 let res = Arc::new(ChannelManager {
222                         genesis_hash: genesis_block(network).header.bitcoin_hash(),
223                         fee_estimator: feeest.clone(),
224                         monitor: monitor.clone(),
225                         chain_monitor,
226                         tx_broadcaster,
227
228                         announce_channels_publicly,
229                         fee_proportional_millionths,
230                         latest_block_height: AtomicUsize::new(0), //TODO: Get an init value (generally need to replay recent chain on chain_monitor registration)
231                         secp_ctx,
232
233                         channel_state: Mutex::new(ChannelHolder{
234                                 by_id: HashMap::new(),
235                                 short_to_id: HashMap::new(),
236                                 next_forward: Instant::now(),
237                                 forward_htlcs: HashMap::new(),
238                                 claimable_htlcs: HashMap::new(),
239                         }),
240                         our_network_key,
241
242                         pending_events: Mutex::new(Vec::new()),
243
244                         logger,
245                 });
246                 let weak_res = Arc::downgrade(&res);
247                 res.chain_monitor.register_listener(weak_res);
248                 Ok(res)
249         }
250
251         /// Creates a new outbound channel to the given remote node and with the given value.
252         /// user_id will be provided back as user_channel_id in FundingGenerationReady and
253         /// FundingBroadcastSafe events to allow tracking of which events correspond with which
254         /// create_channel call. Note that user_channel_id defaults to 0 for inbound channels, so you
255         /// may wish to avoid using 0 for user_id here.
256         /// If successful, will generate a SendOpenChannel event, so you should probably poll
257         /// PeerManager::process_events afterwards.
258         /// Raises APIError::APIMisuseError when channel_value_satoshis > 2**24 or push_msat being greater than channel_value_satoshis * 1k
259         pub fn create_channel(&self, their_network_key: PublicKey, channel_value_satoshis: u64, push_msat: u64, user_id: u64) -> Result<(), APIError> {
260                 let chan_keys = if cfg!(feature = "fuzztarget") {
261                         ChannelKeys {
262                                 funding_key:               SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0]).unwrap(),
263                                 revocation_base_key:       SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0]).unwrap(),
264                                 payment_base_key:          SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0]).unwrap(),
265                                 delayed_payment_base_key:  SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0]).unwrap(),
266                                 htlc_base_key:             SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0]).unwrap(),
267                                 channel_close_key:         SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0]).unwrap(),
268                                 channel_monitor_claim_key: SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0]).unwrap(),
269                                 commitment_seed: [0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0],
270                         }
271                 } else {
272                         let mut key_seed = [0u8; 32];
273                         rng::fill_bytes(&mut key_seed);
274                         match ChannelKeys::new_from_seed(&key_seed) {
275                                 Ok(key) => key,
276                                 Err(_) => panic!("RNG is busted!")
277                         }
278                 };
279
280                 let channel = Channel::new_outbound(&*self.fee_estimator, chan_keys, their_network_key, channel_value_satoshis, push_msat, self.announce_channels_publicly, user_id, Arc::clone(&self.logger))?;
281                 let res = channel.get_open_channel(self.genesis_hash.clone(), &*self.fee_estimator)?;
282                 let mut channel_state = self.channel_state.lock().unwrap();
283                 match channel_state.by_id.insert(channel.channel_id(), channel) {
284                         Some(_) => panic!("RNG is bad???"),
285                         None => {}
286                 }
287
288                 let mut events = self.pending_events.lock().unwrap();
289                 events.push(events::Event::SendOpenChannel {
290                         node_id: their_network_key,
291                         msg: res,
292                 });
293                 Ok(())
294         }
295
296         /// Gets the list of open channels, in random order. See ChannelDetail field documentation for
297         /// more information.
298         pub fn list_channels(&self) -> Vec<ChannelDetails> {
299                 let channel_state = self.channel_state.lock().unwrap();
300                 let mut res = Vec::with_capacity(channel_state.by_id.len());
301                 for (channel_id, channel) in channel_state.by_id.iter() {
302                         res.push(ChannelDetails {
303                                 channel_id: (*channel_id).clone(),
304                                 short_channel_id: channel.get_short_channel_id(),
305                                 remote_network_id: channel.get_their_node_id(),
306                                 channel_value_satoshis: channel.get_value_satoshis(),
307                                 user_id: channel.get_user_id(),
308                         });
309                 }
310                 res
311         }
312
313         /// Gets the list of usable channels, in random order. Useful as an argument to
314         /// Router::get_route to ensure non-announced channels are used.
315         pub fn list_usable_channels(&self) -> Vec<ChannelDetails> {
316                 let channel_state = self.channel_state.lock().unwrap();
317                 let mut res = Vec::with_capacity(channel_state.by_id.len());
318                 for (channel_id, channel) in channel_state.by_id.iter() {
319                         if channel.is_usable() {
320                                 res.push(ChannelDetails {
321                                         channel_id: (*channel_id).clone(),
322                                         short_channel_id: channel.get_short_channel_id(),
323                                         remote_network_id: channel.get_their_node_id(),
324                                         channel_value_satoshis: channel.get_value_satoshis(),
325                                         user_id: channel.get_user_id(),
326                                 });
327                         }
328                 }
329                 res
330         }
331
332         /// Begins the process of closing a channel. After this call (plus some timeout), no new HTLCs
333         /// will be accepted on the given channel, and after additional timeout/the closing of all
334         /// pending HTLCs, the channel will be closed on chain.
335         /// May generate a SendShutdown event on success, which should be relayed.
336         pub fn close_channel(&self, channel_id: &[u8; 32]) -> Result<(), HandleError> {
337                 let (res, node_id, chan_option) = {
338                         let mut channel_state_lock = self.channel_state.lock().unwrap();
339                         let channel_state = channel_state_lock.borrow_parts();
340                         match channel_state.by_id.entry(channel_id.clone()) {
341                                 hash_map::Entry::Occupied(mut chan_entry) => {
342                                         let res = chan_entry.get_mut().get_shutdown()?;
343                                         if chan_entry.get().is_shutdown() {
344                                                 if let Some(short_id) = chan_entry.get().get_short_channel_id() {
345                                                         channel_state.short_to_id.remove(&short_id);
346                                                 }
347                                                 (res, chan_entry.get().get_their_node_id(), Some(chan_entry.remove_entry().1))
348                                         } else { (res, chan_entry.get().get_their_node_id(), None) }
349                                 },
350                                 hash_map::Entry::Vacant(_) => return Err(HandleError{err: "No such channel", action: None})
351                         }
352                 };
353                 for payment_hash in res.1 {
354                         // unknown_next_peer...I dunno who that is anymore....
355                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), &payment_hash, HTLCFailReason::Reason { failure_code: 0x4000 | 10, data: Vec::new() });
356                 }
357                 let chan_update = if let Some(chan) = chan_option {
358                         if let Ok(update) = self.get_channel_update(&chan) {
359                                 Some(update)
360                         } else { None }
361                 } else { None };
362
363                 let mut events = self.pending_events.lock().unwrap();
364                 if let Some(update) = chan_update {
365                         events.push(events::Event::BroadcastChannelUpdate {
366                                 msg: update
367                         });
368                 }
369                 events.push(events::Event::SendShutdown {
370                         node_id,
371                         msg: res.0
372                 });
373
374                 Ok(())
375         }
376
377         #[inline]
378         fn finish_force_close_channel(&self, shutdown_res: (Vec<Transaction>, Vec<[u8; 32]>)) {
379                 let (local_txn, failed_htlcs) = shutdown_res;
380                 for payment_hash in failed_htlcs {
381                         // unknown_next_peer...I dunno who that is anymore....
382                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), &payment_hash, HTLCFailReason::Reason { failure_code: 0x4000 | 10, data: Vec::new() });
383                 }
384                 for tx in local_txn {
385                         self.tx_broadcaster.broadcast_transaction(&tx);
386                 }
387                 //TODO: We need to have a way where outbound HTLC claims can result in us claiming the
388                 //now-on-chain HTLC output for ourselves (and, thereafter, passing the HTLC backwards).
389                 //TODO: We need to handle monitoring of pending offered HTLCs which just hit the chain and
390                 //may be claimed, resulting in us claiming the inbound HTLCs (and back-failing after
391                 //timeouts are hit and our claims confirm).
392         }
393
394         /// Force closes a channel, immediately broadcasting the latest local commitment transaction to
395         /// the chain and rejecting new HTLCs on the given channel.
396         pub fn force_close_channel(&self, channel_id: &[u8; 32]) {
397                 let mut chan = {
398                         let mut channel_state_lock = self.channel_state.lock().unwrap();
399                         let channel_state = channel_state_lock.borrow_parts();
400                         if let Some(chan) = channel_state.by_id.remove(channel_id) {
401                                 if let Some(short_id) = chan.get_short_channel_id() {
402                                         channel_state.short_to_id.remove(&short_id);
403                                 }
404                                 chan
405                         } else {
406                                 return;
407                         }
408                 };
409                 self.finish_force_close_channel(chan.force_shutdown());
410                 let mut events = self.pending_events.lock().unwrap();
411                 if let Ok(update) = self.get_channel_update(&chan) {
412                         events.push(events::Event::BroadcastChannelUpdate {
413                                 msg: update
414                         });
415                 }
416         }
417
418         /// Force close all channels, immediately broadcasting the latest local commitment transaction
419         /// for each to the chain and rejecting new HTLCs on each.
420         pub fn force_close_all_channels(&self) {
421                 for chan in self.list_channels() {
422                         self.force_close_channel(&chan.channel_id);
423                 }
424         }
425
426         #[inline]
427         fn gen_rho_mu_from_shared_secret(shared_secret: &SharedSecret) -> ([u8; 32], [u8; 32]) {
428                 ({
429                         let mut hmac = Hmac::new(Sha256::new(), &[0x72, 0x68, 0x6f]); // rho
430                         hmac.input(&shared_secret[..]);
431                         let mut res = [0; 32];
432                         hmac.raw_result(&mut res);
433                         res
434                 },
435                 {
436                         let mut hmac = Hmac::new(Sha256::new(), &[0x6d, 0x75]); // mu
437                         hmac.input(&shared_secret[..]);
438                         let mut res = [0; 32];
439                         hmac.raw_result(&mut res);
440                         res
441                 })
442         }
443
444         #[inline]
445         fn gen_um_from_shared_secret(shared_secret: &SharedSecret) -> [u8; 32] {
446                 let mut hmac = Hmac::new(Sha256::new(), &[0x75, 0x6d]); // um
447                 hmac.input(&shared_secret[..]);
448                 let mut res = [0; 32];
449                 hmac.raw_result(&mut res);
450                 res
451         }
452
453         #[inline]
454         fn gen_ammag_from_shared_secret(shared_secret: &SharedSecret) -> [u8; 32] {
455                 let mut hmac = Hmac::new(Sha256::new(), &[0x61, 0x6d, 0x6d, 0x61, 0x67]); // ammag
456                 hmac.input(&shared_secret[..]);
457                 let mut res = [0; 32];
458                 hmac.raw_result(&mut res);
459                 res
460         }
461
462         // can only fail if an intermediary hop has an invalid public key or session_priv is invalid
463         #[inline]
464         fn construct_onion_keys_callback<FType: FnMut(SharedSecret, [u8; 32], PublicKey, &RouteHop)> (secp_ctx: &Secp256k1, route: &Route, session_priv: &SecretKey, mut callback: FType) -> Result<(), HandleError> {
465                 let mut blinded_priv = session_priv.clone();
466                 let mut blinded_pub = secp_call!(PublicKey::from_secret_key(secp_ctx, &blinded_priv));
467                 let mut first_iteration = true;
468
469                 for hop in route.hops.iter() {
470                         let shared_secret = SharedSecret::new(secp_ctx, &hop.pubkey, &blinded_priv);
471
472                         let mut sha = Sha256::new();
473                         sha.input(&blinded_pub.serialize()[..]);
474                         sha.input(&shared_secret[..]);
475                         let mut blinding_factor = [0u8; 32];
476                         sha.result(&mut blinding_factor);
477
478                         if first_iteration {
479                                 blinded_pub = secp_call!(PublicKey::from_secret_key(secp_ctx, &blinded_priv));
480                                 first_iteration = false;
481                         }
482                         let ephemeral_pubkey = blinded_pub;
483
484                         secp_call!(blinded_priv.mul_assign(secp_ctx, &secp_call!(SecretKey::from_slice(secp_ctx, &blinding_factor))));
485                         blinded_pub = secp_call!(PublicKey::from_secret_key(secp_ctx, &blinded_priv));
486
487                         callback(shared_secret, blinding_factor, ephemeral_pubkey, hop);
488                 }
489
490                 Ok(())
491         }
492
493         // can only fail if an intermediary hop has an invalid public key or session_priv is invalid
494         fn construct_onion_keys(secp_ctx: &Secp256k1, route: &Route, session_priv: &SecretKey) -> Result<Vec<OnionKeys>, HandleError> {
495                 let mut res = Vec::with_capacity(route.hops.len());
496
497                 Self::construct_onion_keys_callback(secp_ctx, route, session_priv, |shared_secret, _blinding_factor, ephemeral_pubkey, _| {
498                         let (rho, mu) = ChannelManager::gen_rho_mu_from_shared_secret(&shared_secret);
499
500                         res.push(OnionKeys {
501                                 #[cfg(test)]
502                                 shared_secret,
503                                 #[cfg(test)]
504                                 blinding_factor: _blinding_factor,
505                                 ephemeral_pubkey,
506                                 rho,
507                                 mu,
508                         });
509                 })?;
510
511                 Ok(res)
512         }
513
514         /// returns the hop data, as well as the first-hop value_msat and CLTV value we should send.
515         fn build_onion_payloads(route: &Route, starting_htlc_offset: u32) -> Result<(Vec<msgs::OnionHopData>, u64, u32), HandleError> {
516                 let mut cur_value_msat = 0u64;
517                 let mut cur_cltv = starting_htlc_offset;
518                 let mut last_short_channel_id = 0;
519                 let mut res: Vec<msgs::OnionHopData> = Vec::with_capacity(route.hops.len());
520                 internal_traits::test_no_dealloc::<msgs::OnionHopData>(None);
521                 unsafe { res.set_len(route.hops.len()); }
522
523                 for (idx, hop) in route.hops.iter().enumerate().rev() {
524                         // First hop gets special values so that it can check, on receipt, that everything is
525                         // exactly as it should be (and the next hop isn't trying to probe to find out if we're
526                         // the intended recipient).
527                         let value_msat = if cur_value_msat == 0 { hop.fee_msat } else { cur_value_msat };
528                         let cltv = if cur_cltv == starting_htlc_offset { hop.cltv_expiry_delta + starting_htlc_offset } else { cur_cltv };
529                         res[idx] = msgs::OnionHopData {
530                                 realm: 0,
531                                 data: msgs::OnionRealm0HopData {
532                                         short_channel_id: last_short_channel_id,
533                                         amt_to_forward: value_msat,
534                                         outgoing_cltv_value: cltv,
535                                 },
536                                 hmac: [0; 32],
537                         };
538                         cur_value_msat += hop.fee_msat;
539                         if cur_value_msat >= 21000000 * 100000000 * 1000 {
540                                 return Err(HandleError{err: "Channel fees overflowed?!", action: None});
541                         }
542                         cur_cltv += hop.cltv_expiry_delta as u32;
543                         if cur_cltv >= 500000000 {
544                                 return Err(HandleError{err: "Channel CLTV overflowed?!", action: None});
545                         }
546                         last_short_channel_id = hop.short_channel_id;
547                 }
548                 Ok((res, cur_value_msat, cur_cltv))
549         }
550
551         #[inline]
552         fn shift_arr_right(arr: &mut [u8; 20*65]) {
553                 unsafe {
554                         ptr::copy(arr[0..].as_ptr(), arr[65..].as_mut_ptr(), 19*65);
555                 }
556                 for i in 0..65 {
557                         arr[i] = 0;
558                 }
559         }
560
561         #[inline]
562         fn xor_bufs(dst: &mut[u8], src: &[u8]) {
563                 assert_eq!(dst.len(), src.len());
564
565                 for i in 0..dst.len() {
566                         dst[i] ^= src[i];
567                 }
568         }
569
570         const ZERO:[u8; 21*65] = [0; 21*65];
571         fn construct_onion_packet(mut payloads: Vec<msgs::OnionHopData>, onion_keys: Vec<OnionKeys>, associated_data: &[u8; 32]) -> Result<msgs::OnionPacket, HandleError> {
572                 let mut buf = Vec::with_capacity(21*65);
573                 buf.resize(21*65, 0);
574
575                 let filler = {
576                         let iters = payloads.len() - 1;
577                         let end_len = iters * 65;
578                         let mut res = Vec::with_capacity(end_len);
579                         res.resize(end_len, 0);
580
581                         for (i, keys) in onion_keys.iter().enumerate() {
582                                 if i == payloads.len() - 1 { continue; }
583                                 let mut chacha = ChaCha20::new(&keys.rho, &[0u8; 8]);
584                                 chacha.process(&ChannelManager::ZERO, &mut buf); // We don't have a seek function :(
585                                 ChannelManager::xor_bufs(&mut res[0..(i + 1)*65], &buf[(20 - i)*65..21*65]);
586                         }
587                         res
588                 };
589
590                 let mut packet_data = [0; 20*65];
591                 let mut hmac_res = [0; 32];
592
593                 for (i, (payload, keys)) in payloads.iter_mut().zip(onion_keys.iter()).rev().enumerate() {
594                         ChannelManager::shift_arr_right(&mut packet_data);
595                         payload.hmac = hmac_res;
596                         packet_data[0..65].copy_from_slice(&payload.encode()[..]);
597
598                         let mut chacha = ChaCha20::new(&keys.rho, &[0u8; 8]);
599                         chacha.process(&packet_data, &mut buf[0..20*65]);
600                         packet_data[..].copy_from_slice(&buf[0..20*65]);
601
602                         if i == 0 {
603                                 packet_data[20*65 - filler.len()..20*65].copy_from_slice(&filler[..]);
604                         }
605
606                         let mut hmac = Hmac::new(Sha256::new(), &keys.mu);
607                         hmac.input(&packet_data);
608                         hmac.input(&associated_data[..]);
609                         hmac.raw_result(&mut hmac_res);
610                 }
611
612                 Ok(msgs::OnionPacket{
613                         version: 0,
614                         public_key: onion_keys.first().unwrap().ephemeral_pubkey,
615                         hop_data: packet_data,
616                         hmac: hmac_res,
617                 })
618         }
619
620         /// Encrypts a failure packet. raw_packet can either be a
621         /// msgs::DecodedOnionErrorPacket.encode() result or a msgs::OnionErrorPacket.data element.
622         fn encrypt_failure_packet(shared_secret: &SharedSecret, raw_packet: &[u8]) -> msgs::OnionErrorPacket {
623                 let ammag = ChannelManager::gen_ammag_from_shared_secret(&shared_secret);
624
625                 let mut packet_crypted = Vec::with_capacity(raw_packet.len());
626                 packet_crypted.resize(raw_packet.len(), 0);
627                 let mut chacha = ChaCha20::new(&ammag, &[0u8; 8]);
628                 chacha.process(&raw_packet, &mut packet_crypted[..]);
629                 msgs::OnionErrorPacket {
630                         data: packet_crypted,
631                 }
632         }
633
634         fn build_failure_packet(shared_secret: &SharedSecret, failure_type: u16, failure_data: &[u8]) -> msgs::DecodedOnionErrorPacket {
635                 assert!(failure_data.len() <= 256 - 2);
636
637                 let um = ChannelManager::gen_um_from_shared_secret(&shared_secret);
638
639                 let failuremsg = {
640                         let mut res = Vec::with_capacity(2 + failure_data.len());
641                         res.push(((failure_type >> 8) & 0xff) as u8);
642                         res.push(((failure_type >> 0) & 0xff) as u8);
643                         res.extend_from_slice(&failure_data[..]);
644                         res
645                 };
646                 let pad = {
647                         let mut res = Vec::with_capacity(256 - 2 - failure_data.len());
648                         res.resize(256 - 2 - failure_data.len(), 0);
649                         res
650                 };
651                 let mut packet = msgs::DecodedOnionErrorPacket {
652                         hmac: [0; 32],
653                         failuremsg: failuremsg,
654                         pad: pad,
655                 };
656
657                 let mut hmac = Hmac::new(Sha256::new(), &um);
658                 hmac.input(&packet.encode()[32..]);
659                 hmac.raw_result(&mut packet.hmac);
660
661                 packet
662         }
663
664         #[inline]
665         fn build_first_hop_failure_packet(shared_secret: &SharedSecret, failure_type: u16, failure_data: &[u8]) -> msgs::OnionErrorPacket {
666                 let failure_packet = ChannelManager::build_failure_packet(shared_secret, failure_type, failure_data);
667                 ChannelManager::encrypt_failure_packet(shared_secret, &failure_packet.encode()[..])
668         }
669
670         /// only fails if the channel does not yet have an assigned short_id
671         fn get_channel_update(&self, chan: &Channel) -> Result<msgs::ChannelUpdate, HandleError> {
672                 let short_channel_id = match chan.get_short_channel_id() {
673                         None => return Err(HandleError{err: "Channel not yet established", action: None}),
674                         Some(id) => id,
675                 };
676
677                 let were_node_one = PublicKey::from_secret_key(&self.secp_ctx, &self.our_network_key).unwrap().serialize()[..] < chan.get_their_node_id().serialize()[..];
678
679                 let unsigned = msgs::UnsignedChannelUpdate {
680                         chain_hash: self.genesis_hash,
681                         short_channel_id: short_channel_id,
682                         timestamp: chan.get_channel_update_count(),
683                         flags: (!were_node_one) as u16 | ((!chan.is_live() as u16) << 1),
684                         cltv_expiry_delta: CLTV_EXPIRY_DELTA,
685                         htlc_minimum_msat: chan.get_our_htlc_minimum_msat(),
686                         fee_base_msat: chan.get_our_fee_base_msat(&*self.fee_estimator),
687                         fee_proportional_millionths: self.fee_proportional_millionths,
688                 };
689
690                 let msg_hash = Sha256dHash::from_data(&unsigned.encode()[..]);
691                 let sig = self.secp_ctx.sign(&Message::from_slice(&msg_hash[..]).unwrap(), &self.our_network_key).unwrap(); //TODO Can we unwrap here?
692
693                 Ok(msgs::ChannelUpdate {
694                         signature: sig,
695                         contents: unsigned
696                 })
697         }
698
699         /// Sends a payment along a given route.
700         /// Value parameters are provided via the last hop in route, see documentation for RouteHop
701         /// fields for more info.
702         /// Note that if the payment_hash already exists elsewhere (eg you're sending a duplicative
703         /// payment), we don't do anything to stop you! We always try to ensure that if the provided
704         /// next hop knows the preimage to payment_hash they can claim an additional amount as
705         /// specified in the last hop in the route! Thus, you should probably do your own
706         /// payment_preimage tracking (which you should already be doing as they represent "proof of
707         /// payment") and prevent double-sends yourself.
708         /// See-also docs on Channel::send_htlc_and_commit.
709         /// May generate a SendHTLCs event on success, which should be relayed.
710         pub fn send_payment(&self, route: Route, payment_hash: [u8; 32]) -> Result<(), HandleError> {
711                 if route.hops.len() < 1 || route.hops.len() > 20 {
712                         return Err(HandleError{err: "Route didn't go anywhere/had bogus size", action: None});
713                 }
714                 let our_node_id = self.get_our_node_id();
715                 for (idx, hop) in route.hops.iter().enumerate() {
716                         if idx != route.hops.len() - 1 && hop.pubkey == our_node_id {
717                                 return Err(HandleError{err: "Route went through us but wasn't a simple rebalance loop to us", action: None});
718                         }
719                 }
720
721                 let session_priv = secp_call!(SecretKey::from_slice(&self.secp_ctx, &{
722                         let mut session_key = [0; 32];
723                         rng::fill_bytes(&mut session_key);
724                         session_key
725                 }));
726
727                 let cur_height = self.latest_block_height.load(Ordering::Acquire) as u32 + 1;
728
729                 let onion_keys = ChannelManager::construct_onion_keys(&self.secp_ctx, &route, &session_priv)?;
730                 let (onion_payloads, htlc_msat, htlc_cltv) = ChannelManager::build_onion_payloads(&route, cur_height)?;
731                 let onion_packet = ChannelManager::construct_onion_packet(onion_payloads, onion_keys, &payment_hash)?;
732
733                 let (first_hop_node_id, (update_add, commitment_signed, chan_monitor)) = {
734                         let mut channel_state_lock = self.channel_state.lock().unwrap();
735                         let channel_state = channel_state_lock.borrow_parts();
736
737                         let id = match channel_state.short_to_id.get(&route.hops.first().unwrap().short_channel_id) {
738                                 None => return Err(HandleError{err: "No channel available with first hop!", action: None}),
739                                 Some(id) => id.clone()
740                         };
741
742                         let claimable_htlc_entry = channel_state.claimable_htlcs.entry(payment_hash.clone());
743                         if let hash_map::Entry::Occupied(_) = claimable_htlc_entry {
744                                 return Err(HandleError{err: "Already had pending HTLC with the same payment_hash", action: None});
745                         }
746
747                         let res = {
748                                 let chan = channel_state.by_id.get_mut(&id).unwrap();
749                                 if chan.get_their_node_id() != route.hops.first().unwrap().pubkey {
750                                         return Err(HandleError{err: "Node ID mismatch on first hop!", action: None});
751                                 }
752                                 chan.send_htlc_and_commit(htlc_msat, payment_hash, htlc_cltv, onion_packet)?
753                         };
754
755                         let first_hop_node_id = route.hops.first().unwrap().pubkey;
756
757                         claimable_htlc_entry.or_insert(PendingOutboundHTLC::OutboundRoute {
758                                 route,
759                                 session_priv,
760                         });
761
762                         match res {
763                                 Some(msgs) => (first_hop_node_id, msgs),
764                                 None => return Ok(()),
765                         }
766                 };
767
768                 if let Err(_e) = self.monitor.add_update_monitor(chan_monitor.get_funding_txo().unwrap(), chan_monitor) {
769                         unimplemented!(); // maybe remove from claimable_htlcs?
770                 }
771
772                 let mut events = self.pending_events.lock().unwrap();
773                 events.push(events::Event::SendHTLCs {
774                         node_id: first_hop_node_id,
775                         msgs: vec![update_add],
776                         commitment_msg: commitment_signed,
777                 });
778                 Ok(())
779         }
780
781         /// Call this upon creation of a funding transaction for the given channel.
782         /// Panics if a funding transaction has already been provided for this channel.
783         /// May panic if the funding_txo is duplicative with some other channel (note that this should
784         /// be trivially prevented by using unique funding transaction keys per-channel).
785         pub fn funding_transaction_generated(&self, temporary_channel_id: &[u8; 32], funding_txo: OutPoint) {
786
787                 macro_rules! add_pending_event {
788                         ($event: expr) => {
789                                 {
790                                         let mut pending_events = self.pending_events.lock().unwrap();
791                                         pending_events.push($event);
792                                 }
793                         }
794                 }
795
796                 let (chan, msg, chan_monitor) = {
797                         let mut channel_state = self.channel_state.lock().unwrap();
798                         match channel_state.by_id.remove(temporary_channel_id) {
799                                 Some(mut chan) => {
800                                         match chan.get_outbound_funding_created(funding_txo) {
801                                                 Ok(funding_msg) => {
802                                                         (chan, funding_msg.0, funding_msg.1)
803                                                 },
804                                                 Err(e) => {
805                                                         log_error!(self, "Got bad signatures: {}!", e.err);
806                                                         mem::drop(channel_state);
807                                                         add_pending_event!(events::Event::HandleError {
808                                                                 node_id: chan.get_their_node_id(),
809                                                                 action: e.action,
810                                                         });
811                                                         return;
812                                                 },
813                                         }
814                                 },
815                                 None => return
816                         }
817                 }; // Release channel lock for install_watch_outpoint call,
818                 if let Err(_e) = self.monitor.add_update_monitor(chan_monitor.get_funding_txo().unwrap(), chan_monitor) {
819                         unimplemented!(); // maybe remove from claimable_htlcs?
820                 }
821                 add_pending_event!(events::Event::SendFundingCreated {
822                         node_id: chan.get_their_node_id(),
823                         msg: msg,
824                 });
825
826                 let mut channel_state = self.channel_state.lock().unwrap();
827                 match channel_state.by_id.entry(chan.channel_id()) {
828                         hash_map::Entry::Occupied(_) => {
829                                 panic!("Generated duplicate funding txid?");
830                         },
831                         hash_map::Entry::Vacant(e) => {
832                                 e.insert(chan);
833                         }
834                 }
835         }
836
837         fn get_announcement_sigs(&self, chan: &Channel) -> Result<Option<msgs::AnnouncementSignatures>, HandleError> {
838                 if !chan.is_usable() || !chan.should_announce() { return Ok(None) }
839
840                 let (announcement, our_bitcoin_sig) = chan.get_channel_announcement(self.get_our_node_id(), self.genesis_hash.clone())?;
841                 let msghash = Message::from_slice(&Sha256dHash::from_data(&announcement.encode()[..])[..]).unwrap();
842                 let our_node_sig = secp_call!(self.secp_ctx.sign(&msghash, &self.our_network_key));
843
844                 Ok(Some(msgs::AnnouncementSignatures {
845                         channel_id: chan.channel_id(),
846                         short_channel_id: chan.get_short_channel_id().unwrap(),
847                         node_signature: our_node_sig,
848                         bitcoin_signature: our_bitcoin_sig,
849                 }))
850         }
851
852         /// Processes HTLCs which are pending waiting on random forward delay.
853         /// Should only really ever be called in response to an PendingHTLCsForwardable event.
854         /// Will likely generate further events.
855         pub fn process_pending_htlc_forwards(&self) {
856                 let mut new_events = Vec::new();
857                 let mut failed_forwards = Vec::new();
858                 {
859                         let mut channel_state_lock = self.channel_state.lock().unwrap();
860                         let channel_state = channel_state_lock.borrow_parts();
861
862                         if cfg!(not(feature = "fuzztarget")) && Instant::now() < *channel_state.next_forward {
863                                 return;
864                         }
865
866                         for (short_chan_id, pending_forwards) in channel_state.forward_htlcs.drain() {
867                                 if short_chan_id != 0 {
868                                         let forward_chan_id = match channel_state.short_to_id.get(&short_chan_id) {
869                                                 Some(chan_id) => chan_id.clone(),
870                                                 None => {
871                                                         failed_forwards.reserve(pending_forwards.len());
872                                                         for forward_info in pending_forwards {
873                                                                 failed_forwards.push((forward_info.payment_hash, 0x4000 | 10, None));
874                                                         }
875                                                         continue;
876                                                 }
877                                         };
878                                         let forward_chan = &mut channel_state.by_id.get_mut(&forward_chan_id).unwrap();
879
880                                         let mut add_htlc_msgs = Vec::new();
881                                         for forward_info in pending_forwards {
882                                                 match forward_chan.send_htlc(forward_info.amt_to_forward, forward_info.payment_hash, forward_info.outgoing_cltv_value, forward_info.onion_packet.unwrap()) {
883                                                         Err(_e) => {
884                                                                 let chan_update = self.get_channel_update(forward_chan).unwrap();
885                                                                 failed_forwards.push((forward_info.payment_hash, 0x1000 | 7, Some(chan_update)));
886                                                                 continue;
887                                                         },
888                                                         Ok(update_add) => {
889                                                                 match update_add {
890                                                                         Some(msg) => { add_htlc_msgs.push(msg); },
891                                                                         None => {
892                                                                                 // Nothing to do here...we're waiting on a remote
893                                                                                 // revoke_and_ack before we can add anymore HTLCs. The Channel
894                                                                                 // will automatically handle building the update_add_htlc and
895                                                                                 // commitment_signed messages when we can.
896                                                                                 // TODO: Do some kind of timer to set the channel as !is_live()
897                                                                                 // as we don't really want others relying on us relaying through
898                                                                                 // this channel currently :/.
899                                                                         }
900                                                                 }
901                                                         }
902                                                 }
903                                         }
904
905                                         if !add_htlc_msgs.is_empty() {
906                                                 let (commitment_msg, monitor) = match forward_chan.send_commitment() {
907                                                         Ok(res) => res,
908                                                         Err(_e) => {
909                                                                 //TODO: Handle...this is bad!
910                                                                 continue;
911                                                         },
912                                                 };
913                                                 new_events.push((Some(monitor), events::Event::SendHTLCs {
914                                                         node_id: forward_chan.get_their_node_id(),
915                                                         msgs: add_htlc_msgs,
916                                                         commitment_msg: commitment_msg,
917                                                 }));
918                                         }
919                                 } else {
920                                         for forward_info in pending_forwards {
921                                                 new_events.push((None, events::Event::PaymentReceived {
922                                                         payment_hash: forward_info.payment_hash,
923                                                         amt: forward_info.amt_to_forward,
924                                                 }));
925                                         }
926                                 }
927                         }
928                 }
929
930                 for failed_forward in failed_forwards.drain(..) {
931                         match failed_forward.2 {
932                                 None => self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), &failed_forward.0, HTLCFailReason::Reason { failure_code: failed_forward.1, data: Vec::new() }),
933                                 Some(chan_update) => self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), &failed_forward.0, HTLCFailReason::Reason { failure_code: failed_forward.1, data: chan_update.encode_with_len() }),
934                         };
935                 }
936
937                 if new_events.is_empty() { return }
938
939                 new_events.retain(|event| {
940                         if let &Some(ref monitor) = &event.0 {
941                                 if let Err(_e) = self.monitor.add_update_monitor(monitor.get_funding_txo().unwrap(), monitor.clone()) {
942                                         unimplemented!();// but def dont push the event...
943                                 }
944                         }
945                         true
946                 });
947
948                 let mut events = self.pending_events.lock().unwrap();
949                 events.reserve(new_events.len());
950                 for event in new_events.drain(..) {
951                         events.push(event.1);
952                 }
953         }
954
955         /// Indicates that the preimage for payment_hash is unknown after a PaymentReceived event.
956         pub fn fail_htlc_backwards(&self, payment_hash: &[u8; 32]) -> bool {
957                 self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), payment_hash, HTLCFailReason::Reason { failure_code: 0x4000 | 15, data: Vec::new() })
958         }
959
960         /// Fails an HTLC backwards to the sender of it to us.
961         /// Note that while we take a channel_state lock as input, we do *not* assume consistency here.
962         /// There are several callsites that do stupid things like loop over a list of payment_hashes
963         /// to fail and take the channel_state lock for each iteration (as we take ownership and may
964         /// drop it). In other words, no assumptions are made that entries in claimable_htlcs point to
965         /// still-available channels.
966         fn fail_htlc_backwards_internal(&self, mut channel_state: MutexGuard<ChannelHolder>, payment_hash: &[u8; 32], onion_error: HTLCFailReason) -> bool {
967                 let mut pending_htlc = {
968                         match channel_state.claimable_htlcs.remove(payment_hash) {
969                                 Some(pending_htlc) => pending_htlc,
970                                 None => return false,
971                         }
972                 };
973
974                 match pending_htlc {
975                         PendingOutboundHTLC::CycledRoute { source_short_channel_id, incoming_packet_shared_secret, route, session_priv } => {
976                                 channel_state.claimable_htlcs.insert(payment_hash.clone(), PendingOutboundHTLC::OutboundRoute {
977                                         route,
978                                         session_priv,
979                                 });
980                                 pending_htlc = PendingOutboundHTLC::IntermediaryHopData { source_short_channel_id, incoming_packet_shared_secret };
981                         },
982                         _ => {}
983                 }
984
985                 match pending_htlc {
986                         PendingOutboundHTLC::CycledRoute { .. } => unreachable!(),
987                         PendingOutboundHTLC::OutboundRoute { .. } => {
988                                 mem::drop(channel_state);
989
990                                 let mut pending_events = self.pending_events.lock().unwrap();
991                                 pending_events.push(events::Event::PaymentFailed {
992                                         payment_hash: payment_hash.clone()
993                                 });
994                                 false
995                         },
996                         PendingOutboundHTLC::IntermediaryHopData { source_short_channel_id, incoming_packet_shared_secret } => {
997                                 let err_packet = match onion_error {
998                                         HTLCFailReason::Reason { failure_code, data } => {
999                                                 let packet = ChannelManager::build_failure_packet(&incoming_packet_shared_secret, failure_code, &data[..]).encode();
1000                                                 ChannelManager::encrypt_failure_packet(&incoming_packet_shared_secret, &packet)
1001                                         },
1002                                         HTLCFailReason::ErrorPacket { err } => {
1003                                                 ChannelManager::encrypt_failure_packet(&incoming_packet_shared_secret, &err.data)
1004                                         }
1005                                 };
1006
1007                                 let (node_id, fail_msgs) = {
1008                                         let chan_id = match channel_state.short_to_id.get(&source_short_channel_id) {
1009                                                 Some(chan_id) => chan_id.clone(),
1010                                                 None => return false
1011                                         };
1012
1013                                         let chan = channel_state.by_id.get_mut(&chan_id).unwrap();
1014                                         match chan.get_update_fail_htlc_and_commit(payment_hash, err_packet) {
1015                                                 Ok(msg) => (chan.get_their_node_id(), msg),
1016                                                 Err(_e) => {
1017                                                         //TODO: Do something with e?
1018                                                         return false;
1019                                                 },
1020                                         }
1021                                 };
1022
1023                                 match fail_msgs {
1024                                         Some((msg, commitment_msg, chan_monitor)) => {
1025                                                 mem::drop(channel_state);
1026
1027                                                 if let Err(_e) = self.monitor.add_update_monitor(chan_monitor.get_funding_txo().unwrap(), chan_monitor) {
1028                                                         unimplemented!();// but def dont push the event...
1029                                                 }
1030
1031                                                 let mut pending_events = self.pending_events.lock().unwrap();
1032                                                 //TODO: replace by HandleError ? UpdateFailHTLC in handle_update_add_htlc need also to build a CommitmentSigned
1033                                                 pending_events.push(events::Event::SendFailHTLC {
1034                                                         node_id,
1035                                                         msg: msg,
1036                                                         commitment_msg: commitment_msg,
1037                                                 });
1038                                         },
1039                                         None => {},
1040                                 }
1041
1042                                 true
1043                         },
1044                 }
1045         }
1046
1047         /// Provides a payment preimage in response to a PaymentReceived event, returning true and
1048         /// generating message events for the net layer to claim the payment, if possible. Thus, you
1049         /// should probably kick the net layer to go send messages if this returns true!
1050         /// May panic if called except in response to a PaymentReceived event.
1051         pub fn claim_funds(&self, payment_preimage: [u8; 32]) -> bool {
1052                 self.claim_funds_internal(payment_preimage, true)
1053         }
1054         fn claim_funds_internal(&self, payment_preimage: [u8; 32], from_user: bool) -> bool {
1055                 let mut sha = Sha256::new();
1056                 sha.input(&payment_preimage);
1057                 let mut payment_hash = [0; 32];
1058                 sha.result(&mut payment_hash);
1059
1060                 let mut channel_state = self.channel_state.lock().unwrap();
1061                 let mut pending_htlc = {
1062                         match channel_state.claimable_htlcs.remove(&payment_hash) {
1063                                 Some(pending_htlc) => pending_htlc,
1064                                 None => return false,
1065                         }
1066                 };
1067
1068                 match pending_htlc {
1069                         PendingOutboundHTLC::CycledRoute { source_short_channel_id, incoming_packet_shared_secret, route, session_priv } => {
1070                                 if from_user { // This was the end hop back to us
1071                                         pending_htlc = PendingOutboundHTLC::IntermediaryHopData { source_short_channel_id, incoming_packet_shared_secret };
1072                                         channel_state.claimable_htlcs.insert(payment_hash, PendingOutboundHTLC::OutboundRoute { route, session_priv });
1073                                 } else { // This came from the first upstream node
1074                                         // Bank error in our favor! Maybe we should tell the user this somehow???
1075                                         pending_htlc = PendingOutboundHTLC::OutboundRoute { route, session_priv };
1076                                         channel_state.claimable_htlcs.insert(payment_hash, PendingOutboundHTLC::IntermediaryHopData { source_short_channel_id, incoming_packet_shared_secret });
1077                                 }
1078                         },
1079                         _ => {},
1080                 }
1081
1082                 match pending_htlc {
1083                         PendingOutboundHTLC::CycledRoute { .. } => unreachable!(),
1084                         PendingOutboundHTLC::OutboundRoute { .. } => {
1085                                 if from_user {
1086                                         panic!("Called claim_funds with a preimage for an outgoing payment. There is nothing we can do with this, and something is seriously wrong if you knew this...");
1087                                 }
1088                                 mem::drop(channel_state);
1089                                 let mut pending_events = self.pending_events.lock().unwrap();
1090                                 pending_events.push(events::Event::PaymentSent {
1091                                         payment_preimage
1092                                 });
1093                                 false
1094                         },
1095                         PendingOutboundHTLC::IntermediaryHopData { source_short_channel_id, .. } => {
1096                                 let (node_id, fulfill_msgs) = {
1097                                         let chan_id = match channel_state.short_to_id.get(&source_short_channel_id) {
1098                                                 Some(chan_id) => chan_id.clone(),
1099                                                 None => {
1100                                                         // TODO: There is probably a channel manager somewhere that needs to
1101                                                         // learn the preimage as the channel already hit the chain and that's
1102                                                         // why its missing.
1103                                                         return false
1104                                                 }
1105                                         };
1106
1107                                         let chan = channel_state.by_id.get_mut(&chan_id).unwrap();
1108                                         match chan.get_update_fulfill_htlc_and_commit(payment_preimage) {
1109                                                 Ok(msg) => (chan.get_their_node_id(), msg),
1110                                                 Err(_e) => {
1111                                                         // TODO: There is probably a channel manager somewhere that needs to
1112                                                         // learn the preimage as the channel may be about to hit the chain.
1113                                                         //TODO: Do something with e?
1114                                                         return false;
1115                                                 },
1116                                         }
1117                                 };
1118
1119                                 mem::drop(channel_state);
1120                                 if let Some(chan_monitor) = fulfill_msgs.1 {
1121                                         if let Err(_e) = self.monitor.add_update_monitor(chan_monitor.get_funding_txo().unwrap(), chan_monitor) {
1122                                                 unimplemented!();// but def dont push the event...
1123                                         }
1124                                 }
1125
1126                                 if let Some((msg, commitment_msg)) = fulfill_msgs.0 {
1127                                         let mut pending_events = self.pending_events.lock().unwrap();
1128                                         pending_events.push(events::Event::SendFulfillHTLC {
1129                                                 node_id: node_id,
1130                                                 msg,
1131                                                 commitment_msg,
1132                                         });
1133                                 }
1134                                 true
1135                         },
1136                 }
1137         }
1138
1139         /// Gets the node_id held by this ChannelManager
1140         pub fn get_our_node_id(&self) -> PublicKey {
1141                 PublicKey::from_secret_key(&self.secp_ctx, &self.our_network_key).unwrap()
1142         }
1143
1144         /// Used to restore channels to normal operation after a
1145         /// ChannelMonitorUpdateErr::TemporaryFailure was returned from a channel monitor update
1146         /// operation.
1147         pub fn test_restore_channel_monitor(&self) {
1148                 unimplemented!();
1149         }
1150 }
1151
1152 impl events::EventsProvider for ChannelManager {
1153         fn get_and_clear_pending_events(&self) -> Vec<events::Event> {
1154                 let mut pending_events = self.pending_events.lock().unwrap();
1155                 let mut ret = Vec::new();
1156                 mem::swap(&mut ret, &mut *pending_events);
1157                 ret
1158         }
1159 }
1160
1161 impl ChainListener for ChannelManager {
1162         fn block_connected(&self, header: &BlockHeader, height: u32, txn_matched: &[&Transaction], indexes_of_txn_matched: &[u32]) {
1163                 let mut new_events = Vec::new();
1164                 let mut failed_channels = Vec::new();
1165                 {
1166                         let mut channel_lock = self.channel_state.lock().unwrap();
1167                         let channel_state = channel_lock.borrow_parts();
1168                         let short_to_id = channel_state.short_to_id;
1169                         channel_state.by_id.retain(|_, channel| {
1170                                 let chan_res = channel.block_connected(header, height, txn_matched, indexes_of_txn_matched);
1171                                 if let Ok(Some(funding_locked)) = chan_res {
1172                                         let announcement_sigs = match self.get_announcement_sigs(channel) {
1173                                                 Ok(res) => res,
1174                                                 Err(e) => {
1175                                                         log_error!(self, "Got error handling message: {}!", e.err);
1176                                                         //TODO: push e on events and blow up the channel (it has bad keys)
1177                                                         return true;
1178                                                 }
1179                                         };
1180                                         new_events.push(events::Event::SendFundingLocked {
1181                                                 node_id: channel.get_their_node_id(),
1182                                                 msg: funding_locked,
1183                                                 announcement_sigs: announcement_sigs
1184                                         });
1185                                         short_to_id.insert(channel.get_short_channel_id().unwrap(), channel.channel_id());
1186                                 } else if let Err(e) = chan_res {
1187                                         new_events.push(events::Event::HandleError {
1188                                                 node_id: channel.get_their_node_id(),
1189                                                 action: e.action,
1190                                         });
1191                                         if channel.is_shutdown() {
1192                                                 return false;
1193                                         }
1194                                 }
1195                                 if let Some(funding_txo) = channel.get_funding_txo() {
1196                                         for tx in txn_matched {
1197                                                 for inp in tx.input.iter() {
1198                                                         if inp.prev_hash == funding_txo.txid && inp.prev_index == funding_txo.index as u32 {
1199                                                                 if let Some(short_id) = channel.get_short_channel_id() {
1200                                                                         short_to_id.remove(&short_id);
1201                                                                 }
1202                                                                 // It looks like our counterparty went on-chain. We go ahead and
1203                                                                 // broadcast our latest local state as well here, just in case its
1204                                                                 // some kind of SPV attack, though we expect these to be dropped.
1205                                                                 failed_channels.push(channel.force_shutdown());
1206                                                                 if let Ok(update) = self.get_channel_update(&channel) {
1207                                                                         new_events.push(events::Event::BroadcastChannelUpdate {
1208                                                                                 msg: update
1209                                                                         });
1210                                                                 }
1211                                                                 return false;
1212                                                         }
1213                                                 }
1214                                         }
1215                                 }
1216                                 if channel.is_funding_initiated() && channel.channel_monitor().would_broadcast_at_height(height) {
1217                                         if let Some(short_id) = channel.get_short_channel_id() {
1218                                                 short_to_id.remove(&short_id);
1219                                         }
1220                                         failed_channels.push(channel.force_shutdown());
1221                                         // If would_broadcast_at_height() is true, the channel_monitor will broadcast
1222                                         // the latest local tx for us, so we should skip that here (it doesn't really
1223                                         // hurt anything, but does make tests a bit simpler).
1224                                         failed_channels.last_mut().unwrap().0 = Vec::new();
1225                                         if let Ok(update) = self.get_channel_update(&channel) {
1226                                                 new_events.push(events::Event::BroadcastChannelUpdate {
1227                                                         msg: update
1228                                                 });
1229                                         }
1230                                         return false;
1231                                 }
1232                                 true
1233                         });
1234                 }
1235                 for failure in failed_channels.drain(..) {
1236                         self.finish_force_close_channel(failure);
1237                 }
1238                 let mut pending_events = self.pending_events.lock().unwrap();
1239                 for funding_locked in new_events.drain(..) {
1240                         pending_events.push(funding_locked);
1241                 }
1242                 self.latest_block_height.store(height as usize, Ordering::Release);
1243         }
1244
1245         /// We force-close the channel without letting our counterparty participate in the shutdown
1246         fn block_disconnected(&self, header: &BlockHeader) {
1247                 let mut new_events = Vec::new();
1248                 let mut failed_channels = Vec::new();
1249                 {
1250                         let mut channel_lock = self.channel_state.lock().unwrap();
1251                         let channel_state = channel_lock.borrow_parts();
1252                         let short_to_id = channel_state.short_to_id;
1253                         channel_state.by_id.retain(|_,  v| {
1254                                 if v.block_disconnected(header) {
1255                                         if let Some(short_id) = v.get_short_channel_id() {
1256                                                 short_to_id.remove(&short_id);
1257                                         }
1258                                         failed_channels.push(v.force_shutdown());
1259                                         if let Ok(update) = self.get_channel_update(&v) {
1260                                                 new_events.push(events::Event::BroadcastChannelUpdate {
1261                                                         msg: update
1262                                                 });
1263                                         }
1264                                         false
1265                                 } else {
1266                                         true
1267                                 }
1268                         });
1269                 }
1270                 for failure in failed_channels.drain(..) {
1271                         self.finish_force_close_channel(failure);
1272                 }
1273                 if !new_events.is_empty() {
1274                         let mut pending_events = self.pending_events.lock().unwrap();
1275                         for funding_locked in new_events.drain(..) {
1276                                 pending_events.push(funding_locked);
1277                         }
1278                 }
1279                 self.latest_block_height.fetch_sub(1, Ordering::AcqRel);
1280         }
1281 }
1282
1283 impl ChannelMessageHandler for ChannelManager {
1284         //TODO: Handle errors and close channel (or so)
1285         fn handle_open_channel(&self, their_node_id: &PublicKey, msg: &msgs::OpenChannel) -> Result<msgs::AcceptChannel, HandleError> {
1286                 if msg.chain_hash != self.genesis_hash {
1287                         return Err(HandleError{err: "Unknown genesis block hash", action: None});
1288                 }
1289                 let mut channel_state = self.channel_state.lock().unwrap();
1290                 if channel_state.by_id.contains_key(&msg.temporary_channel_id) {
1291                         return Err(HandleError{err: "temporary_channel_id collision!", action: None});
1292                 }
1293
1294                 let chan_keys = if cfg!(feature = "fuzztarget") {
1295                         ChannelKeys {
1296                                 funding_key:               SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1, 0]).unwrap(),
1297                                 revocation_base_key:       SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 2, 0]).unwrap(),
1298                                 payment_base_key:          SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 3, 0]).unwrap(),
1299                                 delayed_payment_base_key:  SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 4, 0]).unwrap(),
1300                                 htlc_base_key:             SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 5, 0]).unwrap(),
1301                                 channel_close_key:         SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 6, 0]).unwrap(),
1302                                 channel_monitor_claim_key: SecretKey::from_slice(&self.secp_ctx, &[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 7, 0]).unwrap(),
1303                                 commitment_seed: [0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0],
1304                         }
1305                 } else {
1306                         let mut key_seed = [0u8; 32];
1307                         rng::fill_bytes(&mut key_seed);
1308                         match ChannelKeys::new_from_seed(&key_seed) {
1309                                 Ok(key) => key,
1310                                 Err(_) => panic!("RNG is busted!")
1311                         }
1312                 };
1313
1314                 let channel = Channel::new_from_req(&*self.fee_estimator, chan_keys, their_node_id.clone(), msg, 0, false, self.announce_channels_publicly, Arc::clone(&self.logger))?;
1315                 let accept_msg = channel.get_accept_channel()?;
1316                 channel_state.by_id.insert(channel.channel_id(), channel);
1317                 Ok(accept_msg)
1318         }
1319
1320         fn handle_accept_channel(&self, their_node_id: &PublicKey, msg: &msgs::AcceptChannel) -> Result<(), HandleError> {
1321                 let (value, output_script, user_id) = {
1322                         let mut channel_state = self.channel_state.lock().unwrap();
1323                         match channel_state.by_id.get_mut(&msg.temporary_channel_id) {
1324                                 Some(chan) => {
1325                                         if chan.get_their_node_id() != *their_node_id {
1326                                                 return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1327                                         }
1328                                         chan.accept_channel(&msg)?;
1329                                         (chan.get_value_satoshis(), chan.get_funding_redeemscript().to_v0_p2wsh(), chan.get_user_id())
1330                                 },
1331                                 None => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1332                         }
1333                 };
1334                 let mut pending_events = self.pending_events.lock().unwrap();
1335                 pending_events.push(events::Event::FundingGenerationReady {
1336                         temporary_channel_id: msg.temporary_channel_id,
1337                         channel_value_satoshis: value,
1338                         output_script: output_script,
1339                         user_channel_id: user_id,
1340                 });
1341                 Ok(())
1342         }
1343
1344         fn handle_funding_created(&self, their_node_id: &PublicKey, msg: &msgs::FundingCreated) -> Result<msgs::FundingSigned, HandleError> {
1345                 let (chan, funding_msg, monitor_update) = {
1346                         let mut channel_state = self.channel_state.lock().unwrap();
1347                         match channel_state.by_id.entry(msg.temporary_channel_id.clone()) {
1348                                 hash_map::Entry::Occupied(mut chan) => {
1349                                         if chan.get().get_their_node_id() != *their_node_id {
1350                                                 return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1351                                         }
1352                                         match chan.get_mut().funding_created(msg) {
1353                                                 Ok((funding_msg, monitor_update)) => {
1354                                                         (chan.remove(), funding_msg, monitor_update)
1355                                                 },
1356                                                 Err(e) => {
1357                                                         //TODO: Possibly remove the channel depending on e.action
1358                                                         return Err(e);
1359                                                 }
1360                                         }
1361                                 },
1362                                 hash_map::Entry::Vacant(_) => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1363                         }
1364                 }; // Release channel lock for install_watch_outpoint call,
1365                    // note that this means if the remote end is misbehaving and sends a message for the same
1366                    // channel back-to-back with funding_created, we'll end up thinking they sent a message
1367                    // for a bogus channel.
1368                 if let Err(_e) = self.monitor.add_update_monitor(monitor_update.get_funding_txo().unwrap(), monitor_update) {
1369                         unimplemented!();
1370                 }
1371                 let mut channel_state = self.channel_state.lock().unwrap();
1372                 match channel_state.by_id.entry(funding_msg.channel_id) {
1373                         hash_map::Entry::Occupied(_) => {
1374                                 return Err(HandleError {
1375                                         err: "Duplicate channel_id!",
1376                                         action: Some(msgs::ErrorAction::SendErrorMessage { msg: msgs::ErrorMessage { channel_id: funding_msg.channel_id, data: "Already had channel with the new channel_id".to_owned() } })
1377                                 });
1378                         },
1379                         hash_map::Entry::Vacant(e) => {
1380                                 e.insert(chan);
1381                         }
1382                 }
1383                 Ok(funding_msg)
1384         }
1385
1386         fn handle_funding_signed(&self, their_node_id: &PublicKey, msg: &msgs::FundingSigned) -> Result<(), HandleError> {
1387                 let (funding_txo, user_id, monitor) = {
1388                         let mut channel_state = self.channel_state.lock().unwrap();
1389                         match channel_state.by_id.get_mut(&msg.channel_id) {
1390                                 Some(chan) => {
1391                                         if chan.get_their_node_id() != *their_node_id {
1392                                                 return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1393                                         }
1394                                         let chan_monitor = chan.funding_signed(&msg)?;
1395                                         (chan.get_funding_txo().unwrap(), chan.get_user_id(), chan_monitor)
1396                                 },
1397                                 None => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1398                         }
1399                 };
1400                 if let Err(_e) = self.monitor.add_update_monitor(monitor.get_funding_txo().unwrap(), monitor) {
1401                         unimplemented!();
1402                 }
1403                 let mut pending_events = self.pending_events.lock().unwrap();
1404                 pending_events.push(events::Event::FundingBroadcastSafe {
1405                         funding_txo: funding_txo,
1406                         user_channel_id: user_id,
1407                 });
1408                 Ok(())
1409         }
1410
1411         fn handle_funding_locked(&self, their_node_id: &PublicKey, msg: &msgs::FundingLocked) -> Result<Option<msgs::AnnouncementSignatures>, HandleError> {
1412                 let mut channel_state = self.channel_state.lock().unwrap();
1413                 match channel_state.by_id.get_mut(&msg.channel_id) {
1414                         Some(chan) => {
1415                                 if chan.get_their_node_id() != *their_node_id {
1416                                         return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1417                                 }
1418                                 chan.funding_locked(&msg)?;
1419                                 return Ok(self.get_announcement_sigs(chan)?);
1420                         },
1421                         None => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1422                 };
1423         }
1424
1425         fn handle_shutdown(&self, their_node_id: &PublicKey, msg: &msgs::Shutdown) -> Result<(Option<msgs::Shutdown>, Option<msgs::ClosingSigned>), HandleError> {
1426                 let (res, chan_option) = {
1427                         let mut channel_state_lock = self.channel_state.lock().unwrap();
1428                         let channel_state = channel_state_lock.borrow_parts();
1429
1430                         match channel_state.by_id.entry(msg.channel_id.clone()) {
1431                                 hash_map::Entry::Occupied(mut chan_entry) => {
1432                                         if chan_entry.get().get_their_node_id() != *their_node_id {
1433                                                 return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1434                                         }
1435                                         let res = chan_entry.get_mut().shutdown(&*self.fee_estimator, &msg)?;
1436                                         if chan_entry.get().is_shutdown() {
1437                                                 if let Some(short_id) = chan_entry.get().get_short_channel_id() {
1438                                                         channel_state.short_to_id.remove(&short_id);
1439                                                 }
1440                                                 (res, Some(chan_entry.remove_entry().1))
1441                                         } else { (res, None) }
1442                                 },
1443                                 hash_map::Entry::Vacant(_) => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1444                         }
1445                 };
1446                 for payment_hash in res.2 {
1447                         // unknown_next_peer...I dunno who that is anymore....
1448                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), &payment_hash, HTLCFailReason::Reason { failure_code: 0x4000 | 10, data: Vec::new() });
1449                 }
1450                 if let Some(chan) = chan_option {
1451                         if let Ok(update) = self.get_channel_update(&chan) {
1452                                 let mut events = self.pending_events.lock().unwrap();
1453                                 events.push(events::Event::BroadcastChannelUpdate {
1454                                         msg: update
1455                                 });
1456                         }
1457                 }
1458                 Ok((res.0, res.1))
1459         }
1460
1461         fn handle_closing_signed(&self, their_node_id: &PublicKey, msg: &msgs::ClosingSigned) -> Result<Option<msgs::ClosingSigned>, HandleError> {
1462                 let (res, chan_option) = {
1463                         let mut channel_state_lock = self.channel_state.lock().unwrap();
1464                         let channel_state = channel_state_lock.borrow_parts();
1465                         match channel_state.by_id.entry(msg.channel_id.clone()) {
1466                                 hash_map::Entry::Occupied(mut chan_entry) => {
1467                                         if chan_entry.get().get_their_node_id() != *their_node_id {
1468                                                 return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1469                                         }
1470                                         let res = chan_entry.get_mut().closing_signed(&*self.fee_estimator, &msg)?;
1471                                         if res.1.is_some() {
1472                                                 // We're done with this channel, we've got a signed closing transaction and
1473                                                 // will send the closing_signed back to the remote peer upon return. This
1474                                                 // also implies there are no pending HTLCs left on the channel, so we can
1475                                                 // fully delete it from tracking (the channel monitor is still around to
1476                                                 // watch for old state broadcasts)!
1477                                                 if let Some(short_id) = chan_entry.get().get_short_channel_id() {
1478                                                         channel_state.short_to_id.remove(&short_id);
1479                                                 }
1480                                                 (res, Some(chan_entry.remove_entry().1))
1481                                         } else { (res, None) }
1482                                 },
1483                                 hash_map::Entry::Vacant(_) => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1484                         }
1485                 };
1486                 if let Some(broadcast_tx) = res.1 {
1487                         self.tx_broadcaster.broadcast_transaction(&broadcast_tx);
1488                 }
1489                 if let Some(chan) = chan_option {
1490                         if let Ok(update) = self.get_channel_update(&chan) {
1491                                 let mut events = self.pending_events.lock().unwrap();
1492                                 events.push(events::Event::BroadcastChannelUpdate {
1493                                         msg: update
1494                                 });
1495                         }
1496                 }
1497                 Ok(res.0)
1498         }
1499
1500         fn handle_update_add_htlc(&self, their_node_id: &PublicKey, msg: &msgs::UpdateAddHTLC) -> Result<(), msgs::HandleError> {
1501                 //TODO: BOLT 4 points out a specific attack where a peer may re-send an onion packet and
1502                 //determine the state of the payment based on our response/if we forward anything/the time
1503                 //we take to respond. We should take care to avoid allowing such an attack.
1504                 //
1505                 //TODO: There exists a further attack where a node may garble the onion data, forward it to
1506                 //us repeatedly garbled in different ways, and compare our error messages, which are
1507                 //encrypted with the same key. Its not immediately obvious how to usefully exploit that,
1508                 //but we should prevent it anyway.
1509
1510                 let shared_secret = SharedSecret::new(&self.secp_ctx, &msg.onion_routing_packet.public_key, &self.our_network_key);
1511                 let (rho, mu) = ChannelManager::gen_rho_mu_from_shared_secret(&shared_secret);
1512
1513                 macro_rules! get_onion_hash {
1514                         () => {
1515                                 {
1516                                         let mut sha = Sha256::new();
1517                                         sha.input(&msg.onion_routing_packet.hop_data);
1518                                         let mut onion_hash = [0; 32];
1519                                         sha.result(&mut onion_hash);
1520                                         onion_hash
1521                                 }
1522                         }
1523                 }
1524
1525                 macro_rules! return_err {
1526                         ($msg: expr, $err_code: expr, $data: expr) => {
1527                                 return Err(msgs::HandleError {
1528                                         err: $msg,
1529                                         action: Some(msgs::ErrorAction::UpdateFailHTLC {
1530                                                 msg: msgs::UpdateFailHTLC {
1531                                                         channel_id: msg.channel_id,
1532                                                         htlc_id: msg.htlc_id,
1533                                                         reason: ChannelManager::build_first_hop_failure_packet(&shared_secret, $err_code, $data),
1534                                                 }
1535                                         }),
1536                                 });
1537                         }
1538                 }
1539
1540                 if msg.onion_routing_packet.version != 0 {
1541                         //TODO: Spec doesn't indicate if we should only hash hop_data here (and in other
1542                         //sha256_of_onion error data packets), or the entire onion_routing_packet. Either way,
1543                         //the hash doesn't really serve any purpuse - in the case of hashing all data, the
1544                         //receiving node would have to brute force to figure out which version was put in the
1545                         //packet by the node that send us the message, in the case of hashing the hop_data, the
1546                         //node knows the HMAC matched, so they already know what is there...
1547                         return_err!("Unknown onion packet version", 0x8000 | 0x4000 | 4, &get_onion_hash!());
1548                 }
1549
1550                 let mut hmac = Hmac::new(Sha256::new(), &mu);
1551                 hmac.input(&msg.onion_routing_packet.hop_data);
1552                 hmac.input(&msg.payment_hash);
1553                 if hmac.result() != MacResult::new(&msg.onion_routing_packet.hmac) {
1554                         return_err!("HMAC Check failed", 0x8000 | 0x4000 | 5, &get_onion_hash!());
1555                 }
1556
1557                 let mut chacha = ChaCha20::new(&rho, &[0u8; 8]);
1558                 let next_hop_data = {
1559                         let mut decoded = [0; 65];
1560                         chacha.process(&msg.onion_routing_packet.hop_data[0..65], &mut decoded);
1561                         match msgs::OnionHopData::decode(&decoded[..]) {
1562                                 Err(err) => {
1563                                         let error_code = match err {
1564                                                 msgs::DecodeError::UnknownRealmByte => 0x4000 | 1,
1565                                                 _ => 0x2000 | 2, // Should never happen
1566                                         };
1567                                         return_err!("Unable to decode our hop data", error_code, &[0;0]);
1568                                 },
1569                                 Ok(msg) => msg
1570                         }
1571                 };
1572
1573                 //TODO: Check that msg.cltv_expiry is within acceptable bounds!
1574
1575                 let mut pending_forward_info = if next_hop_data.hmac == [0; 32] {
1576                                 // OUR PAYMENT!
1577                                 if next_hop_data.data.amt_to_forward != msg.amount_msat {
1578                                         return_err!("Upstream node sent less than we were supposed to receive in payment", 19, &byte_utils::be64_to_array(msg.amount_msat));
1579                                 }
1580                                 if next_hop_data.data.outgoing_cltv_value != msg.cltv_expiry {
1581                                         return_err!("Upstream node set CLTV to the wrong value", 18, &byte_utils::be32_to_array(msg.cltv_expiry));
1582                                 }
1583
1584                                 // Note that we could obviously respond immediately with an update_fulfill_htlc
1585                                 // message, however that would leak that we are the recipient of this payment, so
1586                                 // instead we stay symmetric with the forwarding case, only responding (after a
1587                                 // delay) once they've send us a commitment_signed!
1588
1589                                 PendingForwardHTLCInfo {
1590                                         onion_packet: None,
1591                                         payment_hash: msg.payment_hash.clone(),
1592                                         short_channel_id: 0,
1593                                         prev_short_channel_id: 0,
1594                                         amt_to_forward: next_hop_data.data.amt_to_forward,
1595                                         outgoing_cltv_value: next_hop_data.data.outgoing_cltv_value,
1596                                 }
1597                         } else {
1598                                 let mut new_packet_data = [0; 20*65];
1599                                 chacha.process(&msg.onion_routing_packet.hop_data[65..], &mut new_packet_data[0..19*65]);
1600                                 chacha.process(&ChannelManager::ZERO[0..65], &mut new_packet_data[19*65..]);
1601
1602                                 let mut new_pubkey = msg.onion_routing_packet.public_key.clone();
1603
1604                                 let blinding_factor = {
1605                                         let mut sha = Sha256::new();
1606                                         sha.input(&new_pubkey.serialize()[..]);
1607                                         sha.input(&shared_secret[..]);
1608                                         let mut res = [0u8; 32];
1609                                         sha.result(&mut res);
1610                                         match SecretKey::from_slice(&self.secp_ctx, &res) {
1611                                                 Err(_) => {
1612                                                         // Return temporary node failure as its technically our issue, not the
1613                                                         // channel's issue.
1614                                                         return_err!("Blinding factor is an invalid private key", 0x2000 | 2, &[0;0]);
1615                                                 },
1616                                                 Ok(key) => key
1617                                         }
1618                                 };
1619
1620                                 match new_pubkey.mul_assign(&self.secp_ctx, &blinding_factor) {
1621                                         Err(_) => {
1622                                                 // Return temporary node failure as its technically our issue, not the
1623                                                 // channel's issue.
1624                                                 return_err!("New blinding factor is an invalid private key", 0x2000 | 2, &[0;0]);
1625                                         },
1626                                         Ok(_) => {}
1627                                 };
1628
1629                                 let outgoing_packet = msgs::OnionPacket {
1630                                         version: 0,
1631                                         public_key: new_pubkey,
1632                                         hop_data: new_packet_data,
1633                                         hmac: next_hop_data.hmac.clone(),
1634                                 };
1635
1636                                 PendingForwardHTLCInfo {
1637                                         onion_packet: Some(outgoing_packet),
1638                                         payment_hash: msg.payment_hash.clone(),
1639                                         short_channel_id: next_hop_data.data.short_channel_id,
1640                                         prev_short_channel_id: 0,
1641                                         amt_to_forward: next_hop_data.data.amt_to_forward,
1642                                         outgoing_cltv_value: next_hop_data.data.outgoing_cltv_value,
1643                                 }
1644                         };
1645
1646                 let mut channel_state_lock = self.channel_state.lock().unwrap();
1647                 let channel_state = channel_state_lock.borrow_parts();
1648
1649                 if pending_forward_info.onion_packet.is_some() { // If short_channel_id is 0 here, we'll reject them in the body here
1650                         let forwarding_id = match channel_state.short_to_id.get(&pending_forward_info.short_channel_id) {
1651                                 None => {
1652                                         return_err!("Don't have available channel for forwarding as requested.", 0x4000 | 10, &[0;0]);
1653                                 },
1654                                 Some(id) => id.clone(),
1655                         };
1656                         let chan = channel_state.by_id.get_mut(&forwarding_id).unwrap();
1657                         let fee = chan.get_our_fee_base_msat(&*self.fee_estimator) + (pending_forward_info.amt_to_forward * self.fee_proportional_millionths as u64 / 1000000) as u32;
1658                         if msg.amount_msat < fee as u64 || (msg.amount_msat - fee as u64) < pending_forward_info.amt_to_forward {
1659                                 log_debug!(self, "HTLC {} incorrect amount: in {} out {} fee required {}", msg.htlc_id, msg.amount_msat, pending_forward_info.amt_to_forward, fee);
1660                                 //TODO: send back "channel_update" with new fee parameters in onion failure packet
1661                                 return_err!("Prior hop has deviated from specified fees parameters or origin node has obsolete ones", 0x1000 | 12, &[0;0]);
1662                         }
1663                         if (msg.cltv_expiry as u64) < pending_forward_info.outgoing_cltv_value as u64 + CLTV_EXPIRY_DELTA as u64 {
1664                                 log_debug!(self, "HTLC {} incorrect CLTV: in {} out {} delta required {}", msg.htlc_id, msg.cltv_expiry, pending_forward_info.outgoing_cltv_value, CLTV_EXPIRY_DELTA);
1665                                 return_err!("Forwarding node has tampered with the intended HTLC values or origin node has an obsolete cltv_expiry_delta", 0x1000 | 13, &[0;0]);
1666                         }
1667
1668                         if !chan.is_live() {
1669                                 let chan_update = self.get_channel_update(chan).unwrap();
1670                                 return_err!("Forwarding channel is not in a ready state.", 0x1000 | 7, &chan_update.encode_with_len()[..]);
1671                         }
1672                 }
1673
1674                 let claimable_htlcs_entry = channel_state.claimable_htlcs.entry(msg.payment_hash.clone());
1675
1676                 // We dont correctly handle payments that route through us twice on their way to their
1677                 // destination. That's OK since those nodes are probably busted or trying to do network
1678                 // mapping through repeated loops. In either case, we want them to stop talking to us, so
1679                 // we send permanent_node_failure.
1680                 if let &hash_map::Entry::Occupied(ref e) = &claimable_htlcs_entry {
1681                         let mut acceptable_cycle = false;
1682                         if let &PendingOutboundHTLC::OutboundRoute { .. } = e.get() {
1683                                 acceptable_cycle = pending_forward_info.short_channel_id == 0;
1684                         }
1685                         if !acceptable_cycle {
1686                                 return_err!("Payment looped through us twice", 0x4000 | 0x2000 | 2, &[0;0]);
1687                         }
1688                 }
1689
1690                 let (source_short_channel_id, res) = match channel_state.by_id.get_mut(&msg.channel_id) {
1691                         Some(chan) => {
1692                                 if chan.get_their_node_id() != *their_node_id {
1693                                         return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1694                                 }
1695                                 if !chan.is_usable() {
1696                                         return Err(HandleError{err: "Channel not yet available for receiving HTLCs", action: None});
1697                                 }
1698                                 let short_channel_id = chan.get_short_channel_id().unwrap();
1699                                 pending_forward_info.prev_short_channel_id = short_channel_id;
1700                                 (short_channel_id, chan.update_add_htlc(&msg, pending_forward_info)?)
1701                         },
1702                         None => return Err(HandleError{err: "Failed to find corresponding channel", action: None}),
1703                 };
1704
1705                 match claimable_htlcs_entry {
1706                         hash_map::Entry::Occupied(mut e) => {
1707                                 let outbound_route = e.get_mut();
1708                                 let (route, session_priv) = match outbound_route {
1709                                         &mut PendingOutboundHTLC::OutboundRoute { ref route, ref session_priv } => {
1710                                                 (route.clone(), session_priv.clone())
1711                                         },
1712                                         _ => unreachable!(),
1713                                 };
1714                                 *outbound_route = PendingOutboundHTLC::CycledRoute {
1715                                         source_short_channel_id,
1716                                         incoming_packet_shared_secret: shared_secret,
1717                                         route,
1718                                         session_priv,
1719                                 };
1720                         },
1721                         hash_map::Entry::Vacant(e) => {
1722                                 e.insert(PendingOutboundHTLC::IntermediaryHopData {
1723                                         source_short_channel_id,
1724                                         incoming_packet_shared_secret: shared_secret,
1725                                 });
1726                         }
1727                 }
1728
1729                 Ok(res)
1730         }
1731
1732         fn handle_update_fulfill_htlc(&self, their_node_id: &PublicKey, msg: &msgs::UpdateFulfillHTLC) -> Result<(), HandleError> {
1733                 //TODO: Delay the claimed_funds relaying just like we do outbound relay!
1734                 // Claim funds first, cause we don't really care if the channel we received the message on
1735                 // is broken, we may have enough info to get our own money!
1736                 self.claim_funds_internal(msg.payment_preimage.clone(), false);
1737
1738                 let mut channel_state = self.channel_state.lock().unwrap();
1739                 match channel_state.by_id.get_mut(&msg.channel_id) {
1740                         Some(chan) => {
1741                                 if chan.get_their_node_id() != *their_node_id {
1742                                         return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1743                                 }
1744                                 chan.update_fulfill_htlc(&msg)
1745                         },
1746                         None => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1747                 }
1748         }
1749
1750         fn handle_update_fail_htlc(&self, their_node_id: &PublicKey, msg: &msgs::UpdateFailHTLC) -> Result<Option<msgs::HTLCFailChannelUpdate>, HandleError> {
1751                 let mut channel_state = self.channel_state.lock().unwrap();
1752                 let payment_hash = match channel_state.by_id.get_mut(&msg.channel_id) {
1753                         Some(chan) => {
1754                                 if chan.get_their_node_id() != *their_node_id {
1755                                         return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1756                                 }
1757                                 chan.update_fail_htlc(&msg, HTLCFailReason::ErrorPacket { err: msg.reason.clone() })
1758                         },
1759                         None => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1760                 }?;
1761
1762                 if let Some(pending_htlc) = channel_state.claimable_htlcs.get(&payment_hash) {
1763                         match pending_htlc {
1764                                 &PendingOutboundHTLC::OutboundRoute { ref route, ref session_priv } => {
1765                                         // Handle packed channel/node updates for passing back for the route handler
1766                                         let mut packet_decrypted = msg.reason.data.clone();
1767                                         let mut res = None;
1768                                         Self::construct_onion_keys_callback(&self.secp_ctx, &route, &session_priv, |shared_secret, _, _, route_hop| {
1769                                                 if res.is_some() { return; }
1770
1771                                                 let ammag = ChannelManager::gen_ammag_from_shared_secret(&shared_secret);
1772
1773                                                 let mut decryption_tmp = Vec::with_capacity(packet_decrypted.len());
1774                                                 decryption_tmp.resize(packet_decrypted.len(), 0);
1775                                                 let mut chacha = ChaCha20::new(&ammag, &[0u8; 8]);
1776                                                 chacha.process(&packet_decrypted, &mut decryption_tmp[..]);
1777                                                 packet_decrypted = decryption_tmp;
1778
1779                                                 if let Ok(err_packet) = msgs::DecodedOnionErrorPacket::decode(&packet_decrypted) {
1780                                                         if err_packet.failuremsg.len() >= 2 {
1781                                                                 let um = ChannelManager::gen_um_from_shared_secret(&shared_secret);
1782
1783                                                                 let mut hmac = Hmac::new(Sha256::new(), &um);
1784                                                                 hmac.input(&err_packet.encode()[32..]);
1785                                                                 let mut calc_tag = [0u8; 32];
1786                                                                 hmac.raw_result(&mut calc_tag);
1787                                                                 if crypto::util::fixed_time_eq(&calc_tag, &err_packet.hmac) {
1788                                                                         const UNKNOWN_CHAN: u16 = 0x4000|10;
1789                                                                         const TEMP_CHAN_FAILURE: u16 = 0x4000|7;
1790                                                                         match byte_utils::slice_to_be16(&err_packet.failuremsg[0..2]) {
1791                                                                                 TEMP_CHAN_FAILURE => {
1792                                                                                         if err_packet.failuremsg.len() >= 4 {
1793                                                                                                 let update_len = byte_utils::slice_to_be16(&err_packet.failuremsg[2..4]) as usize;
1794                                                                                                 if err_packet.failuremsg.len() >= 4 + update_len {
1795                                                                                                         if let Ok(chan_update) = msgs::ChannelUpdate::decode(&err_packet.failuremsg[4..4 + update_len]) {
1796                                                                                                                 res = Some(msgs::HTLCFailChannelUpdate::ChannelUpdateMessage {
1797                                                                                                                         msg: chan_update,
1798                                                                                                                 });
1799                                                                                                         }
1800                                                                                                 }
1801                                                                                         }
1802                                                                                 },
1803                                                                                 UNKNOWN_CHAN => {
1804                                                                                         // No such next-hop. We know this came from the
1805                                                                                         // current node as the HMAC validated.
1806                                                                                         res = Some(msgs::HTLCFailChannelUpdate::ChannelClosed {
1807                                                                                                 short_channel_id: route_hop.short_channel_id
1808                                                                                         });
1809                                                                                 },
1810                                                                                 _ => {}, //TODO: Enumerate all of these!
1811                                                                         }
1812                                                                 }
1813                                                         }
1814                                                 }
1815                                         }).unwrap();
1816                                         Ok(res)
1817                                 },
1818                                 _ => { Ok(None) },
1819                         }
1820                 } else {
1821                         Ok(None)
1822                 }
1823         }
1824
1825         fn handle_update_fail_malformed_htlc(&self, their_node_id: &PublicKey, msg: &msgs::UpdateFailMalformedHTLC) -> Result<(), HandleError> {
1826                 let mut channel_state = self.channel_state.lock().unwrap();
1827                 match channel_state.by_id.get_mut(&msg.channel_id) {
1828                         Some(chan) => {
1829                                 if chan.get_their_node_id() != *their_node_id {
1830                                         return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1831                                 }
1832                                 chan.update_fail_malformed_htlc(&msg, HTLCFailReason::Reason { failure_code: msg.failure_code, data: Vec::new() })
1833                         },
1834                         None => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1835                 }
1836         }
1837
1838         fn handle_commitment_signed(&self, their_node_id: &PublicKey, msg: &msgs::CommitmentSigned) -> Result<(msgs::RevokeAndACK, Option<msgs::CommitmentSigned>), HandleError> {
1839                 let (revoke_and_ack, commitment_signed, chan_monitor) = {
1840                         let mut channel_state = self.channel_state.lock().unwrap();
1841                         match channel_state.by_id.get_mut(&msg.channel_id) {
1842                                 Some(chan) => {
1843                                         if chan.get_their_node_id() != *their_node_id {
1844                                                 return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1845                                         }
1846                                         chan.commitment_signed(&msg)?
1847                                 },
1848                                 None => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1849                         }
1850                 };
1851                 if let Err(_e) = self.monitor.add_update_monitor(chan_monitor.get_funding_txo().unwrap(), chan_monitor) {
1852                         unimplemented!();
1853                 }
1854
1855                 Ok((revoke_and_ack, commitment_signed))
1856         }
1857
1858         fn handle_revoke_and_ack(&self, their_node_id: &PublicKey, msg: &msgs::RevokeAndACK) -> Result<Option<msgs::CommitmentUpdate>, HandleError> {
1859                 let (res, mut pending_forwards, mut pending_failures, chan_monitor) = {
1860                         let mut channel_state = self.channel_state.lock().unwrap();
1861                         match channel_state.by_id.get_mut(&msg.channel_id) {
1862                                 Some(chan) => {
1863                                         if chan.get_their_node_id() != *their_node_id {
1864                                                 return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1865                                         }
1866                                         chan.revoke_and_ack(&msg)?
1867                                 },
1868                                 None => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1869                         }
1870                 };
1871                 if let Err(_e) = self.monitor.add_update_monitor(chan_monitor.get_funding_txo().unwrap(), chan_monitor) {
1872                         unimplemented!();
1873                 }
1874                 for failure in pending_failures.drain(..) {
1875                         self.fail_htlc_backwards_internal(self.channel_state.lock().unwrap(), &failure.0, failure.1);
1876                 }
1877
1878                 let mut forward_event = None;
1879                 if !pending_forwards.is_empty() {
1880                         let mut channel_state = self.channel_state.lock().unwrap();
1881                         if channel_state.forward_htlcs.is_empty() {
1882                                 forward_event = Some(Instant::now() + Duration::from_millis(((rng::rand_f32() * 4.0 + 1.0) * MIN_HTLC_RELAY_HOLDING_CELL_MILLIS as f32) as u64));
1883                                 channel_state.next_forward = forward_event.unwrap();
1884                         }
1885                         for forward_info in pending_forwards.drain(..) {
1886                                 match channel_state.forward_htlcs.entry(forward_info.short_channel_id) {
1887                                         hash_map::Entry::Occupied(mut entry) => {
1888                                                 entry.get_mut().push(forward_info);
1889                                         },
1890                                         hash_map::Entry::Vacant(entry) => {
1891                                                 entry.insert(vec!(forward_info));
1892                                         }
1893                                 }
1894                         }
1895                 }
1896                 match forward_event {
1897                         Some(time) => {
1898                                 let mut pending_events = self.pending_events.lock().unwrap();
1899                                 pending_events.push(events::Event::PendingHTLCsForwardable {
1900                                         time_forwardable: time
1901                                 });
1902                         }
1903                         None => {},
1904                 }
1905
1906                 Ok(res)
1907         }
1908
1909         fn handle_update_fee(&self, their_node_id: &PublicKey, msg: &msgs::UpdateFee) -> Result<(), HandleError> {
1910                 let mut channel_state = self.channel_state.lock().unwrap();
1911                 match channel_state.by_id.get_mut(&msg.channel_id) {
1912                         Some(chan) => {
1913                                 if chan.get_their_node_id() != *their_node_id {
1914                                         return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1915                                 }
1916                                 chan.update_fee(&*self.fee_estimator, &msg)
1917                         },
1918                         None => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1919                 }
1920         }
1921
1922         fn handle_announcement_signatures(&self, their_node_id: &PublicKey, msg: &msgs::AnnouncementSignatures) -> Result<(), HandleError> {
1923                 let (chan_announcement, chan_update) = {
1924                         let mut channel_state = self.channel_state.lock().unwrap();
1925                         match channel_state.by_id.get_mut(&msg.channel_id) {
1926                                 Some(chan) => {
1927                                         if chan.get_their_node_id() != *their_node_id {
1928                                                 return Err(HandleError{err: "Got a message for a channel from the wrong node!", action: None})
1929                                         }
1930                                         if !chan.is_usable() {
1931                                                 return Err(HandleError{err: "Got an announcement_signatures before we were ready for it", action: None });
1932                                         }
1933
1934                                         let our_node_id = self.get_our_node_id();
1935                                         let (announcement, our_bitcoin_sig) = chan.get_channel_announcement(our_node_id.clone(), self.genesis_hash.clone())?;
1936
1937                                         let were_node_one = announcement.node_id_1 == our_node_id;
1938                                         let msghash = Message::from_slice(&Sha256dHash::from_data(&announcement.encode()[..])[..]).unwrap();
1939                                         secp_call!(self.secp_ctx.verify(&msghash, &msg.node_signature, if were_node_one { &announcement.node_id_2 } else { &announcement.node_id_1 }));
1940                                         secp_call!(self.secp_ctx.verify(&msghash, &msg.bitcoin_signature, if were_node_one { &announcement.bitcoin_key_2 } else { &announcement.bitcoin_key_1 }));
1941
1942                                         let our_node_sig = secp_call!(self.secp_ctx.sign(&msghash, &self.our_network_key));
1943
1944                                         (msgs::ChannelAnnouncement {
1945                                                 node_signature_1: if were_node_one { our_node_sig } else { msg.node_signature },
1946                                                 node_signature_2: if were_node_one { msg.node_signature } else { our_node_sig },
1947                                                 bitcoin_signature_1: if were_node_one { our_bitcoin_sig } else { msg.bitcoin_signature },
1948                                                 bitcoin_signature_2: if were_node_one { msg.bitcoin_signature } else { our_bitcoin_sig },
1949                                                 contents: announcement,
1950                                         }, self.get_channel_update(chan).unwrap()) // can only fail if we're not in a ready state
1951                                 },
1952                                 None => return Err(HandleError{err: "Failed to find corresponding channel", action: None})
1953                         }
1954                 };
1955                 let mut pending_events = self.pending_events.lock().unwrap();
1956                 pending_events.push(events::Event::BroadcastChannelAnnouncement { msg: chan_announcement, update_msg: chan_update });
1957                 Ok(())
1958         }
1959
1960         fn peer_disconnected(&self, their_node_id: &PublicKey, no_connection_possible: bool) {
1961                 let mut new_events = Vec::new();
1962                 let mut failed_channels = Vec::new();
1963                 {
1964                         let mut channel_state_lock = self.channel_state.lock().unwrap();
1965                         let channel_state = channel_state_lock.borrow_parts();
1966                         let short_to_id = channel_state.short_to_id;
1967                         if no_connection_possible {
1968                                 channel_state.by_id.retain(|_, chan| {
1969                                         if chan.get_their_node_id() == *their_node_id {
1970                                                 if let Some(short_id) = chan.get_short_channel_id() {
1971                                                         short_to_id.remove(&short_id);
1972                                                 }
1973                                                 failed_channels.push(chan.force_shutdown());
1974                                                 if let Ok(update) = self.get_channel_update(&chan) {
1975                                                         new_events.push(events::Event::BroadcastChannelUpdate {
1976                                                                 msg: update
1977                                                         });
1978                                                 }
1979                                                 false
1980                                         } else {
1981                                                 true
1982                                         }
1983                                 });
1984                         } else {
1985                                 for chan in channel_state.by_id {
1986                                         if chan.1.get_their_node_id() == *their_node_id {
1987                                                 //TODO: mark channel disabled (and maybe announce such after a timeout). Also
1988                                                 //fail and wipe any uncommitted outbound HTLCs as those are considered after
1989                                                 //reconnect.
1990                                         }
1991                                 }
1992                         }
1993                 }
1994                 for failure in failed_channels.drain(..) {
1995                         self.finish_force_close_channel(failure);
1996                 }
1997                 if !new_events.is_empty() {
1998                         let mut pending_events = self.pending_events.lock().unwrap();
1999                         for event in new_events.drain(..) {
2000                                 pending_events.push(event);
2001                         }
2002                 }
2003         }
2004 }
2005
2006 #[cfg(test)]
2007 mod tests {
2008         use chain::chaininterface;
2009         use chain::transaction::OutPoint;
2010         use chain::chaininterface::ChainListener;
2011         use ln::channelmanager::{ChannelManager,OnionKeys};
2012         use ln::router::{Route, RouteHop, Router};
2013         use ln::msgs;
2014         use ln::msgs::{MsgEncodable,ChannelMessageHandler,RoutingMessageHandler};
2015         use util::test_utils;
2016         use util::events::{Event, EventsProvider};
2017         use util::logger::Logger;
2018
2019         use bitcoin::util::hash::Sha256dHash;
2020         use bitcoin::blockdata::block::{Block, BlockHeader};
2021         use bitcoin::blockdata::transaction::{Transaction, TxOut};
2022         use bitcoin::network::constants::Network;
2023         use bitcoin::network::serialize::serialize;
2024         use bitcoin::network::serialize::BitcoinHash;
2025
2026         use hex;
2027
2028         use secp256k1::Secp256k1;
2029         use secp256k1::key::{PublicKey,SecretKey};
2030
2031         use crypto::sha2::Sha256;
2032         use crypto::digest::Digest;
2033
2034         use rand::{thread_rng,Rng};
2035
2036         use std::collections::HashMap;
2037         use std::default::Default;
2038         use std::sync::{Arc, Mutex};
2039         use std::time::Instant;
2040         use std::mem;
2041
2042         fn build_test_onion_keys() -> Vec<OnionKeys> {
2043                 // Keys from BOLT 4, used in both test vector tests
2044                 let secp_ctx = Secp256k1::new();
2045
2046                 let route = Route {
2047                         hops: vec!(
2048                                         RouteHop {
2049                                                 pubkey: PublicKey::from_slice(&secp_ctx, &hex::decode("02eec7245d6b7d2ccb30380bfbe2a3648cd7a942653f5aa340edcea1f283686619").unwrap()[..]).unwrap(),
2050                                                 short_channel_id: 0, fee_msat: 0, cltv_expiry_delta: 0 // Test vectors are garbage and not generateble from a RouteHop, we fill in payloads manually
2051                                         },
2052                                         RouteHop {
2053                                                 pubkey: PublicKey::from_slice(&secp_ctx, &hex::decode("0324653eac434488002cc06bbfb7f10fe18991e35f9fe4302dbea6d2353dc0ab1c").unwrap()[..]).unwrap(),
2054                                                 short_channel_id: 0, fee_msat: 0, cltv_expiry_delta: 0 // Test vectors are garbage and not generateble from a RouteHop, we fill in payloads manually
2055                                         },
2056                                         RouteHop {
2057                                                 pubkey: PublicKey::from_slice(&secp_ctx, &hex::decode("027f31ebc5462c1fdce1b737ecff52d37d75dea43ce11c74d25aa297165faa2007").unwrap()[..]).unwrap(),
2058                                                 short_channel_id: 0, fee_msat: 0, cltv_expiry_delta: 0 // Test vectors are garbage and not generateble from a RouteHop, we fill in payloads manually
2059                                         },
2060                                         RouteHop {
2061                                                 pubkey: PublicKey::from_slice(&secp_ctx, &hex::decode("032c0b7cf95324a07d05398b240174dc0c2be444d96b159aa6c7f7b1e668680991").unwrap()[..]).unwrap(),
2062                                                 short_channel_id: 0, fee_msat: 0, cltv_expiry_delta: 0 // Test vectors are garbage and not generateble from a RouteHop, we fill in payloads manually
2063                                         },
2064                                         RouteHop {
2065                                                 pubkey: PublicKey::from_slice(&secp_ctx, &hex::decode("02edabbd16b41c8371b92ef2f04c1185b4f03b6dcd52ba9b78d9d7c89c8f221145").unwrap()[..]).unwrap(),
2066                                                 short_channel_id: 0, fee_msat: 0, cltv_expiry_delta: 0 // Test vectors are garbage and not generateble from a RouteHop, we fill in payloads manually
2067                                         },
2068                         ),
2069                 };
2070
2071                 let session_priv = SecretKey::from_slice(&secp_ctx, &hex::decode("4141414141414141414141414141414141414141414141414141414141414141").unwrap()[..]).unwrap();
2072
2073                 let onion_keys = ChannelManager::construct_onion_keys(&secp_ctx, &route, &session_priv).unwrap();
2074                 assert_eq!(onion_keys.len(), route.hops.len());
2075                 onion_keys
2076         }
2077
2078         #[test]
2079         fn onion_vectors() {
2080                 // Packet creation test vectors from BOLT 4
2081                 let onion_keys = build_test_onion_keys();
2082
2083                 assert_eq!(onion_keys[0].shared_secret[..], hex::decode("53eb63ea8a3fec3b3cd433b85cd62a4b145e1dda09391b348c4e1cd36a03ea66").unwrap()[..]);
2084                 assert_eq!(onion_keys[0].blinding_factor[..], hex::decode("2ec2e5da605776054187180343287683aa6a51b4b1c04d6dd49c45d8cffb3c36").unwrap()[..]);
2085                 assert_eq!(onion_keys[0].ephemeral_pubkey.serialize()[..], hex::decode("02eec7245d6b7d2ccb30380bfbe2a3648cd7a942653f5aa340edcea1f283686619").unwrap()[..]);
2086                 assert_eq!(onion_keys[0].rho, hex::decode("ce496ec94def95aadd4bec15cdb41a740c9f2b62347c4917325fcc6fb0453986").unwrap()[..]);
2087                 assert_eq!(onion_keys[0].mu, hex::decode("b57061dc6d0a2b9f261ac410c8b26d64ac5506cbba30267a649c28c179400eba").unwrap()[..]);
2088
2089                 assert_eq!(onion_keys[1].shared_secret[..], hex::decode("a6519e98832a0b179f62123b3567c106db99ee37bef036e783263602f3488fae").unwrap()[..]);
2090                 assert_eq!(onion_keys[1].blinding_factor[..], hex::decode("bf66c28bc22e598cfd574a1931a2bafbca09163df2261e6d0056b2610dab938f").unwrap()[..]);
2091                 assert_eq!(onion_keys[1].ephemeral_pubkey.serialize()[..], hex::decode("028f9438bfbf7feac2e108d677e3a82da596be706cc1cf342b75c7b7e22bf4e6e2").unwrap()[..]);
2092                 assert_eq!(onion_keys[1].rho, hex::decode("450ffcabc6449094918ebe13d4f03e433d20a3d28a768203337bc40b6e4b2c59").unwrap()[..]);
2093                 assert_eq!(onion_keys[1].mu, hex::decode("05ed2b4a3fb023c2ff5dd6ed4b9b6ea7383f5cfe9d59c11d121ec2c81ca2eea9").unwrap()[..]);
2094
2095                 assert_eq!(onion_keys[2].shared_secret[..], hex::decode("3a6b412548762f0dbccce5c7ae7bb8147d1caf9b5471c34120b30bc9c04891cc").unwrap()[..]);
2096                 assert_eq!(onion_keys[2].blinding_factor[..], hex::decode("a1f2dadd184eb1627049673f18c6325814384facdee5bfd935d9cb031a1698a5").unwrap()[..]);
2097                 assert_eq!(onion_keys[2].ephemeral_pubkey.serialize()[..], hex::decode("03bfd8225241ea71cd0843db7709f4c222f62ff2d4516fd38b39914ab6b83e0da0").unwrap()[..]);
2098                 assert_eq!(onion_keys[2].rho, hex::decode("11bf5c4f960239cb37833936aa3d02cea82c0f39fd35f566109c41f9eac8deea").unwrap()[..]);
2099                 assert_eq!(onion_keys[2].mu, hex::decode("caafe2820fa00eb2eeb78695ae452eba38f5a53ed6d53518c5c6edf76f3f5b78").unwrap()[..]);
2100
2101                 assert_eq!(onion_keys[3].shared_secret[..], hex::decode("21e13c2d7cfe7e18836df50872466117a295783ab8aab0e7ecc8c725503ad02d").unwrap()[..]);
2102                 assert_eq!(onion_keys[3].blinding_factor[..], hex::decode("7cfe0b699f35525029ae0fa437c69d0f20f7ed4e3916133f9cacbb13c82ff262").unwrap()[..]);
2103                 assert_eq!(onion_keys[3].ephemeral_pubkey.serialize()[..], hex::decode("031dde6926381289671300239ea8e57ffaf9bebd05b9a5b95beaf07af05cd43595").unwrap()[..]);
2104                 assert_eq!(onion_keys[3].rho, hex::decode("cbe784ab745c13ff5cffc2fbe3e84424aa0fd669b8ead4ee562901a4a4e89e9e").unwrap()[..]);
2105                 assert_eq!(onion_keys[3].mu, hex::decode("5052aa1b3d9f0655a0932e50d42f0c9ba0705142c25d225515c45f47c0036ee9").unwrap()[..]);
2106
2107                 assert_eq!(onion_keys[4].shared_secret[..], hex::decode("b5756b9b542727dbafc6765a49488b023a725d631af688fc031217e90770c328").unwrap()[..]);
2108                 assert_eq!(onion_keys[4].blinding_factor[..], hex::decode("c96e00dddaf57e7edcd4fb5954be5b65b09f17cb6d20651b4e90315be5779205").unwrap()[..]);
2109                 assert_eq!(onion_keys[4].ephemeral_pubkey.serialize()[..], hex::decode("03a214ebd875aab6ddfd77f22c5e7311d7f77f17a169e599f157bbcdae8bf071f4").unwrap()[..]);
2110                 assert_eq!(onion_keys[4].rho, hex::decode("034e18b8cc718e8af6339106e706c52d8df89e2b1f7e9142d996acf88df8799b").unwrap()[..]);
2111                 assert_eq!(onion_keys[4].mu, hex::decode("8e45e5c61c2b24cb6382444db6698727afb063adecd72aada233d4bf273d975a").unwrap()[..]);
2112
2113                 // Test vectors below are flat-out wrong: they claim to set outgoing_cltv_value to non-0 :/
2114                 let payloads = vec!(
2115                         msgs::OnionHopData {
2116                                 realm: 0,
2117                                 data: msgs::OnionRealm0HopData {
2118                                         short_channel_id: 0,
2119                                         amt_to_forward: 0,
2120                                         outgoing_cltv_value: 0,
2121                                 },
2122                                 hmac: [0; 32],
2123                         },
2124                         msgs::OnionHopData {
2125                                 realm: 0,
2126                                 data: msgs::OnionRealm0HopData {
2127                                         short_channel_id: 0x0101010101010101,
2128                                         amt_to_forward: 0x0100000001,
2129                                         outgoing_cltv_value: 0,
2130                                 },
2131                                 hmac: [0; 32],
2132                         },
2133                         msgs::OnionHopData {
2134                                 realm: 0,
2135                                 data: msgs::OnionRealm0HopData {
2136                                         short_channel_id: 0x0202020202020202,
2137                                         amt_to_forward: 0x0200000002,
2138                                         outgoing_cltv_value: 0,
2139                                 },
2140                                 hmac: [0; 32],
2141                         },
2142                         msgs::OnionHopData {
2143                                 realm: 0,
2144                                 data: msgs::OnionRealm0HopData {
2145                                         short_channel_id: 0x0303030303030303,
2146                                         amt_to_forward: 0x0300000003,
2147                                         outgoing_cltv_value: 0,
2148                                 },
2149                                 hmac: [0; 32],
2150                         },
2151                         msgs::OnionHopData {
2152                                 realm: 0,
2153                                 data: msgs::OnionRealm0HopData {
2154                                         short_channel_id: 0x0404040404040404,
2155                                         amt_to_forward: 0x0400000004,
2156                                         outgoing_cltv_value: 0,
2157                                 },
2158                                 hmac: [0; 32],
2159                         },
2160                 );
2161
2162                 let packet = ChannelManager::construct_onion_packet(payloads, onion_keys, &[0x42; 32]).unwrap();
2163                 // Just check the final packet encoding, as it includes all the per-hop vectors in it
2164                 // anyway...
2165                 assert_eq!(packet.encode(), hex::decode("0002eec7245d6b7d2ccb30380bfbe2a3648cd7a942653f5aa340edcea1f283686619e5f14350c2a76fc232b5e46d421e9615471ab9e0bc887beff8c95fdb878f7b3a716a996c7845c93d90e4ecbb9bde4ece2f69425c99e4bc820e44485455f135edc0d10f7d61ab590531cf08000179a333a347f8b4072f216400406bdf3bf038659793d4a1fd7b246979e3150a0a4cb052c9ec69acf0f48c3d39cd55675fe717cb7d80ce721caad69320c3a469a202f1e468c67eaf7a7cd8226d0fd32f7b48084dca885d56047694762b67021713ca673929c163ec36e04e40ca8e1c6d17569419d3039d9a1ec866abe044a9ad635778b961fc0776dc832b3a451bd5d35072d2269cf9b040f6b7a7dad84fb114ed413b1426cb96ceaf83825665ed5a1d002c1687f92465b49ed4c7f0218ff8c6c7dd7221d589c65b3b9aaa71a41484b122846c7c7b57e02e679ea8469b70e14fe4f70fee4d87b910cf144be6fe48eef24da475c0b0bcc6565ae82cd3f4e3b24c76eaa5616c6111343306ab35c1fe5ca4a77c0e314ed7dba39d6f1e0de791719c241a939cc493bea2bae1c1e932679ea94d29084278513c77b899cc98059d06a27d171b0dbdf6bee13ddc4fc17a0c4d2827d488436b57baa167544138ca2e64a11b43ac8a06cd0c2fba2d4d900ed2d9205305e2d7383cc98dacb078133de5f6fb6bed2ef26ba92cea28aafc3b9948dd9ae5559e8bd6920b8cea462aa445ca6a95e0e7ba52961b181c79e73bd581821df2b10173727a810c92b83b5ba4a0403eb710d2ca10689a35bec6c3a708e9e92f7d78ff3c5d9989574b00c6736f84c199256e76e19e78f0c98a9d580b4a658c84fc8f2096c2fbea8f5f8c59d0fdacb3be2802ef802abbecb3aba4acaac69a0e965abd8981e9896b1f6ef9d60f7a164b371af869fd0e48073742825e9434fc54da837e120266d53302954843538ea7c6c3dbfb4ff3b2fdbe244437f2a153ccf7bdb4c92aa08102d4f3cff2ae5ef86fab4653595e6a5837fa2f3e29f27a9cde5966843fb847a4a61f1e76c281fe8bb2b0a181d096100db5a1a5ce7a910238251a43ca556712eaadea167fb4d7d75825e440f3ecd782036d7574df8bceacb397abefc5f5254d2722215c53ff54af8299aaaad642c6d72a14d27882d9bbd539e1cc7a527526ba89b8c037ad09120e98ab042d3e8652b31ae0e478516bfaf88efca9f3676ffe99d2819dcaeb7610a626695f53117665d267d3f7abebd6bbd6733f645c72c389f03855bdf1e4b8075b516569b118233a0f0971d24b83113c0b096f5216a207ca99a7cddc81c130923fe3d91e7508c9ac5f2e914ff5dccab9e558566fa14efb34ac98d878580814b94b73acbfde9072f30b881f7f0fff42d4045d1ace6322d86a97d164aa84d93a60498065cc7c20e636f5862dc81531a88c60305a2e59a985be327a6902e4bed986dbf4a0b50c217af0ea7fdf9ab37f9ea1a1aaa72f54cf40154ea9b269f1a7c09f9f43245109431a175d50e2db0132337baa0ef97eed0fcf20489da36b79a1172faccc2f7ded7c60e00694282d93359c4682135642bc81f433574aa8ef0c97b4ade7ca372c5ffc23c7eddd839bab4e0f14d6df15c9dbeab176bec8b5701cf054eb3072f6dadc98f88819042bf10c407516ee58bce33fbe3b3d86a54255e577db4598e30a135361528c101683a5fcde7e8ba53f3456254be8f45fe3a56120ae96ea3773631fcb3873aa3abd91bcff00bd38bd43697a2e789e00da6077482e7b1b1a677b5afae4c54e6cbdf7377b694eb7d7a5b913476a5be923322d3de06060fd5e819635232a2cf4f0731da13b8546d1d6d4f8d75b9fce6c2341a71b0ea6f780df54bfdb0dd5cd9855179f602f9172307c7268724c3618e6817abd793adc214a0dc0bc616816632f27ea336fb56dfd").unwrap());
2166         }
2167
2168         #[test]
2169         fn test_failure_packet_onion() {
2170                 // Returning Errors test vectors from BOLT 4
2171
2172                 let onion_keys = build_test_onion_keys();
2173                 let onion_error = ChannelManager::build_failure_packet(&onion_keys[4].shared_secret, 0x2002, &[0; 0]);
2174                 assert_eq!(onion_error.encode(), hex::decode("4c2fc8bc08510334b6833ad9c3e79cd1b52ae59dfe5c2a4b23ead50f09f7ee0b0002200200fe0000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000").unwrap());
2175
2176                 let onion_packet_1 = ChannelManager::encrypt_failure_packet(&onion_keys[4].shared_secret, &onion_error.encode()[..]);
2177                 assert_eq!(onion_packet_1.data, hex::decode("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").unwrap());
2178
2179                 let onion_packet_2 = ChannelManager::encrypt_failure_packet(&onion_keys[3].shared_secret, &onion_packet_1.data[..]);
2180                 assert_eq!(onion_packet_2.data, hex::decode("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").unwrap());
2181
2182                 let onion_packet_3 = ChannelManager::encrypt_failure_packet(&onion_keys[2].shared_secret, &onion_packet_2.data[..]);
2183                 assert_eq!(onion_packet_3.data, hex::decode("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").unwrap());
2184
2185                 let onion_packet_4 = ChannelManager::encrypt_failure_packet(&onion_keys[1].shared_secret, &onion_packet_3.data[..]);
2186                 assert_eq!(onion_packet_4.data, hex::decode("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").unwrap());
2187
2188                 let onion_packet_5 = ChannelManager::encrypt_failure_packet(&onion_keys[0].shared_secret, &onion_packet_4.data[..]);
2189                 assert_eq!(onion_packet_5.data, hex::decode("9c5add3963fc7f6ed7f148623c84134b5647e1306419dbe2174e523fa9e2fbed3a06a19f899145610741c83ad40b7712aefaddec8c6baf7325d92ea4ca4d1df8bce517f7e54554608bf2bd8071a4f52a7a2f7ffbb1413edad81eeea5785aa9d990f2865dc23b4bc3c301a94eec4eabebca66be5cf638f693ec256aec514620cc28ee4a94bd9565bc4d4962b9d3641d4278fb319ed2b84de5b665f307a2db0f7fbb757366067d88c50f7e829138fde4f78d39b5b5802f1b92a8a820865af5cc79f9f30bc3f461c66af95d13e5e1f0381c184572a91dee1c849048a647a1158cf884064deddbf1b0b88dfe2f791428d0ba0f6fb2f04e14081f69165ae66d9297c118f0907705c9c4954a199bae0bb96fad763d690e7daa6cfda59ba7f2c8d11448b604d12d").unwrap());
2190         }
2191
2192         fn confirm_transaction(chain: &chaininterface::ChainWatchInterfaceUtil, tx: &Transaction, chan_id: u32) {
2193                 assert!(chain.does_match_tx(tx));
2194                 let mut header = BlockHeader { version: 0x20000000, prev_blockhash: Default::default(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
2195                 chain.block_connected_checked(&header, 1, &[tx; 1], &[chan_id; 1]);
2196                 for i in 2..100 {
2197                         header = BlockHeader { version: 0x20000000, prev_blockhash: header.bitcoin_hash(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
2198                         chain.block_connected_checked(&header, i, &[tx; 0], &[0; 0]);
2199                 }
2200         }
2201
2202         struct Node {
2203                 feeest: Arc<test_utils::TestFeeEstimator>,
2204                 chain_monitor: Arc<chaininterface::ChainWatchInterfaceUtil>,
2205                 tx_broadcaster: Arc<test_utils::TestBroadcaster>,
2206                 chan_monitor: Arc<test_utils::TestChannelMonitor>,
2207                 node_id: SecretKey,
2208                 node: Arc<ChannelManager>,
2209                 router: Router,
2210         }
2211
2212         static mut CHAN_COUNT: u32 = 0;
2213         fn create_chan_between_nodes(node_a: &Node, node_b: &Node) -> (msgs::ChannelAnnouncement, msgs::ChannelUpdate, msgs::ChannelUpdate, [u8; 32], Transaction) {
2214                 node_a.node.create_channel(node_b.node.get_our_node_id(), 100000, 10001, 42).unwrap();
2215
2216                 let events_1 = node_a.node.get_and_clear_pending_events();
2217                 assert_eq!(events_1.len(), 1);
2218                 let accept_chan = match events_1[0] {
2219                         Event::SendOpenChannel { ref node_id, ref msg } => {
2220                                 assert_eq!(*node_id, node_b.node.get_our_node_id());
2221                                 node_b.node.handle_open_channel(&node_a.node.get_our_node_id(), msg).unwrap()
2222                         },
2223                         _ => panic!("Unexpected event"),
2224                 };
2225
2226                 node_a.node.handle_accept_channel(&node_b.node.get_our_node_id(), &accept_chan).unwrap();
2227
2228                 let chan_id = unsafe { CHAN_COUNT };
2229                 let tx;
2230                 let funding_output;
2231
2232                 let events_2 = node_a.node.get_and_clear_pending_events();
2233                 assert_eq!(events_2.len(), 1);
2234                 match events_2[0] {
2235                         Event::FundingGenerationReady { ref temporary_channel_id, ref channel_value_satoshis, ref output_script, user_channel_id } => {
2236                                 assert_eq!(*channel_value_satoshis, 100000);
2237                                 assert_eq!(user_channel_id, 42);
2238
2239                                 tx = Transaction { version: chan_id as u32, lock_time: 0, input: Vec::new(), output: vec![TxOut {
2240                                         value: *channel_value_satoshis, script_pubkey: output_script.clone(),
2241                                 }]};
2242                                 funding_output = OutPoint::new(Sha256dHash::from_data(&serialize(&tx).unwrap()[..]), 0);
2243
2244                                 node_a.node.funding_transaction_generated(&temporary_channel_id, funding_output);
2245                                 let mut added_monitors = node_a.chan_monitor.added_monitors.lock().unwrap();
2246                                 assert_eq!(added_monitors.len(), 1);
2247                                 assert_eq!(added_monitors[0].0, funding_output);
2248                                 added_monitors.clear();
2249                         },
2250                         _ => panic!("Unexpected event"),
2251                 }
2252
2253                 let events_3 = node_a.node.get_and_clear_pending_events();
2254                 assert_eq!(events_3.len(), 1);
2255                 let funding_signed = match events_3[0] {
2256                         Event::SendFundingCreated { ref node_id, ref msg } => {
2257                                 assert_eq!(*node_id, node_b.node.get_our_node_id());
2258                                 let res = node_b.node.handle_funding_created(&node_a.node.get_our_node_id(), msg).unwrap();
2259                                 let mut added_monitors = node_b.chan_monitor.added_monitors.lock().unwrap();
2260                                 assert_eq!(added_monitors.len(), 1);
2261                                 assert_eq!(added_monitors[0].0, funding_output);
2262                                 added_monitors.clear();
2263                                 res
2264                         },
2265                         _ => panic!("Unexpected event"),
2266                 };
2267
2268                 node_a.node.handle_funding_signed(&node_b.node.get_our_node_id(), &funding_signed).unwrap();
2269                 {
2270                         let mut added_monitors = node_a.chan_monitor.added_monitors.lock().unwrap();
2271                         assert_eq!(added_monitors.len(), 1);
2272                         assert_eq!(added_monitors[0].0, funding_output);
2273                         added_monitors.clear();
2274                 }
2275
2276                 let events_4 = node_a.node.get_and_clear_pending_events();
2277                 assert_eq!(events_4.len(), 1);
2278                 match events_4[0] {
2279                         Event::FundingBroadcastSafe { ref funding_txo, user_channel_id } => {
2280                                 assert_eq!(user_channel_id, 42);
2281                                 assert_eq!(*funding_txo, funding_output);
2282                         },
2283                         _ => panic!("Unexpected event"),
2284                 };
2285
2286                 confirm_transaction(&node_a.chain_monitor, &tx, chan_id);
2287                 let events_5 = node_a.node.get_and_clear_pending_events();
2288                 assert_eq!(events_5.len(), 1);
2289                 match events_5[0] {
2290                         Event::SendFundingLocked { ref node_id, ref msg, ref announcement_sigs } => {
2291                                 assert_eq!(*node_id, node_b.node.get_our_node_id());
2292                                 assert!(announcement_sigs.is_none());
2293                                 node_b.node.handle_funding_locked(&node_a.node.get_our_node_id(), msg).unwrap()
2294                         },
2295                         _ => panic!("Unexpected event"),
2296                 };
2297
2298                 let channel_id;
2299
2300                 confirm_transaction(&node_b.chain_monitor, &tx, chan_id);
2301                 let events_6 = node_b.node.get_and_clear_pending_events();
2302                 assert_eq!(events_6.len(), 1);
2303                 let as_announcement_sigs = match events_6[0] {
2304                         Event::SendFundingLocked { ref node_id, ref msg, ref announcement_sigs } => {
2305                                 assert_eq!(*node_id, node_a.node.get_our_node_id());
2306                                 channel_id = msg.channel_id.clone();
2307                                 let as_announcement_sigs = node_a.node.handle_funding_locked(&node_b.node.get_our_node_id(), msg).unwrap().unwrap();
2308                                 node_a.node.handle_announcement_signatures(&node_b.node.get_our_node_id(), &(*announcement_sigs).clone().unwrap()).unwrap();
2309                                 as_announcement_sigs
2310                         },
2311                         _ => panic!("Unexpected event"),
2312                 };
2313
2314                 let events_7 = node_a.node.get_and_clear_pending_events();
2315                 assert_eq!(events_7.len(), 1);
2316                 let (announcement, as_update) = match events_7[0] {
2317                         Event::BroadcastChannelAnnouncement { ref msg, ref update_msg } => {
2318                                 (msg, update_msg)
2319                         },
2320                         _ => panic!("Unexpected event"),
2321                 };
2322
2323                 node_b.node.handle_announcement_signatures(&node_a.node.get_our_node_id(), &as_announcement_sigs).unwrap();
2324                 let events_8 = node_b.node.get_and_clear_pending_events();
2325                 assert_eq!(events_8.len(), 1);
2326                 let bs_update = match events_8[0] {
2327                         Event::BroadcastChannelAnnouncement { ref msg, ref update_msg } => {
2328                                 assert!(*announcement == *msg);
2329                                 update_msg
2330                         },
2331                         _ => panic!("Unexpected event"),
2332                 };
2333
2334                 unsafe {
2335                         CHAN_COUNT += 1;
2336                 }
2337
2338                 ((*announcement).clone(), (*as_update).clone(), (*bs_update).clone(), channel_id, tx)
2339         }
2340
2341         fn create_announced_chan_between_nodes(nodes: &Vec<Node>, a: usize, b: usize) -> (msgs::ChannelUpdate, msgs::ChannelUpdate, [u8; 32], Transaction) {
2342                 let chan_announcement = create_chan_between_nodes(&nodes[a], &nodes[b]);
2343                 for node in nodes {
2344                         assert!(node.router.handle_channel_announcement(&chan_announcement.0).unwrap());
2345                         node.router.handle_channel_update(&chan_announcement.1).unwrap();
2346                         node.router.handle_channel_update(&chan_announcement.2).unwrap();
2347                 }
2348                 (chan_announcement.1, chan_announcement.2, chan_announcement.3, chan_announcement.4)
2349         }
2350
2351         fn close_channel(outbound_node: &Node, inbound_node: &Node, channel_id: &[u8; 32], funding_tx: Transaction, close_inbound_first: bool) -> (msgs::ChannelUpdate, msgs::ChannelUpdate) {
2352                 let (node_a, broadcaster_a) = if close_inbound_first { (&inbound_node.node, &inbound_node.tx_broadcaster) } else { (&outbound_node.node, &outbound_node.tx_broadcaster) };
2353                 let (node_b, broadcaster_b) = if close_inbound_first { (&outbound_node.node, &outbound_node.tx_broadcaster) } else { (&inbound_node.node, &inbound_node.tx_broadcaster) };
2354                 let (tx_a, tx_b);
2355
2356                 node_a.close_channel(channel_id).unwrap();
2357                 let events_1 = node_a.get_and_clear_pending_events();
2358                 assert_eq!(events_1.len(), 1);
2359                 let shutdown_a = match events_1[0] {
2360                         Event::SendShutdown { ref node_id, ref msg } => {
2361                                 assert_eq!(node_id, &node_b.get_our_node_id());
2362                                 msg.clone()
2363                         },
2364                         _ => panic!("Unexpected event"),
2365                 };
2366
2367                 let (shutdown_b, mut closing_signed_b) = node_b.handle_shutdown(&node_a.get_our_node_id(), &shutdown_a).unwrap();
2368                 if !close_inbound_first {
2369                         assert!(closing_signed_b.is_none());
2370                 }
2371                 let (empty_a, mut closing_signed_a) = node_a.handle_shutdown(&node_b.get_our_node_id(), &shutdown_b.unwrap()).unwrap();
2372                 assert!(empty_a.is_none());
2373                 if close_inbound_first {
2374                         assert!(closing_signed_a.is_none());
2375                         closing_signed_a = node_a.handle_closing_signed(&node_b.get_our_node_id(), &closing_signed_b.unwrap()).unwrap();
2376                         assert_eq!(broadcaster_a.txn_broadcasted.lock().unwrap().len(), 1);
2377                         tx_a = broadcaster_a.txn_broadcasted.lock().unwrap().remove(0);
2378
2379                         let empty_b = node_b.handle_closing_signed(&node_a.get_our_node_id(), &closing_signed_a.unwrap()).unwrap();
2380                         assert!(empty_b.is_none());
2381                         assert_eq!(broadcaster_b.txn_broadcasted.lock().unwrap().len(), 1);
2382                         tx_b = broadcaster_b.txn_broadcasted.lock().unwrap().remove(0);
2383                 } else {
2384                         closing_signed_b = node_b.handle_closing_signed(&node_a.get_our_node_id(), &closing_signed_a.unwrap()).unwrap();
2385                         assert_eq!(broadcaster_b.txn_broadcasted.lock().unwrap().len(), 1);
2386                         tx_b = broadcaster_b.txn_broadcasted.lock().unwrap().remove(0);
2387
2388                         let empty_a2 = node_a.handle_closing_signed(&node_b.get_our_node_id(), &closing_signed_b.unwrap()).unwrap();
2389                         assert!(empty_a2.is_none());
2390                         assert_eq!(broadcaster_a.txn_broadcasted.lock().unwrap().len(), 1);
2391                         tx_a = broadcaster_a.txn_broadcasted.lock().unwrap().remove(0);
2392                 }
2393                 assert_eq!(tx_a, tx_b);
2394                 let mut funding_tx_map = HashMap::new();
2395                 funding_tx_map.insert(funding_tx.txid(), funding_tx);
2396                 tx_a.verify(&funding_tx_map).unwrap();
2397
2398                 let events_2 = node_a.get_and_clear_pending_events();
2399                 assert_eq!(events_2.len(), 1);
2400                 let as_update = match events_2[0] {
2401                         Event::BroadcastChannelUpdate { ref msg } => {
2402                                 msg.clone()
2403                         },
2404                         _ => panic!("Unexpected event"),
2405                 };
2406
2407                 let events_3 = node_b.get_and_clear_pending_events();
2408                 assert_eq!(events_3.len(), 1);
2409                 let bs_update = match events_3[0] {
2410                         Event::BroadcastChannelUpdate { ref msg } => {
2411                                 msg.clone()
2412                         },
2413                         _ => panic!("Unexpected event"),
2414                 };
2415
2416                 (as_update, bs_update)
2417         }
2418
2419         struct SendEvent {
2420                 node_id: PublicKey,
2421                 msgs: Vec<msgs::UpdateAddHTLC>,
2422                 commitment_msg: msgs::CommitmentSigned,
2423         }
2424         impl SendEvent {
2425                 fn from_event(event: Event) -> SendEvent {
2426                         match event {
2427                                 Event::SendHTLCs { node_id, msgs, commitment_msg } => {
2428                                         SendEvent { node_id: node_id, msgs: msgs, commitment_msg: commitment_msg }
2429                                 },
2430                                 _ => panic!("Unexpected event type!"),
2431                         }
2432                 }
2433         }
2434
2435         static mut PAYMENT_COUNT: u8 = 0;
2436         fn send_along_route(origin_node: &Node, route: Route, expected_route: &[&Node], recv_value: u64) -> ([u8; 32], [u8; 32]) {
2437                 let our_payment_preimage = unsafe { [PAYMENT_COUNT; 32] };
2438                 unsafe { PAYMENT_COUNT += 1 };
2439                 let our_payment_hash = {
2440                         let mut sha = Sha256::new();
2441                         sha.input(&our_payment_preimage[..]);
2442                         let mut ret = [0; 32];
2443                         sha.result(&mut ret);
2444                         ret
2445                 };
2446
2447                 let mut payment_event = {
2448                         origin_node.node.send_payment(route, our_payment_hash).unwrap();
2449                         {
2450                                 let mut added_monitors = origin_node.chan_monitor.added_monitors.lock().unwrap();
2451                                 assert_eq!(added_monitors.len(), 1);
2452                                 added_monitors.clear();
2453                         }
2454
2455                         let mut events = origin_node.node.get_and_clear_pending_events();
2456                         assert_eq!(events.len(), 1);
2457                         SendEvent::from_event(events.remove(0))
2458                 };
2459                 let mut prev_node = origin_node;
2460
2461                 for (idx, &node) in expected_route.iter().enumerate() {
2462                         assert_eq!(node.node.get_our_node_id(), payment_event.node_id);
2463
2464                         node.node.handle_update_add_htlc(&prev_node.node.get_our_node_id(), &payment_event.msgs[0]).unwrap();
2465                         {
2466                                 let added_monitors = node.chan_monitor.added_monitors.lock().unwrap();
2467                                 assert_eq!(added_monitors.len(), 0);
2468                         }
2469
2470                         let revoke_and_ack = node.node.handle_commitment_signed(&prev_node.node.get_our_node_id(), &payment_event.commitment_msg).unwrap();
2471                         {
2472                                 let mut added_monitors = node.chan_monitor.added_monitors.lock().unwrap();
2473                                 assert_eq!(added_monitors.len(), 1);
2474                                 added_monitors.clear();
2475                         }
2476                         assert!(prev_node.node.handle_revoke_and_ack(&node.node.get_our_node_id(), &revoke_and_ack.0).unwrap().is_none());
2477                         let prev_revoke_and_ack = prev_node.node.handle_commitment_signed(&node.node.get_our_node_id(), &revoke_and_ack.1.unwrap()).unwrap();
2478                         {
2479                                 let mut added_monitors = prev_node.chan_monitor.added_monitors.lock().unwrap();
2480                                 assert_eq!(added_monitors.len(), 2);
2481                                 added_monitors.clear();
2482                         }
2483                         assert!(node.node.handle_revoke_and_ack(&prev_node.node.get_our_node_id(), &prev_revoke_and_ack.0).unwrap().is_none());
2484                         assert!(prev_revoke_and_ack.1.is_none());
2485                         {
2486                                 let mut added_monitors = node.chan_monitor.added_monitors.lock().unwrap();
2487                                 assert_eq!(added_monitors.len(), 1);
2488                                 added_monitors.clear();
2489                         }
2490
2491                         let events_1 = node.node.get_and_clear_pending_events();
2492                         assert_eq!(events_1.len(), 1);
2493                         match events_1[0] {
2494                                 Event::PendingHTLCsForwardable { .. } => { },
2495                                 _ => panic!("Unexpected event"),
2496                         };
2497
2498                         node.node.channel_state.lock().unwrap().next_forward = Instant::now();
2499                         node.node.process_pending_htlc_forwards();
2500
2501                         let mut events_2 = node.node.get_and_clear_pending_events();
2502                         assert_eq!(events_2.len(), 1);
2503                         if idx == expected_route.len() - 1 {
2504                                 match events_2[0] {
2505                                         Event::PaymentReceived { ref payment_hash, amt } => {
2506                                                 assert_eq!(our_payment_hash, *payment_hash);
2507                                                 assert_eq!(amt, recv_value);
2508                                         },
2509                                         _ => panic!("Unexpected event"),
2510                                 }
2511                         } else {
2512                                 {
2513                                         let mut added_monitors = node.chan_monitor.added_monitors.lock().unwrap();
2514                                         assert_eq!(added_monitors.len(), 1);
2515                                         added_monitors.clear();
2516                                 }
2517                                 payment_event = SendEvent::from_event(events_2.remove(0));
2518                                 assert_eq!(payment_event.msgs.len(), 1);
2519                         }
2520
2521                         prev_node = node;
2522                 }
2523
2524                 (our_payment_preimage, our_payment_hash)
2525         }
2526
2527         fn claim_payment(origin_node: &Node, expected_route: &[&Node], our_payment_preimage: [u8; 32]) {
2528                 assert!(expected_route.last().unwrap().node.claim_funds(our_payment_preimage));
2529                 {
2530                         let mut added_monitors = expected_route.last().unwrap().chan_monitor.added_monitors.lock().unwrap();
2531                         assert_eq!(added_monitors.len(), 1);
2532                         added_monitors.clear();
2533                 }
2534
2535                 let mut next_msgs: Option<(msgs::UpdateFulfillHTLC, msgs::CommitmentSigned)> = None;
2536                 macro_rules! update_fulfill_dance {
2537                         ($node: expr, $prev_node: expr, $last_node: expr) => {
2538                                 {
2539                                         $node.node.handle_update_fulfill_htlc(&$prev_node.node.get_our_node_id(), &next_msgs.as_ref().unwrap().0).unwrap();
2540                                         {
2541                                                 let mut added_monitors = $node.chan_monitor.added_monitors.lock().unwrap();
2542                                                 if $last_node {
2543                                                         assert_eq!(added_monitors.len(), 0);
2544                                                 } else {
2545                                                         assert_eq!(added_monitors.len(), 1);
2546                                                 }
2547                                                 added_monitors.clear();
2548                                         }
2549                                         let revoke_and_commit = $node.node.handle_commitment_signed(&$prev_node.node.get_our_node_id(), &next_msgs.as_ref().unwrap().1).unwrap();
2550                                         {
2551                                                 let mut added_monitors = $node.chan_monitor.added_monitors.lock().unwrap();
2552                                                 assert_eq!(added_monitors.len(), 1);
2553                                                 added_monitors.clear();
2554                                         }
2555                                         assert!($prev_node.node.handle_revoke_and_ack(&$node.node.get_our_node_id(), &revoke_and_commit.0).unwrap().is_none());
2556                                         let revoke_and_ack = $prev_node.node.handle_commitment_signed(&$node.node.get_our_node_id(), &revoke_and_commit.1.unwrap()).unwrap();
2557                                         assert!(revoke_and_ack.1.is_none());
2558                                         {
2559                                                 let mut added_monitors = $prev_node.chan_monitor.added_monitors.lock().unwrap();
2560                                                 assert_eq!(added_monitors.len(), 2);
2561                                                 added_monitors.clear();
2562                                         }
2563                                         assert!($node.node.handle_revoke_and_ack(&$prev_node.node.get_our_node_id(), &revoke_and_ack.0).unwrap().is_none());
2564                                         {
2565                                                 let mut added_monitors = $node.chan_monitor.added_monitors.lock().unwrap();
2566                                                 assert_eq!(added_monitors.len(), 1);
2567                                                 added_monitors.clear();
2568                                         }
2569                                 }
2570                         }
2571                 }
2572
2573                 let mut expected_next_node = expected_route.last().unwrap().node.get_our_node_id();
2574                 let mut prev_node = expected_route.last().unwrap();
2575                 for node in expected_route.iter().rev() {
2576                         assert_eq!(expected_next_node, node.node.get_our_node_id());
2577                         if next_msgs.is_some() {
2578                                 update_fulfill_dance!(node, prev_node, false);
2579                         }
2580
2581                         let events = node.node.get_and_clear_pending_events();
2582                         assert_eq!(events.len(), 1);
2583                         match events[0] {
2584                                 Event::SendFulfillHTLC { ref node_id, ref msg, ref commitment_msg } => {
2585                                         expected_next_node = node_id.clone();
2586                                         next_msgs = Some((msg.clone(), commitment_msg.clone()));
2587                                 },
2588                                 _ => panic!("Unexpected event"),
2589                         };
2590
2591                         prev_node = node;
2592                 }
2593
2594                 assert_eq!(expected_next_node, origin_node.node.get_our_node_id());
2595                 update_fulfill_dance!(origin_node, expected_route.first().unwrap(), true);
2596
2597                 let events = origin_node.node.get_and_clear_pending_events();
2598                 assert_eq!(events.len(), 1);
2599                 match events[0] {
2600                         Event::PaymentSent { payment_preimage } => {
2601                                 assert_eq!(payment_preimage, our_payment_preimage);
2602                         },
2603                         _ => panic!("Unexpected event"),
2604                 }
2605         }
2606
2607         const TEST_FINAL_CLTV: u32 = 32;
2608
2609         fn route_payment(origin_node: &Node, expected_route: &[&Node], recv_value: u64) -> ([u8; 32], [u8; 32]) {
2610                 let route = origin_node.router.get_route(&expected_route.last().unwrap().node.get_our_node_id(), None, &Vec::new(), recv_value, TEST_FINAL_CLTV).unwrap();
2611                 assert_eq!(route.hops.len(), expected_route.len());
2612                 for (node, hop) in expected_route.iter().zip(route.hops.iter()) {
2613                         assert_eq!(hop.pubkey, node.node.get_our_node_id());
2614                 }
2615
2616                 send_along_route(origin_node, route, expected_route, recv_value)
2617         }
2618
2619         fn route_over_limit(origin_node: &Node, expected_route: &[&Node], recv_value: u64) {
2620                 let route = origin_node.router.get_route(&expected_route.last().unwrap().node.get_our_node_id(), None, &Vec::new(), recv_value, TEST_FINAL_CLTV).unwrap();
2621                 assert_eq!(route.hops.len(), expected_route.len());
2622                 for (node, hop) in expected_route.iter().zip(route.hops.iter()) {
2623                         assert_eq!(hop.pubkey, node.node.get_our_node_id());
2624                 }
2625
2626                 let our_payment_preimage = unsafe { [PAYMENT_COUNT; 32] };
2627                 unsafe { PAYMENT_COUNT += 1 };
2628                 let our_payment_hash = {
2629                         let mut sha = Sha256::new();
2630                         sha.input(&our_payment_preimage[..]);
2631                         let mut ret = [0; 32];
2632                         sha.result(&mut ret);
2633                         ret
2634                 };
2635
2636                 let err = origin_node.node.send_payment(route, our_payment_hash).err().unwrap();
2637                 assert_eq!(err.err, "Cannot send value that would put us over our max HTLC value in flight");
2638         }
2639
2640         fn send_payment(origin: &Node, expected_route: &[&Node], recv_value: u64) {
2641                 let our_payment_preimage = route_payment(&origin, expected_route, recv_value).0;
2642                 claim_payment(&origin, expected_route, our_payment_preimage);
2643         }
2644
2645         fn fail_payment(origin_node: &Node, expected_route: &[&Node], our_payment_hash: [u8; 32]) {
2646                 assert!(expected_route.last().unwrap().node.fail_htlc_backwards(&our_payment_hash));
2647                 {
2648                         let mut added_monitors = expected_route.last().unwrap().chan_monitor.added_monitors.lock().unwrap();
2649                         assert_eq!(added_monitors.len(), 1);
2650                         added_monitors.clear();
2651                 }
2652
2653                 let mut next_msgs: Option<(msgs::UpdateFailHTLC, msgs::CommitmentSigned)> = None;
2654                 macro_rules! update_fail_dance {
2655                         ($node: expr, $prev_node: expr, $last_node: expr) => {
2656                                 {
2657                                         $node.node.handle_update_fail_htlc(&$prev_node.node.get_our_node_id(), &next_msgs.as_ref().unwrap().0).unwrap();
2658                                         let revoke_and_commit = $node.node.handle_commitment_signed(&$prev_node.node.get_our_node_id(), &next_msgs.as_ref().unwrap().1).unwrap();
2659
2660                                         {
2661                                                 let mut added_monitors = $node.chan_monitor.added_monitors.lock().unwrap();
2662                                                 assert_eq!(added_monitors.len(), 1);
2663                                                 added_monitors.clear();
2664                                         }
2665                                         assert!($prev_node.node.handle_revoke_and_ack(&$node.node.get_our_node_id(), &revoke_and_commit.0).unwrap().is_none());
2666                                         {
2667                                                 let mut added_monitors = $prev_node.chan_monitor.added_monitors.lock().unwrap();
2668                                                 assert_eq!(added_monitors.len(), 1);
2669                                                 added_monitors.clear();
2670                                         }
2671                                         let revoke_and_ack = $prev_node.node.handle_commitment_signed(&$node.node.get_our_node_id(), &revoke_and_commit.1.unwrap()).unwrap();
2672                                         {
2673                                                 let mut added_monitors = $prev_node.chan_monitor.added_monitors.lock().unwrap();
2674                                                 assert_eq!(added_monitors.len(), 1);
2675                                                 added_monitors.clear();
2676                                         }
2677                                         assert!(revoke_and_ack.1.is_none());
2678                                         assert!($node.node.get_and_clear_pending_events().is_empty());
2679                                         assert!($node.node.handle_revoke_and_ack(&$prev_node.node.get_our_node_id(), &revoke_and_ack.0).unwrap().is_none());
2680                                         {
2681                                                 let mut added_monitors = $node.chan_monitor.added_monitors.lock().unwrap();
2682                                                 if $last_node {
2683                                                         assert_eq!(added_monitors.len(), 1);
2684                                                 } else {
2685                                                         assert_eq!(added_monitors.len(), 2);
2686                                                         assert!(added_monitors[0].0 != added_monitors[1].0);
2687                                                 }
2688                                                 added_monitors.clear();
2689                                         }
2690                                 }
2691                         }
2692                 }
2693
2694                 let mut expected_next_node = expected_route.last().unwrap().node.get_our_node_id();
2695                 let mut prev_node = expected_route.last().unwrap();
2696                 for node in expected_route.iter().rev() {
2697                         assert_eq!(expected_next_node, node.node.get_our_node_id());
2698                         if next_msgs.is_some() {
2699                                 update_fail_dance!(node, prev_node, false);
2700                         }
2701
2702                         let events = node.node.get_and_clear_pending_events();
2703                         assert_eq!(events.len(), 1);
2704                         match events[0] {
2705                                 Event::SendFailHTLC { ref node_id, ref msg, ref commitment_msg } => {
2706                                         expected_next_node = node_id.clone();
2707                                         next_msgs = Some((msg.clone(), commitment_msg.clone()));
2708                                 },
2709                                 _ => panic!("Unexpected event"),
2710                         };
2711
2712                         prev_node = node;
2713                 }
2714
2715                 assert_eq!(expected_next_node, origin_node.node.get_our_node_id());
2716                 update_fail_dance!(origin_node, expected_route.first().unwrap(), true);
2717
2718                 let events = origin_node.node.get_and_clear_pending_events();
2719                 assert_eq!(events.len(), 1);
2720                 match events[0] {
2721                         Event::PaymentFailed { payment_hash } => {
2722                                 assert_eq!(payment_hash, our_payment_hash);
2723                         },
2724                         _ => panic!("Unexpected event"),
2725                 }
2726         }
2727
2728         fn create_network(node_count: usize) -> Vec<Node> {
2729                 let mut nodes = Vec::new();
2730                 let mut rng = thread_rng();
2731                 let secp_ctx = Secp256k1::new();
2732                 let logger: Arc<Logger> = Arc::new(test_utils::TestLogger::new());
2733
2734                 for _ in 0..node_count {
2735                         let feeest = Arc::new(test_utils::TestFeeEstimator { sat_per_kw: 253 });
2736                         let chain_monitor = Arc::new(chaininterface::ChainWatchInterfaceUtil::new(Arc::clone(&logger)));
2737                         let tx_broadcaster = Arc::new(test_utils::TestBroadcaster{txn_broadcasted: Mutex::new(Vec::new())});
2738                         let chan_monitor = Arc::new(test_utils::TestChannelMonitor::new(chain_monitor.clone(), tx_broadcaster.clone()));
2739                         let node_id = {
2740                                 let mut key_slice = [0; 32];
2741                                 rng.fill_bytes(&mut key_slice);
2742                                 SecretKey::from_slice(&secp_ctx, &key_slice).unwrap()
2743                         };
2744                         let node = ChannelManager::new(node_id.clone(), 0, true, Network::Testnet, feeest.clone(), chan_monitor.clone(), chain_monitor.clone(), tx_broadcaster.clone(), Arc::clone(&logger)).unwrap();
2745                         let router = Router::new(PublicKey::from_secret_key(&secp_ctx, &node_id).unwrap(), Arc::clone(&logger));
2746                         nodes.push(Node { feeest, chain_monitor, tx_broadcaster, chan_monitor, node_id, node, router });
2747                 }
2748
2749                 nodes
2750         }
2751
2752         #[test]
2753         fn fake_network_test() {
2754                 // Simple test which builds a network of ChannelManagers, connects them to each other, and
2755                 // tests that payments get routed and transactions broadcast in semi-reasonable ways.
2756                 let nodes = create_network(4);
2757
2758                 // Create some initial channels
2759                 let chan_1 = create_announced_chan_between_nodes(&nodes, 0, 1);
2760                 let chan_2 = create_announced_chan_between_nodes(&nodes, 1, 2);
2761                 let chan_3 = create_announced_chan_between_nodes(&nodes, 2, 3);
2762
2763                 // Rebalance the network a bit by relaying one payment through all the channels...
2764                 send_payment(&nodes[0], &vec!(&nodes[1], &nodes[2], &nodes[3])[..], 8000000);
2765                 send_payment(&nodes[0], &vec!(&nodes[1], &nodes[2], &nodes[3])[..], 8000000);
2766                 send_payment(&nodes[0], &vec!(&nodes[1], &nodes[2], &nodes[3])[..], 8000000);
2767                 send_payment(&nodes[0], &vec!(&nodes[1], &nodes[2], &nodes[3])[..], 8000000);
2768
2769                 // Send some more payments
2770                 send_payment(&nodes[1], &vec!(&nodes[2], &nodes[3])[..], 1000000);
2771                 send_payment(&nodes[3], &vec!(&nodes[2], &nodes[1], &nodes[0])[..], 1000000);
2772                 send_payment(&nodes[3], &vec!(&nodes[2], &nodes[1])[..], 1000000);
2773
2774                 // Test failure packets
2775                 let payment_hash_1 = route_payment(&nodes[0], &vec!(&nodes[1], &nodes[2], &nodes[3])[..], 1000000).1;
2776                 fail_payment(&nodes[0], &vec!(&nodes[1], &nodes[2], &nodes[3])[..], payment_hash_1);
2777
2778                 // Add a new channel that skips 3
2779                 let chan_4 = create_announced_chan_between_nodes(&nodes, 1, 3);
2780
2781                 send_payment(&nodes[0], &vec!(&nodes[1], &nodes[3])[..], 1000000);
2782                 send_payment(&nodes[2], &vec!(&nodes[3])[..], 1000000);
2783                 send_payment(&nodes[1], &vec!(&nodes[3])[..], 8000000);
2784                 send_payment(&nodes[1], &vec!(&nodes[3])[..], 8000000);
2785                 send_payment(&nodes[1], &vec!(&nodes[3])[..], 8000000);
2786                 send_payment(&nodes[1], &vec!(&nodes[3])[..], 8000000);
2787                 send_payment(&nodes[1], &vec!(&nodes[3])[..], 8000000);
2788
2789                 // Do some rebalance loop payments, simultaneously
2790                 let mut hops = Vec::with_capacity(3);
2791                 hops.push(RouteHop {
2792                         pubkey: nodes[2].node.get_our_node_id(),
2793                         short_channel_id: chan_2.0.contents.short_channel_id,
2794                         fee_msat: 0,
2795                         cltv_expiry_delta: chan_3.0.contents.cltv_expiry_delta as u32
2796                 });
2797                 hops.push(RouteHop {
2798                         pubkey: nodes[3].node.get_our_node_id(),
2799                         short_channel_id: chan_3.0.contents.short_channel_id,
2800                         fee_msat: 0,
2801                         cltv_expiry_delta: chan_4.1.contents.cltv_expiry_delta as u32
2802                 });
2803                 hops.push(RouteHop {
2804                         pubkey: nodes[1].node.get_our_node_id(),
2805                         short_channel_id: chan_4.0.contents.short_channel_id,
2806                         fee_msat: 1000000,
2807                         cltv_expiry_delta: TEST_FINAL_CLTV,
2808                 });
2809                 hops[1].fee_msat = chan_4.1.contents.fee_base_msat as u64 + chan_4.1.contents.fee_proportional_millionths as u64 * hops[2].fee_msat as u64 / 1000000;
2810                 hops[0].fee_msat = chan_3.0.contents.fee_base_msat as u64 + chan_3.0.contents.fee_proportional_millionths as u64 * hops[1].fee_msat as u64 / 1000000;
2811                 let payment_preimage_1 = send_along_route(&nodes[1], Route { hops }, &vec!(&nodes[2], &nodes[3], &nodes[1])[..], 1000000).0;
2812
2813                 let mut hops = Vec::with_capacity(3);
2814                 hops.push(RouteHop {
2815                         pubkey: nodes[3].node.get_our_node_id(),
2816                         short_channel_id: chan_4.0.contents.short_channel_id,
2817                         fee_msat: 0,
2818                         cltv_expiry_delta: chan_3.1.contents.cltv_expiry_delta as u32
2819                 });
2820                 hops.push(RouteHop {
2821                         pubkey: nodes[2].node.get_our_node_id(),
2822                         short_channel_id: chan_3.0.contents.short_channel_id,
2823                         fee_msat: 0,
2824                         cltv_expiry_delta: chan_2.1.contents.cltv_expiry_delta as u32
2825                 });
2826                 hops.push(RouteHop {
2827                         pubkey: nodes[1].node.get_our_node_id(),
2828                         short_channel_id: chan_2.0.contents.short_channel_id,
2829                         fee_msat: 1000000,
2830                         cltv_expiry_delta: TEST_FINAL_CLTV,
2831                 });
2832                 hops[1].fee_msat = chan_2.1.contents.fee_base_msat as u64 + chan_2.1.contents.fee_proportional_millionths as u64 * hops[2].fee_msat as u64 / 1000000;
2833                 hops[0].fee_msat = chan_3.1.contents.fee_base_msat as u64 + chan_3.1.contents.fee_proportional_millionths as u64 * hops[1].fee_msat as u64 / 1000000;
2834                 let payment_hash_2 = send_along_route(&nodes[1], Route { hops }, &vec!(&nodes[3], &nodes[2], &nodes[1])[..], 1000000).1;
2835
2836                 // Claim the rebalances...
2837                 fail_payment(&nodes[1], &vec!(&nodes[3], &nodes[2], &nodes[1])[..], payment_hash_2);
2838                 claim_payment(&nodes[1], &vec!(&nodes[2], &nodes[3], &nodes[1])[..], payment_preimage_1);
2839
2840                 // Add a duplicate new channel from 2 to 4
2841                 let chan_5 = create_announced_chan_between_nodes(&nodes, 1, 3);
2842
2843                 // Send some payments across both channels
2844                 let payment_preimage_3 = route_payment(&nodes[0], &vec!(&nodes[1], &nodes[3])[..], 3000000).0;
2845                 let payment_preimage_4 = route_payment(&nodes[0], &vec!(&nodes[1], &nodes[3])[..], 3000000).0;
2846                 let payment_preimage_5 = route_payment(&nodes[0], &vec!(&nodes[1], &nodes[3])[..], 3000000).0;
2847
2848                 route_over_limit(&nodes[0], &vec!(&nodes[1], &nodes[3])[..], 3000000);
2849
2850                 //TODO: Test that routes work again here as we've been notified that the channel is full
2851
2852                 claim_payment(&nodes[0], &vec!(&nodes[1], &nodes[3])[..], payment_preimage_3);
2853                 claim_payment(&nodes[0], &vec!(&nodes[1], &nodes[3])[..], payment_preimage_4);
2854                 claim_payment(&nodes[0], &vec!(&nodes[1], &nodes[3])[..], payment_preimage_5);
2855
2856                 // Close down the channels...
2857                 close_channel(&nodes[0], &nodes[1], &chan_1.2, chan_1.3, true);
2858                 close_channel(&nodes[1], &nodes[2], &chan_2.2, chan_2.3, false);
2859                 close_channel(&nodes[2], &nodes[3], &chan_3.2, chan_3.3, true);
2860                 close_channel(&nodes[1], &nodes[3], &chan_4.2, chan_4.3, false);
2861                 close_channel(&nodes[1], &nodes[3], &chan_5.2, chan_5.3, false);
2862
2863                 // Check that we processed all pending events
2864                 for node in nodes {
2865                         assert_eq!(node.node.get_and_clear_pending_events().len(), 0);
2866                         assert_eq!(node.chan_monitor.added_monitors.lock().unwrap().len(), 0);
2867                 }
2868         }
2869
2870         #[derive(PartialEq)]
2871         enum HTLCType { NONE, TIMEOUT, SUCCESS }
2872         fn test_txn_broadcast(node: &Node, chan: &(msgs::ChannelUpdate, msgs::ChannelUpdate, [u8; 32], Transaction), commitment_tx: Option<Transaction>, has_htlc_tx: HTLCType) -> Vec<Transaction> {
2873                 let mut node_txn = node.tx_broadcaster.txn_broadcasted.lock().unwrap();
2874                 assert!(node_txn.len() >= if commitment_tx.is_some() { 0 } else { 1 } + if has_htlc_tx == HTLCType::NONE { 0 } else { 1 });
2875
2876                 let mut res = Vec::with_capacity(2);
2877
2878                 if let Some(explicit_tx) = commitment_tx {
2879                         res.push(explicit_tx.clone());
2880                 } else {
2881                         for tx in node_txn.iter() {
2882                                 if tx.input.len() == 1 && tx.input[0].prev_hash == chan.3.txid() {
2883                                         let mut funding_tx_map = HashMap::new();
2884                                         funding_tx_map.insert(chan.3.txid(), chan.3.clone());
2885                                         tx.verify(&funding_tx_map).unwrap();
2886                                         res.push(tx.clone());
2887                                 }
2888                         }
2889                 }
2890                 assert_eq!(res.len(), 1);
2891
2892                 if has_htlc_tx != HTLCType::NONE {
2893                         for tx in node_txn.iter() {
2894                                 if tx.input.len() == 1 && tx.input[0].prev_hash == res[0].txid() {
2895                                         let mut funding_tx_map = HashMap::new();
2896                                         funding_tx_map.insert(res[0].txid(), res[0].clone());
2897                                         tx.verify(&funding_tx_map).unwrap();
2898                                         if has_htlc_tx == HTLCType::TIMEOUT {
2899                                                 assert!(tx.lock_time != 0);
2900                                         } else {
2901                                                 assert!(tx.lock_time == 0);
2902                                         }
2903                                         res.push(tx.clone());
2904                                         break;
2905                                 }
2906                         }
2907                         assert_eq!(res.len(), 2);
2908                 }
2909                 node_txn.clear();
2910                 res
2911         }
2912
2913         fn check_preimage_claim(node: &Node, prev_txn: &Vec<Transaction>) -> Vec<Transaction> {
2914                 let mut node_txn = node.tx_broadcaster.txn_broadcasted.lock().unwrap();
2915
2916                 assert!(node_txn.len() >= 1);
2917                 assert_eq!(node_txn[0].input.len(), 1);
2918                 let mut found_prev = false;
2919
2920                 for tx in prev_txn {
2921                         if node_txn[0].input[0].prev_hash == tx.txid() {
2922                                 let mut funding_tx_map = HashMap::new();
2923                                 funding_tx_map.insert(tx.txid(), tx.clone());
2924                                 node_txn[0].verify(&funding_tx_map).unwrap();
2925
2926                                 assert!(node_txn[0].input[0].witness[2].len() > 106); // must spend an htlc output
2927                                 assert_eq!(tx.input.len(), 1); // must spend a commitment tx
2928
2929                                 found_prev = true;
2930                                 break;
2931                         }
2932                 }
2933                 assert!(found_prev);
2934
2935                 let mut res = Vec::new();
2936                 mem::swap(&mut *node_txn, &mut res);
2937                 res
2938         }
2939
2940         fn get_announce_close_broadcast_events(nodes: &Vec<Node>, a: usize, b: usize) {
2941                 let events_1 = nodes[a].node.get_and_clear_pending_events();
2942                 assert_eq!(events_1.len(), 1);
2943                 let as_update = match events_1[0] {
2944                         Event::BroadcastChannelUpdate { ref msg } => {
2945                                 msg.clone()
2946                         },
2947                         _ => panic!("Unexpected event"),
2948                 };
2949
2950                 let events_2 = nodes[b].node.get_and_clear_pending_events();
2951                 assert_eq!(events_2.len(), 1);
2952                 let bs_update = match events_2[0] {
2953                         Event::BroadcastChannelUpdate { ref msg } => {
2954                                 msg.clone()
2955                         },
2956                         _ => panic!("Unexpected event"),
2957                 };
2958
2959                 for node in nodes {
2960                         node.router.handle_channel_update(&as_update).unwrap();
2961                         node.router.handle_channel_update(&bs_update).unwrap();
2962                 }
2963         }
2964
2965         #[test]
2966         fn channel_monitor_network_test() {
2967                 // Simple test which builds a network of ChannelManagers, connects them to each other, and
2968                 // tests that ChannelMonitor is able to recover from various states.
2969                 let nodes = create_network(5);
2970
2971                 // Create some initial channels
2972                 let chan_1 = create_announced_chan_between_nodes(&nodes, 0, 1);
2973                 let chan_2 = create_announced_chan_between_nodes(&nodes, 1, 2);
2974                 let chan_3 = create_announced_chan_between_nodes(&nodes, 2, 3);
2975                 let chan_4 = create_announced_chan_between_nodes(&nodes, 3, 4);
2976
2977                 // Rebalance the network a bit by relaying one payment through all the channels...
2978                 send_payment(&nodes[0], &vec!(&nodes[1], &nodes[2], &nodes[3], &nodes[4])[..], 8000000);
2979                 send_payment(&nodes[0], &vec!(&nodes[1], &nodes[2], &nodes[3], &nodes[4])[..], 8000000);
2980                 send_payment(&nodes[0], &vec!(&nodes[1], &nodes[2], &nodes[3], &nodes[4])[..], 8000000);
2981                 send_payment(&nodes[0], &vec!(&nodes[1], &nodes[2], &nodes[3], &nodes[4])[..], 8000000);
2982
2983                 // Simple case with no pending HTLCs:
2984                 nodes[1].node.peer_disconnected(&nodes[0].node.get_our_node_id(), true);
2985                 {
2986                         let mut node_txn = test_txn_broadcast(&nodes[1], &chan_1, None, HTLCType::NONE);
2987                         let header = BlockHeader { version: 0x20000000, prev_blockhash: Default::default(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
2988                         nodes[0].chain_monitor.block_connected_with_filtering(&Block { header, txdata: vec![node_txn.drain(..).next().unwrap()] }, 1);
2989                         test_txn_broadcast(&nodes[0], &chan_1, None, HTLCType::NONE);
2990                 }
2991                 get_announce_close_broadcast_events(&nodes, 0, 1);
2992                 assert_eq!(nodes[0].node.list_channels().len(), 0);
2993                 assert_eq!(nodes[1].node.list_channels().len(), 1);
2994
2995                 // One pending HTLC is discarded by the force-close:
2996                 let payment_preimage_1 = route_payment(&nodes[1], &vec!(&nodes[2], &nodes[3])[..], 3000000).0;
2997
2998                 // Simple case of one pending HTLC to HTLC-Timeout
2999                 nodes[1].node.peer_disconnected(&nodes[2].node.get_our_node_id(), true);
3000                 {
3001                         let mut node_txn = test_txn_broadcast(&nodes[1], &chan_2, None, HTLCType::TIMEOUT);
3002                         let header = BlockHeader { version: 0x20000000, prev_blockhash: Default::default(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3003                         nodes[2].chain_monitor.block_connected_with_filtering(&Block { header, txdata: vec![node_txn.drain(..).next().unwrap()] }, 1);
3004                         test_txn_broadcast(&nodes[2], &chan_2, None, HTLCType::NONE);
3005                 }
3006                 get_announce_close_broadcast_events(&nodes, 1, 2);
3007                 assert_eq!(nodes[1].node.list_channels().len(), 0);
3008                 assert_eq!(nodes[2].node.list_channels().len(), 1);
3009
3010                 macro_rules! claim_funds {
3011                         ($node: expr, $prev_node: expr, $preimage: expr) => {
3012                                 {
3013                                         assert!($node.node.claim_funds($preimage));
3014                                         {
3015                                                 let mut added_monitors = $node.chan_monitor.added_monitors.lock().unwrap();
3016                                                 assert_eq!(added_monitors.len(), 1);
3017                                                 added_monitors.clear();
3018                                         }
3019
3020                                         let events = $node.node.get_and_clear_pending_events();
3021                                         assert_eq!(events.len(), 1);
3022                                         match events[0] {
3023                                                 Event::SendFulfillHTLC { ref node_id, .. } => {
3024                                                         assert_eq!(*node_id, $prev_node.node.get_our_node_id());
3025                                                 },
3026                                                 _ => panic!("Unexpected event"),
3027                                         };
3028                                 }
3029                         }
3030                 }
3031
3032                 // nodes[3] gets the preimage, but nodes[2] already disconnected, resulting in a nodes[2]
3033                 // HTLC-Timeout and a nodes[3] claim against it (+ its own announces)
3034                 nodes[2].node.peer_disconnected(&nodes[3].node.get_our_node_id(), true);
3035                 {
3036                         let node_txn = test_txn_broadcast(&nodes[2], &chan_3, None, HTLCType::TIMEOUT);
3037
3038                         // Claim the payment on nodes[3], giving it knowledge of the preimage
3039                         claim_funds!(nodes[3], nodes[2], payment_preimage_1);
3040
3041                         let header = BlockHeader { version: 0x20000000, prev_blockhash: Default::default(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3042                         nodes[3].chain_monitor.block_connected_with_filtering(&Block { header, txdata: vec![node_txn[0].clone()] }, 1);
3043
3044                         check_preimage_claim(&nodes[3], &node_txn);
3045                 }
3046                 get_announce_close_broadcast_events(&nodes, 2, 3);
3047                 assert_eq!(nodes[2].node.list_channels().len(), 0);
3048                 assert_eq!(nodes[3].node.list_channels().len(), 1);
3049
3050                 // One pending HTLC to time out:
3051                 let payment_preimage_2 = route_payment(&nodes[3], &vec!(&nodes[4])[..], 3000000).0;
3052
3053                 {
3054                         let mut header = BlockHeader { version: 0x20000000, prev_blockhash: Default::default(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3055                         nodes[3].chain_monitor.block_connected_checked(&header, 1, &Vec::new()[..], &[0; 0]);
3056                         for i in 2..TEST_FINAL_CLTV - 3 {
3057                                 header = BlockHeader { version: 0x20000000, prev_blockhash: header.bitcoin_hash(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3058                                 nodes[3].chain_monitor.block_connected_checked(&header, i, &Vec::new()[..], &[0; 0]);
3059                         }
3060
3061                         let node_txn = test_txn_broadcast(&nodes[3], &chan_4, None, HTLCType::TIMEOUT);
3062
3063                         // Claim the payment on nodes[3], giving it knowledge of the preimage
3064                         claim_funds!(nodes[4], nodes[3], payment_preimage_2);
3065
3066                         header = BlockHeader { version: 0x20000000, prev_blockhash: Default::default(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3067                         nodes[4].chain_monitor.block_connected_checked(&header, 1, &Vec::new()[..], &[0; 0]);
3068                         for i in 2..TEST_FINAL_CLTV - 3 {
3069                                 header = BlockHeader { version: 0x20000000, prev_blockhash: header.bitcoin_hash(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3070                                 nodes[4].chain_monitor.block_connected_checked(&header, i, &Vec::new()[..], &[0; 0]);
3071                         }
3072
3073                         test_txn_broadcast(&nodes[4], &chan_4, None, HTLCType::SUCCESS);
3074
3075                         header = BlockHeader { version: 0x20000000, prev_blockhash: header.bitcoin_hash(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3076                         nodes[4].chain_monitor.block_connected_with_filtering(&Block { header, txdata: vec![node_txn[0].clone()] }, TEST_FINAL_CLTV - 5);
3077
3078                         check_preimage_claim(&nodes[4], &node_txn);
3079                 }
3080                 get_announce_close_broadcast_events(&nodes, 3, 4);
3081                 assert_eq!(nodes[3].node.list_channels().len(), 0);
3082                 assert_eq!(nodes[4].node.list_channels().len(), 0);
3083
3084                 // Create some new channels:
3085                 let chan_5 = create_announced_chan_between_nodes(&nodes, 0, 1);
3086
3087                 // A pending HTLC which will be revoked:
3088                 let payment_preimage_3 = route_payment(&nodes[0], &vec!(&nodes[1])[..], 3000000).0;
3089                 // Get the will-be-revoked local txn from nodes[0]
3090                 let revoked_local_txn = nodes[0].node.channel_state.lock().unwrap().by_id.iter().next().unwrap().1.last_local_commitment_txn.clone();
3091                 // Revoke the old state
3092                 claim_payment(&nodes[0], &vec!(&nodes[1])[..], payment_preimage_3);
3093
3094                 {
3095                         let mut header = BlockHeader { version: 0x20000000, prev_blockhash: Default::default(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3096                         nodes[1].chain_monitor.block_connected_with_filtering(&Block { header, txdata: vec![revoked_local_txn[0].clone()] }, 1);
3097                         {
3098                                 let mut node_txn = nodes[1].tx_broadcaster.txn_broadcasted.lock().unwrap();
3099                                 assert_eq!(node_txn.len(), 2);
3100                                 assert_eq!(node_txn[0].input.len(), 1);
3101
3102                                 let mut funding_tx_map = HashMap::new();
3103                                 funding_tx_map.insert(revoked_local_txn[0].txid(), revoked_local_txn[0].clone());
3104                                 node_txn[0].verify(&funding_tx_map).unwrap();
3105                                 node_txn.swap_remove(0);
3106                         }
3107                         test_txn_broadcast(&nodes[1], &chan_5, None, HTLCType::NONE);
3108
3109                         nodes[0].chain_monitor.block_connected_with_filtering(&Block { header, txdata: vec![revoked_local_txn[0].clone()] }, 1);
3110                         let node_txn = test_txn_broadcast(&nodes[0], &chan_5, Some(revoked_local_txn[0].clone()), HTLCType::TIMEOUT);
3111                         header = BlockHeader { version: 0x20000000, prev_blockhash: header.bitcoin_hash(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3112                         nodes[1].chain_monitor.block_connected_with_filtering(&Block { header, txdata: vec![node_txn[1].clone()] }, 1);
3113
3114                         //TODO: At this point nodes[1] should claim the revoked HTLC-Timeout output, but that's
3115                         //not yet implemented in ChannelMonitor
3116                 }
3117                 get_announce_close_broadcast_events(&nodes, 0, 1);
3118                 assert_eq!(nodes[0].node.list_channels().len(), 0);
3119                 assert_eq!(nodes[1].node.list_channels().len(), 0);
3120
3121                 // Check that we processed all pending events
3122                 for node in nodes {
3123                         assert_eq!(node.node.get_and_clear_pending_events().len(), 0);
3124                         assert_eq!(node.chan_monitor.added_monitors.lock().unwrap().len(), 0);
3125                 }
3126         }
3127
3128         #[test]
3129         fn test_unconf_chan() {
3130                 // After creating a chan between nodes, we disconnect all blocks previously seen to force a channel close on nodes[0] side
3131                 let nodes = create_network(2);
3132                 create_announced_chan_between_nodes(&nodes, 0, 1);
3133
3134                 let channel_state = nodes[0].node.channel_state.lock().unwrap();
3135                 assert_eq!(channel_state.by_id.len(), 1);
3136                 assert_eq!(channel_state.short_to_id.len(), 1);
3137                 mem::drop(channel_state);
3138
3139                 let mut headers = Vec::new();
3140                 let mut header = BlockHeader { version: 0x20000000, prev_blockhash: Default::default(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3141                 headers.push(header.clone());
3142                 for _i in 2..100 {
3143                         header = BlockHeader { version: 0x20000000, prev_blockhash: header.bitcoin_hash(), merkle_root: Default::default(), time: 42, bits: 42, nonce: 42 };
3144                         headers.push(header.clone());
3145                 }
3146                 while !headers.is_empty() {
3147                         nodes[0].node.block_disconnected(&headers.pop().unwrap());
3148                 }
3149                 let channel_state = nodes[0].node.channel_state.lock().unwrap();
3150                 assert_eq!(channel_state.by_id.len(), 0);
3151                 assert_eq!(channel_state.short_to_id.len(), 0);
3152         }
3153 }