4517afb223072aeefaaa9d67ef9296a8819f07d3
[rust-lightning] / lightning / src / ln / msgs.rs
1 // This file is Copyright its original authors, visible in version control
2 // history.
3 //
4 // This file is licensed under the Apache License, Version 2.0 <LICENSE-APACHE
5 // or http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
6 // <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your option.
7 // You may not use this file except in accordance with one or both of these
8 // licenses.
9
10 //! Wire messages, traits representing wire message handlers, and a few error types live here.
11 //!
12 //! For a normal node you probably don't need to use anything here, however, if you wish to split a
13 //! node into an internet-facing route/message socket handling daemon and a separate daemon (or
14 //! server entirely) which handles only channel-related messages you may wish to implement
15 //! ChannelMessageHandler yourself and use it to re-serialize messages and pass them across
16 //! daemons/servers.
17 //!
18 //! Note that if you go with such an architecture (instead of passing raw socket events to a
19 //! non-internet-facing system) you trust the frontend internet-facing system to not lie about the
20 //! source node_id of the message, however this does allow you to significantly reduce bandwidth
21 //! between the systems as routing messages can represent a significant chunk of bandwidth usage
22 //! (especially for non-channel-publicly-announcing nodes). As an alternate design which avoids
23 //! this issue, if you have sufficient bidirectional bandwidth between your systems, you may send
24 //! raw socket events into your non-internet-facing system and then send routing events back to
25 //! track the network on the less-secure system.
26
27 use bitcoin::secp256k1::key::PublicKey;
28 use bitcoin::secp256k1::Signature;
29 use bitcoin::secp256k1;
30 use bitcoin::blockdata::script::Script;
31 use bitcoin::hash_types::{Txid, BlockHash};
32
33 use ln::features::{ChannelFeatures, InitFeatures, NodeFeatures};
34
35 use prelude::*;
36 use core::{cmp, fmt};
37 use core::fmt::Debug;
38 use io::{self, Read};
39 use io_extras::read_to_end;
40
41 use util::events::MessageSendEventsProvider;
42 use util::logger;
43 use util::ser::{Readable, Writeable, Writer, FixedLengthReader, HighZeroBytesDroppedVarInt};
44
45 use ln::{PaymentPreimage, PaymentHash, PaymentSecret};
46
47 /// 21 million * 10^8 * 1000
48 pub(crate) const MAX_VALUE_MSAT: u64 = 21_000_000_0000_0000_000;
49
50 /// An error in decoding a message or struct.
51 #[derive(Clone, Debug, PartialEq)]
52 pub enum DecodeError {
53         /// A version byte specified something we don't know how to handle.
54         /// Includes unknown realm byte in an OnionHopData packet
55         UnknownVersion,
56         /// Unknown feature mandating we fail to parse message (eg TLV with an even, unknown type)
57         UnknownRequiredFeature,
58         /// Value was invalid, eg a byte which was supposed to be a bool was something other than a 0
59         /// or 1, a public key/private key/signature was invalid, text wasn't UTF-8, TLV was
60         /// syntactically incorrect, etc
61         InvalidValue,
62         /// Buffer too short
63         ShortRead,
64         /// A length descriptor in the packet didn't describe the later data correctly
65         BadLengthDescriptor,
66         /// Error from std::io
67         Io(/// (C-not exported) as ErrorKind doesn't have a reasonable mapping
68         io::ErrorKind),
69         /// The message included zlib-compressed values, which we don't support.
70         UnsupportedCompression,
71 }
72
73 /// An init message to be sent or received from a peer
74 #[derive(Clone, Debug, PartialEq)]
75 pub struct Init {
76         /// The relevant features which the sender supports
77         pub features: InitFeatures,
78 }
79
80 /// An error message to be sent or received from a peer
81 #[derive(Clone, Debug, PartialEq)]
82 pub struct ErrorMessage {
83         /// The channel ID involved in the error
84         pub channel_id: [u8; 32],
85         /// A possibly human-readable error description.
86         /// The string should be sanitized before it is used (e.g. emitted to logs
87         /// or printed to stdout).  Otherwise, a well crafted error message may trigger a security
88         /// vulnerability in the terminal emulator or the logging subsystem.
89         pub data: String,
90 }
91
92 /// A ping message to be sent or received from a peer
93 #[derive(Clone, Debug, PartialEq)]
94 pub struct Ping {
95         /// The desired response length
96         pub ponglen: u16,
97         /// The ping packet size.
98         /// This field is not sent on the wire. byteslen zeros are sent.
99         pub byteslen: u16,
100 }
101
102 /// A pong message to be sent or received from a peer
103 #[derive(Clone, Debug, PartialEq)]
104 pub struct Pong {
105         /// The pong packet size.
106         /// This field is not sent on the wire. byteslen zeros are sent.
107         pub byteslen: u16,
108 }
109
110 /// An open_channel message to be sent or received from a peer
111 #[derive(Clone, Debug, PartialEq)]
112 pub struct OpenChannel {
113         /// The genesis hash of the blockchain where the channel is to be opened
114         pub chain_hash: BlockHash,
115         /// A temporary channel ID, until the funding outpoint is announced
116         pub temporary_channel_id: [u8; 32],
117         /// The channel value
118         pub funding_satoshis: u64,
119         /// The amount to push to the counterparty as part of the open, in milli-satoshi
120         pub push_msat: u64,
121         /// The threshold below which outputs on transactions broadcast by sender will be omitted
122         pub dust_limit_satoshis: u64,
123         /// The maximum inbound HTLC value in flight towards sender, in milli-satoshi
124         pub max_htlc_value_in_flight_msat: u64,
125         /// The minimum value unencumbered by HTLCs for the counterparty to keep in the channel
126         pub channel_reserve_satoshis: u64,
127         /// The minimum HTLC size incoming to sender, in milli-satoshi
128         pub htlc_minimum_msat: u64,
129         /// The feerate per 1000-weight of sender generated transactions, until updated by update_fee
130         pub feerate_per_kw: u32,
131         /// The number of blocks which the counterparty will have to wait to claim on-chain funds if they broadcast a commitment transaction
132         pub to_self_delay: u16,
133         /// The maximum number of inbound HTLCs towards sender
134         pub max_accepted_htlcs: u16,
135         /// The sender's key controlling the funding transaction
136         pub funding_pubkey: PublicKey,
137         /// Used to derive a revocation key for transactions broadcast by counterparty
138         pub revocation_basepoint: PublicKey,
139         /// A payment key to sender for transactions broadcast by counterparty
140         pub payment_point: PublicKey,
141         /// Used to derive a payment key to sender for transactions broadcast by sender
142         pub delayed_payment_basepoint: PublicKey,
143         /// Used to derive an HTLC payment key to sender
144         pub htlc_basepoint: PublicKey,
145         /// The first to-be-broadcast-by-sender transaction's per commitment point
146         pub first_per_commitment_point: PublicKey,
147         /// Channel flags
148         pub channel_flags: u8,
149         /// Optionally, a request to pre-set the to-sender output's scriptPubkey for when we collaboratively close
150         pub shutdown_scriptpubkey: OptionalField<Script>,
151 }
152
153 /// An accept_channel message to be sent or received from a peer
154 #[derive(Clone, Debug, PartialEq)]
155 pub struct AcceptChannel {
156         /// A temporary channel ID, until the funding outpoint is announced
157         pub temporary_channel_id: [u8; 32],
158         /// The threshold below which outputs on transactions broadcast by sender will be omitted
159         pub dust_limit_satoshis: u64,
160         /// The maximum inbound HTLC value in flight towards sender, in milli-satoshi
161         pub max_htlc_value_in_flight_msat: u64,
162         /// The minimum value unencumbered by HTLCs for the counterparty to keep in the channel
163         pub channel_reserve_satoshis: u64,
164         /// The minimum HTLC size incoming to sender, in milli-satoshi
165         pub htlc_minimum_msat: u64,
166         /// Minimum depth of the funding transaction before the channel is considered open
167         pub minimum_depth: u32,
168         /// The number of blocks which the counterparty will have to wait to claim on-chain funds if they broadcast a commitment transaction
169         pub to_self_delay: u16,
170         /// The maximum number of inbound HTLCs towards sender
171         pub max_accepted_htlcs: u16,
172         /// The sender's key controlling the funding transaction
173         pub funding_pubkey: PublicKey,
174         /// Used to derive a revocation key for transactions broadcast by counterparty
175         pub revocation_basepoint: PublicKey,
176         /// A payment key to sender for transactions broadcast by counterparty
177         pub payment_point: PublicKey,
178         /// Used to derive a payment key to sender for transactions broadcast by sender
179         pub delayed_payment_basepoint: PublicKey,
180         /// Used to derive an HTLC payment key to sender for transactions broadcast by counterparty
181         pub htlc_basepoint: PublicKey,
182         /// The first to-be-broadcast-by-sender transaction's per commitment point
183         pub first_per_commitment_point: PublicKey,
184         /// Optionally, a request to pre-set the to-sender output's scriptPubkey for when we collaboratively close
185         pub shutdown_scriptpubkey: OptionalField<Script>,
186 }
187
188 /// A funding_created message to be sent or received from a peer
189 #[derive(Clone, Debug, PartialEq)]
190 pub struct FundingCreated {
191         /// A temporary channel ID, until the funding is established
192         pub temporary_channel_id: [u8; 32],
193         /// The funding transaction ID
194         pub funding_txid: Txid,
195         /// The specific output index funding this channel
196         pub funding_output_index: u16,
197         /// The signature of the channel initiator (funder) on the initial commitment transaction
198         pub signature: Signature,
199 }
200
201 /// A funding_signed message to be sent or received from a peer
202 #[derive(Clone, Debug, PartialEq)]
203 pub struct FundingSigned {
204         /// The channel ID
205         pub channel_id: [u8; 32],
206         /// The signature of the channel acceptor (fundee) on the initial commitment transaction
207         pub signature: Signature,
208 }
209
210 /// A funding_locked message to be sent or received from a peer
211 #[derive(Clone, Debug, PartialEq)]
212 pub struct FundingLocked {
213         /// The channel ID
214         pub channel_id: [u8; 32],
215         /// The per-commitment point of the second commitment transaction
216         pub next_per_commitment_point: PublicKey,
217 }
218
219 /// A shutdown message to be sent or received from a peer
220 #[derive(Clone, Debug, PartialEq)]
221 pub struct Shutdown {
222         /// The channel ID
223         pub channel_id: [u8; 32],
224         /// The destination of this peer's funds on closing.
225         /// Must be in one of these forms: p2pkh, p2sh, p2wpkh, p2wsh.
226         pub scriptpubkey: Script,
227 }
228
229 /// The minimum and maximum fees which the sender is willing to place on the closing transaction.
230 /// This is provided in [`ClosingSigned`] by both sides to indicate the fee range they are willing
231 /// to use.
232 #[derive(Clone, Debug, PartialEq)]
233 pub struct ClosingSignedFeeRange {
234         /// The minimum absolute fee, in satoshis, which the sender is willing to place on the closing
235         /// transaction.
236         pub min_fee_satoshis: u64,
237         /// The maximum absolute fee, in satoshis, which the sender is willing to place on the closing
238         /// transaction.
239         pub max_fee_satoshis: u64,
240 }
241
242 /// A closing_signed message to be sent or received from a peer
243 #[derive(Clone, Debug, PartialEq)]
244 pub struct ClosingSigned {
245         /// The channel ID
246         pub channel_id: [u8; 32],
247         /// The proposed total fee for the closing transaction
248         pub fee_satoshis: u64,
249         /// A signature on the closing transaction
250         pub signature: Signature,
251         /// The minimum and maximum fees which the sender is willing to accept, provided only by new
252         /// nodes.
253         pub fee_range: Option<ClosingSignedFeeRange>,
254 }
255
256 /// An update_add_htlc message to be sent or received from a peer
257 #[derive(Clone, Debug, PartialEq)]
258 pub struct UpdateAddHTLC {
259         /// The channel ID
260         pub channel_id: [u8; 32],
261         /// The HTLC ID
262         pub htlc_id: u64,
263         /// The HTLC value in milli-satoshi
264         pub amount_msat: u64,
265         /// The payment hash, the pre-image of which controls HTLC redemption
266         pub payment_hash: PaymentHash,
267         /// The expiry height of the HTLC
268         pub cltv_expiry: u32,
269         pub(crate) onion_routing_packet: OnionPacket,
270 }
271
272 /// An update_fulfill_htlc message to be sent or received from a peer
273 #[derive(Clone, Debug, PartialEq)]
274 pub struct UpdateFulfillHTLC {
275         /// The channel ID
276         pub channel_id: [u8; 32],
277         /// The HTLC ID
278         pub htlc_id: u64,
279         /// The pre-image of the payment hash, allowing HTLC redemption
280         pub payment_preimage: PaymentPreimage,
281 }
282
283 /// An update_fail_htlc message to be sent or received from a peer
284 #[derive(Clone, Debug, PartialEq)]
285 pub struct UpdateFailHTLC {
286         /// The channel ID
287         pub channel_id: [u8; 32],
288         /// The HTLC ID
289         pub htlc_id: u64,
290         pub(crate) reason: OnionErrorPacket,
291 }
292
293 /// An update_fail_malformed_htlc message to be sent or received from a peer
294 #[derive(Clone, Debug, PartialEq)]
295 pub struct UpdateFailMalformedHTLC {
296         /// The channel ID
297         pub channel_id: [u8; 32],
298         /// The HTLC ID
299         pub htlc_id: u64,
300         pub(crate) sha256_of_onion: [u8; 32],
301         /// The failure code
302         pub failure_code: u16,
303 }
304
305 /// A commitment_signed message to be sent or received from a peer
306 #[derive(Clone, Debug, PartialEq)]
307 pub struct CommitmentSigned {
308         /// The channel ID
309         pub channel_id: [u8; 32],
310         /// A signature on the commitment transaction
311         pub signature: Signature,
312         /// Signatures on the HTLC transactions
313         pub htlc_signatures: Vec<Signature>,
314 }
315
316 /// A revoke_and_ack message to be sent or received from a peer
317 #[derive(Clone, Debug, PartialEq)]
318 pub struct RevokeAndACK {
319         /// The channel ID
320         pub channel_id: [u8; 32],
321         /// The secret corresponding to the per-commitment point
322         pub per_commitment_secret: [u8; 32],
323         /// The next sender-broadcast commitment transaction's per-commitment point
324         pub next_per_commitment_point: PublicKey,
325 }
326
327 /// An update_fee message to be sent or received from a peer
328 #[derive(Clone, Debug, PartialEq)]
329 pub struct UpdateFee {
330         /// The channel ID
331         pub channel_id: [u8; 32],
332         /// Fee rate per 1000-weight of the transaction
333         pub feerate_per_kw: u32,
334 }
335
336 #[derive(Clone, Debug, PartialEq)]
337 /// Proof that the sender knows the per-commitment secret of the previous commitment transaction.
338 /// This is used to convince the recipient that the channel is at a certain commitment
339 /// number even if they lost that data due to a local failure.  Of course, the peer may lie
340 /// and even later commitments may have been revoked.
341 pub struct DataLossProtect {
342         /// Proof that the sender knows the per-commitment secret of a specific commitment transaction
343         /// belonging to the recipient
344         pub your_last_per_commitment_secret: [u8; 32],
345         /// The sender's per-commitment point for their current commitment transaction
346         pub my_current_per_commitment_point: PublicKey,
347 }
348
349 /// A channel_reestablish message to be sent or received from a peer
350 #[derive(Clone, Debug, PartialEq)]
351 pub struct ChannelReestablish {
352         /// The channel ID
353         pub channel_id: [u8; 32],
354         /// The next commitment number for the sender
355         pub next_local_commitment_number: u64,
356         /// The next commitment number for the recipient
357         pub next_remote_commitment_number: u64,
358         /// Optionally, a field proving that next_remote_commitment_number-1 has been revoked
359         pub data_loss_protect: OptionalField<DataLossProtect>,
360 }
361
362 /// An announcement_signatures message to be sent or received from a peer
363 #[derive(Clone, Debug, PartialEq)]
364 pub struct AnnouncementSignatures {
365         /// The channel ID
366         pub channel_id: [u8; 32],
367         /// The short channel ID
368         pub short_channel_id: u64,
369         /// A signature by the node key
370         pub node_signature: Signature,
371         /// A signature by the funding key
372         pub bitcoin_signature: Signature,
373 }
374
375 /// An address which can be used to connect to a remote peer
376 #[derive(Clone, Debug, PartialEq)]
377 pub enum NetAddress {
378         /// An IPv4 address/port on which the peer is listening.
379         IPv4 {
380                 /// The 4-byte IPv4 address
381                 addr: [u8; 4],
382                 /// The port on which the node is listening
383                 port: u16,
384         },
385         /// An IPv6 address/port on which the peer is listening.
386         IPv6 {
387                 /// The 16-byte IPv6 address
388                 addr: [u8; 16],
389                 /// The port on which the node is listening
390                 port: u16,
391         },
392         /// An old-style Tor onion address/port on which the peer is listening.
393         OnionV2 {
394                 /// The bytes (usually encoded in base32 with ".onion" appended)
395                 addr: [u8; 10],
396                 /// The port on which the node is listening
397                 port: u16,
398         },
399         /// A new-style Tor onion address/port on which the peer is listening.
400         /// To create the human-readable "hostname", concatenate ed25519_pubkey, checksum, and version,
401         /// wrap as base32 and append ".onion".
402         OnionV3 {
403                 /// The ed25519 long-term public key of the peer
404                 ed25519_pubkey: [u8; 32],
405                 /// The checksum of the pubkey and version, as included in the onion address
406                 checksum: u16,
407                 /// The version byte, as defined by the Tor Onion v3 spec.
408                 version: u8,
409                 /// The port on which the node is listening
410                 port: u16,
411         },
412 }
413 impl NetAddress {
414         /// Gets the ID of this address type. Addresses in node_announcement messages should be sorted
415         /// by this.
416         pub(crate) fn get_id(&self) -> u8 {
417                 match self {
418                         &NetAddress::IPv4 {..} => { 1 },
419                         &NetAddress::IPv6 {..} => { 2 },
420                         &NetAddress::OnionV2 {..} => { 3 },
421                         &NetAddress::OnionV3 {..} => { 4 },
422                 }
423         }
424
425         /// Strict byte-length of address descriptor, 1-byte type not recorded
426         fn len(&self) -> u16 {
427                 match self {
428                         &NetAddress::IPv4 { .. } => { 6 },
429                         &NetAddress::IPv6 { .. } => { 18 },
430                         &NetAddress::OnionV2 { .. } => { 12 },
431                         &NetAddress::OnionV3 { .. } => { 37 },
432                 }
433         }
434
435         /// The maximum length of any address descriptor, not including the 1-byte type
436         pub(crate) const MAX_LEN: u16 = 37;
437 }
438
439 impl Writeable for NetAddress {
440         fn write<W: Writer>(&self, writer: &mut W) -> Result<(), io::Error> {
441                 match self {
442                         &NetAddress::IPv4 { ref addr, ref port } => {
443                                 1u8.write(writer)?;
444                                 addr.write(writer)?;
445                                 port.write(writer)?;
446                         },
447                         &NetAddress::IPv6 { ref addr, ref port } => {
448                                 2u8.write(writer)?;
449                                 addr.write(writer)?;
450                                 port.write(writer)?;
451                         },
452                         &NetAddress::OnionV2 { ref addr, ref port } => {
453                                 3u8.write(writer)?;
454                                 addr.write(writer)?;
455                                 port.write(writer)?;
456                         },
457                         &NetAddress::OnionV3 { ref ed25519_pubkey, ref checksum, ref version, ref port } => {
458                                 4u8.write(writer)?;
459                                 ed25519_pubkey.write(writer)?;
460                                 checksum.write(writer)?;
461                                 version.write(writer)?;
462                                 port.write(writer)?;
463                         }
464                 }
465                 Ok(())
466         }
467 }
468
469 impl Readable for Result<NetAddress, u8> {
470         fn read<R: Read>(reader: &mut R) -> Result<Result<NetAddress, u8>, DecodeError> {
471                 let byte = <u8 as Readable>::read(reader)?;
472                 match byte {
473                         1 => {
474                                 Ok(Ok(NetAddress::IPv4 {
475                                         addr: Readable::read(reader)?,
476                                         port: Readable::read(reader)?,
477                                 }))
478                         },
479                         2 => {
480                                 Ok(Ok(NetAddress::IPv6 {
481                                         addr: Readable::read(reader)?,
482                                         port: Readable::read(reader)?,
483                                 }))
484                         },
485                         3 => {
486                                 Ok(Ok(NetAddress::OnionV2 {
487                                         addr: Readable::read(reader)?,
488                                         port: Readable::read(reader)?,
489                                 }))
490                         },
491                         4 => {
492                                 Ok(Ok(NetAddress::OnionV3 {
493                                         ed25519_pubkey: Readable::read(reader)?,
494                                         checksum: Readable::read(reader)?,
495                                         version: Readable::read(reader)?,
496                                         port: Readable::read(reader)?,
497                                 }))
498                         },
499                         _ => return Ok(Err(byte)),
500                 }
501         }
502 }
503
504 impl Readable for NetAddress {
505         fn read<R: Read>(reader: &mut R) -> Result<NetAddress, DecodeError> {
506                 match Readable::read(reader) {
507                         Ok(Ok(res)) => Ok(res),
508                         Ok(Err(_)) => Err(DecodeError::UnknownVersion),
509                         Err(e) => Err(e),
510                 }
511         }
512 }
513
514
515 /// The unsigned part of a node_announcement
516 #[derive(Clone, Debug, PartialEq)]
517 pub struct UnsignedNodeAnnouncement {
518         /// The advertised features
519         pub features: NodeFeatures,
520         /// A strictly monotonic announcement counter, with gaps allowed
521         pub timestamp: u32,
522         /// The node_id this announcement originated from (don't rebroadcast the node_announcement back
523         /// to this node).
524         pub node_id: PublicKey,
525         /// An RGB color for UI purposes
526         pub rgb: [u8; 3],
527         /// An alias, for UI purposes.  This should be sanitized before use.  There is no guarantee
528         /// of uniqueness.
529         pub alias: [u8; 32],
530         /// List of addresses on which this node is reachable
531         pub addresses: Vec<NetAddress>,
532         pub(crate) excess_address_data: Vec<u8>,
533         pub(crate) excess_data: Vec<u8>,
534 }
535 #[derive(Clone, Debug, PartialEq)]
536 /// A node_announcement message to be sent or received from a peer
537 pub struct NodeAnnouncement {
538         /// The signature by the node key
539         pub signature: Signature,
540         /// The actual content of the announcement
541         pub contents: UnsignedNodeAnnouncement,
542 }
543
544 /// The unsigned part of a channel_announcement
545 #[derive(Clone, Debug, PartialEq)]
546 pub struct UnsignedChannelAnnouncement {
547         /// The advertised channel features
548         pub features: ChannelFeatures,
549         /// The genesis hash of the blockchain where the channel is to be opened
550         pub chain_hash: BlockHash,
551         /// The short channel ID
552         pub short_channel_id: u64,
553         /// One of the two node_ids which are endpoints of this channel
554         pub node_id_1: PublicKey,
555         /// The other of the two node_ids which are endpoints of this channel
556         pub node_id_2: PublicKey,
557         /// The funding key for the first node
558         pub bitcoin_key_1: PublicKey,
559         /// The funding key for the second node
560         pub bitcoin_key_2: PublicKey,
561         pub(crate) excess_data: Vec<u8>,
562 }
563 /// A channel_announcement message to be sent or received from a peer
564 #[derive(Clone, Debug, PartialEq)]
565 pub struct ChannelAnnouncement {
566         /// Authentication of the announcement by the first public node
567         pub node_signature_1: Signature,
568         /// Authentication of the announcement by the second public node
569         pub node_signature_2: Signature,
570         /// Proof of funding UTXO ownership by the first public node
571         pub bitcoin_signature_1: Signature,
572         /// Proof of funding UTXO ownership by the second public node
573         pub bitcoin_signature_2: Signature,
574         /// The actual announcement
575         pub contents: UnsignedChannelAnnouncement,
576 }
577
578 /// The unsigned part of a channel_update
579 #[derive(Clone, Debug, PartialEq)]
580 pub struct UnsignedChannelUpdate {
581         /// The genesis hash of the blockchain where the channel is to be opened
582         pub chain_hash: BlockHash,
583         /// The short channel ID
584         pub short_channel_id: u64,
585         /// A strictly monotonic announcement counter, with gaps allowed, specific to this channel
586         pub timestamp: u32,
587         /// Channel flags
588         pub flags: u8,
589         /// The number of blocks such that if:
590         /// `incoming_htlc.cltv_expiry < outgoing_htlc.cltv_expiry + cltv_expiry_delta`
591         /// then we need to fail the HTLC backwards. When forwarding an HTLC, cltv_expiry_delta determines
592         /// the outgoing HTLC's minimum cltv_expiry value -- so, if an incoming HTLC comes in with a
593         /// cltv_expiry of 100000, and the node we're forwarding to has a cltv_expiry_delta value of 10,
594         /// then we'll check that the outgoing HTLC's cltv_expiry value is at least 100010 before
595         /// forwarding. Note that the HTLC sender is the one who originally sets this value when
596         /// constructing the route.
597         pub cltv_expiry_delta: u16,
598         /// The minimum HTLC size incoming to sender, in milli-satoshi
599         pub htlc_minimum_msat: u64,
600         /// Optionally, the maximum HTLC value incoming to sender, in milli-satoshi
601         pub htlc_maximum_msat: OptionalField<u64>,
602         /// The base HTLC fee charged by sender, in milli-satoshi
603         pub fee_base_msat: u32,
604         /// The amount to fee multiplier, in micro-satoshi
605         pub fee_proportional_millionths: u32,
606         pub(crate) excess_data: Vec<u8>,
607 }
608 /// A channel_update message to be sent or received from a peer
609 #[derive(Clone, Debug, PartialEq)]
610 pub struct ChannelUpdate {
611         /// A signature of the channel update
612         pub signature: Signature,
613         /// The actual channel update
614         pub contents: UnsignedChannelUpdate,
615 }
616
617 /// A query_channel_range message is used to query a peer for channel
618 /// UTXOs in a range of blocks. The recipient of a query makes a best
619 /// effort to reply to the query using one or more reply_channel_range
620 /// messages.
621 #[derive(Clone, Debug, PartialEq)]
622 pub struct QueryChannelRange {
623         /// The genesis hash of the blockchain being queried
624         pub chain_hash: BlockHash,
625         /// The height of the first block for the channel UTXOs being queried
626         pub first_blocknum: u32,
627         /// The number of blocks to include in the query results
628         pub number_of_blocks: u32,
629 }
630
631 /// A reply_channel_range message is a reply to a query_channel_range
632 /// message. Multiple reply_channel_range messages can be sent in reply
633 /// to a single query_channel_range message. The query recipient makes a
634 /// best effort to respond based on their local network view which may
635 /// not be a perfect view of the network. The short_channel_ids in the
636 /// reply are encoded. We only support encoding_type=0 uncompressed
637 /// serialization and do not support encoding_type=1 zlib serialization.
638 #[derive(Clone, Debug, PartialEq)]
639 pub struct ReplyChannelRange {
640         /// The genesis hash of the blockchain being queried
641         pub chain_hash: BlockHash,
642         /// The height of the first block in the range of the reply
643         pub first_blocknum: u32,
644         /// The number of blocks included in the range of the reply
645         pub number_of_blocks: u32,
646         /// True when this is the final reply for a query
647         pub sync_complete: bool,
648         /// The short_channel_ids in the channel range
649         pub short_channel_ids: Vec<u64>,
650 }
651
652 /// A query_short_channel_ids message is used to query a peer for
653 /// routing gossip messages related to one or more short_channel_ids.
654 /// The query recipient will reply with the latest, if available,
655 /// channel_announcement, channel_update and node_announcement messages
656 /// it maintains for the requested short_channel_ids followed by a
657 /// reply_short_channel_ids_end message. The short_channel_ids sent in
658 /// this query are encoded. We only support encoding_type=0 uncompressed
659 /// serialization and do not support encoding_type=1 zlib serialization.
660 #[derive(Clone, Debug, PartialEq)]
661 pub struct QueryShortChannelIds {
662         /// The genesis hash of the blockchain being queried
663         pub chain_hash: BlockHash,
664         /// The short_channel_ids that are being queried
665         pub short_channel_ids: Vec<u64>,
666 }
667
668 /// A reply_short_channel_ids_end message is sent as a reply to a
669 /// query_short_channel_ids message. The query recipient makes a best
670 /// effort to respond based on their local network view which may not be
671 /// a perfect view of the network.
672 #[derive(Clone, Debug, PartialEq)]
673 pub struct ReplyShortChannelIdsEnd {
674         /// The genesis hash of the blockchain that was queried
675         pub chain_hash: BlockHash,
676         /// Indicates if the query recipient maintains up-to-date channel
677         /// information for the chain_hash
678         pub full_information: bool,
679 }
680
681 /// A gossip_timestamp_filter message is used by a node to request
682 /// gossip relay for messages in the requested time range when the
683 /// gossip_queries feature has been negotiated.
684 #[derive(Clone, Debug, PartialEq)]
685 pub struct GossipTimestampFilter {
686         /// The genesis hash of the blockchain for channel and node information
687         pub chain_hash: BlockHash,
688         /// The starting unix timestamp
689         pub first_timestamp: u32,
690         /// The range of information in seconds
691         pub timestamp_range: u32,
692 }
693
694 /// Encoding type for data compression of collections in gossip queries.
695 /// We do not support encoding_type=1 zlib serialization defined in BOLT #7.
696 enum EncodingType {
697         Uncompressed = 0x00,
698 }
699
700 /// Used to put an error message in a LightningError
701 #[derive(Clone, Debug)]
702 pub enum ErrorAction {
703         /// The peer took some action which made us think they were useless. Disconnect them.
704         DisconnectPeer {
705                 /// An error message which we should make an effort to send before we disconnect.
706                 msg: Option<ErrorMessage>
707         },
708         /// The peer did something harmless that we weren't able to process, just log and ignore
709         // New code should *not* use this. New code must use IgnoreAndLog, below!
710         IgnoreError,
711         /// The peer did something harmless that we weren't able to meaningfully process.
712         /// If the error is logged, log it at the given level.
713         IgnoreAndLog(logger::Level),
714         /// The peer did something incorrect. Tell them.
715         SendErrorMessage {
716                 /// The message to send.
717                 msg: ErrorMessage
718         },
719 }
720
721 /// An Err type for failure to process messages.
722 #[derive(Clone, Debug)]
723 pub struct LightningError {
724         /// A human-readable message describing the error
725         pub err: String,
726         /// The action which should be taken against the offending peer.
727         pub action: ErrorAction,
728 }
729
730 /// Struct used to return values from revoke_and_ack messages, containing a bunch of commitment
731 /// transaction updates if they were pending.
732 #[derive(Clone, Debug, PartialEq)]
733 pub struct CommitmentUpdate {
734         /// update_add_htlc messages which should be sent
735         pub update_add_htlcs: Vec<UpdateAddHTLC>,
736         /// update_fulfill_htlc messages which should be sent
737         pub update_fulfill_htlcs: Vec<UpdateFulfillHTLC>,
738         /// update_fail_htlc messages which should be sent
739         pub update_fail_htlcs: Vec<UpdateFailHTLC>,
740         /// update_fail_malformed_htlc messages which should be sent
741         pub update_fail_malformed_htlcs: Vec<UpdateFailMalformedHTLC>,
742         /// An update_fee message which should be sent
743         pub update_fee: Option<UpdateFee>,
744         /// Finally, the commitment_signed message which should be sent
745         pub commitment_signed: CommitmentSigned,
746 }
747
748 /// The information we received from a peer along the route of a payment we originated. This is
749 /// returned by ChannelMessageHandler::handle_update_fail_htlc to be passed into
750 /// RoutingMessageHandler::handle_htlc_fail_channel_update to update our network map.
751 #[derive(Clone, Debug, PartialEq)]
752 pub enum HTLCFailChannelUpdate {
753         /// We received an error which included a full ChannelUpdate message.
754         ChannelUpdateMessage {
755                 /// The unwrapped message we received
756                 msg: ChannelUpdate,
757         },
758         /// We received an error which indicated only that a channel has been closed
759         ChannelClosed {
760                 /// The short_channel_id which has now closed.
761                 short_channel_id: u64,
762                 /// when this true, this channel should be permanently removed from the
763                 /// consideration. Otherwise, this channel can be restored as new channel_update is received
764                 is_permanent: bool,
765         },
766         /// We received an error which indicated only that a node has failed
767         NodeFailure {
768                 /// The node_id that has failed.
769                 node_id: PublicKey,
770                 /// when this true, node should be permanently removed from the
771                 /// consideration. Otherwise, the channels connected to this node can be
772                 /// restored as new channel_update is received
773                 is_permanent: bool,
774         }
775 }
776
777 /// Messages could have optional fields to use with extended features
778 /// As we wish to serialize these differently from Option<T>s (Options get a tag byte, but
779 /// OptionalFeild simply gets Present if there are enough bytes to read into it), we have a
780 /// separate enum type for them.
781 /// (C-not exported) due to a free generic in T
782 #[derive(Clone, Debug, PartialEq)]
783 pub enum OptionalField<T> {
784         /// Optional field is included in message
785         Present(T),
786         /// Optional field is absent in message
787         Absent
788 }
789
790 /// A trait to describe an object which can receive channel messages.
791 ///
792 /// Messages MAY be called in parallel when they originate from different their_node_ids, however
793 /// they MUST NOT be called in parallel when the two calls have the same their_node_id.
794 pub trait ChannelMessageHandler : MessageSendEventsProvider {
795         //Channel init:
796         /// Handle an incoming open_channel message from the given peer.
797         fn handle_open_channel(&self, their_node_id: &PublicKey, their_features: InitFeatures, msg: &OpenChannel);
798         /// Handle an incoming accept_channel message from the given peer.
799         fn handle_accept_channel(&self, their_node_id: &PublicKey, their_features: InitFeatures, msg: &AcceptChannel);
800         /// Handle an incoming funding_created message from the given peer.
801         fn handle_funding_created(&self, their_node_id: &PublicKey, msg: &FundingCreated);
802         /// Handle an incoming funding_signed message from the given peer.
803         fn handle_funding_signed(&self, their_node_id: &PublicKey, msg: &FundingSigned);
804         /// Handle an incoming funding_locked message from the given peer.
805         fn handle_funding_locked(&self, their_node_id: &PublicKey, msg: &FundingLocked);
806
807         // Channl close:
808         /// Handle an incoming shutdown message from the given peer.
809         fn handle_shutdown(&self, their_node_id: &PublicKey, their_features: &InitFeatures, msg: &Shutdown);
810         /// Handle an incoming closing_signed message from the given peer.
811         fn handle_closing_signed(&self, their_node_id: &PublicKey, msg: &ClosingSigned);
812
813         // HTLC handling:
814         /// Handle an incoming update_add_htlc message from the given peer.
815         fn handle_update_add_htlc(&self, their_node_id: &PublicKey, msg: &UpdateAddHTLC);
816         /// Handle an incoming update_fulfill_htlc message from the given peer.
817         fn handle_update_fulfill_htlc(&self, their_node_id: &PublicKey, msg: &UpdateFulfillHTLC);
818         /// Handle an incoming update_fail_htlc message from the given peer.
819         fn handle_update_fail_htlc(&self, their_node_id: &PublicKey, msg: &UpdateFailHTLC);
820         /// Handle an incoming update_fail_malformed_htlc message from the given peer.
821         fn handle_update_fail_malformed_htlc(&self, their_node_id: &PublicKey, msg: &UpdateFailMalformedHTLC);
822         /// Handle an incoming commitment_signed message from the given peer.
823         fn handle_commitment_signed(&self, their_node_id: &PublicKey, msg: &CommitmentSigned);
824         /// Handle an incoming revoke_and_ack message from the given peer.
825         fn handle_revoke_and_ack(&self, their_node_id: &PublicKey, msg: &RevokeAndACK);
826
827         /// Handle an incoming update_fee message from the given peer.
828         fn handle_update_fee(&self, their_node_id: &PublicKey, msg: &UpdateFee);
829
830         // Channel-to-announce:
831         /// Handle an incoming announcement_signatures message from the given peer.
832         fn handle_announcement_signatures(&self, their_node_id: &PublicKey, msg: &AnnouncementSignatures);
833
834         // Connection loss/reestablish:
835         /// Indicates a connection to the peer failed/an existing connection was lost. If no connection
836         /// is believed to be possible in the future (eg they're sending us messages we don't
837         /// understand or indicate they require unknown feature bits), no_connection_possible is set
838         /// and any outstanding channels should be failed.
839         fn peer_disconnected(&self, their_node_id: &PublicKey, no_connection_possible: bool);
840
841         /// Handle a peer reconnecting, possibly generating channel_reestablish message(s).
842         fn peer_connected(&self, their_node_id: &PublicKey, msg: &Init);
843         /// Handle an incoming channel_reestablish message from the given peer.
844         fn handle_channel_reestablish(&self, their_node_id: &PublicKey, msg: &ChannelReestablish);
845
846         /// Handle an incoming channel update from the given peer.
847         fn handle_channel_update(&self, their_node_id: &PublicKey, msg: &ChannelUpdate);
848
849         // Error:
850         /// Handle an incoming error message from the given peer.
851         fn handle_error(&self, their_node_id: &PublicKey, msg: &ErrorMessage);
852 }
853
854 /// A trait to describe an object which can receive routing messages.
855 ///
856 /// # Implementor DoS Warnings
857 ///
858 /// For `gossip_queries` messages there are potential DoS vectors when handling
859 /// inbound queries. Implementors using an on-disk network graph should be aware of
860 /// repeated disk I/O for queries accessing different parts of the network graph.
861 pub trait RoutingMessageHandler : MessageSendEventsProvider {
862         /// Handle an incoming node_announcement message, returning true if it should be forwarded on,
863         /// false or returning an Err otherwise.
864         fn handle_node_announcement(&self, msg: &NodeAnnouncement) -> Result<bool, LightningError>;
865         /// Handle a channel_announcement message, returning true if it should be forwarded on, false
866         /// or returning an Err otherwise.
867         fn handle_channel_announcement(&self, msg: &ChannelAnnouncement) -> Result<bool, LightningError>;
868         /// Handle an incoming channel_update message, returning true if it should be forwarded on,
869         /// false or returning an Err otherwise.
870         fn handle_channel_update(&self, msg: &ChannelUpdate) -> Result<bool, LightningError>;
871         /// Handle some updates to the route graph that we learned due to an outbound failed payment.
872         fn handle_htlc_fail_channel_update(&self, update: &HTLCFailChannelUpdate);
873         /// Gets a subset of the channel announcements and updates required to dump our routing table
874         /// to a remote node, starting at the short_channel_id indicated by starting_point and
875         /// including the batch_amount entries immediately higher in numerical value than starting_point.
876         fn get_next_channel_announcements(&self, starting_point: u64, batch_amount: u8) -> Vec<(ChannelAnnouncement, Option<ChannelUpdate>, Option<ChannelUpdate>)>;
877         /// Gets a subset of the node announcements required to dump our routing table to a remote node,
878         /// starting at the node *after* the provided publickey and including batch_amount entries
879         /// immediately higher (as defined by <PublicKey as Ord>::cmp) than starting_point.
880         /// If None is provided for starting_point, we start at the first node.
881         fn get_next_node_announcements(&self, starting_point: Option<&PublicKey>, batch_amount: u8) -> Vec<NodeAnnouncement>;
882         /// Called when a connection is established with a peer. This can be used to
883         /// perform routing table synchronization using a strategy defined by the
884         /// implementor.
885         fn sync_routing_table(&self, their_node_id: &PublicKey, init: &Init);
886         /// Handles the reply of a query we initiated to learn about channels
887         /// for a given range of blocks. We can expect to receive one or more
888         /// replies to a single query.
889         fn handle_reply_channel_range(&self, their_node_id: &PublicKey, msg: ReplyChannelRange) -> Result<(), LightningError>;
890         /// Handles the reply of a query we initiated asking for routing gossip
891         /// messages for a list of channels. We should receive this message when
892         /// a node has completed its best effort to send us the pertaining routing
893         /// gossip messages.
894         fn handle_reply_short_channel_ids_end(&self, their_node_id: &PublicKey, msg: ReplyShortChannelIdsEnd) -> Result<(), LightningError>;
895         /// Handles when a peer asks us to send a list of short_channel_ids
896         /// for the requested range of blocks.
897         fn handle_query_channel_range(&self, their_node_id: &PublicKey, msg: QueryChannelRange) -> Result<(), LightningError>;
898         /// Handles when a peer asks us to send routing gossip messages for a
899         /// list of short_channel_ids.
900         fn handle_query_short_channel_ids(&self, their_node_id: &PublicKey, msg: QueryShortChannelIds) -> Result<(), LightningError>;
901 }
902
903 mod fuzzy_internal_msgs {
904         use prelude::*;
905         use ln::{PaymentPreimage, PaymentSecret};
906
907         // These types aren't intended to be pub, but are exposed for direct fuzzing (as we deserialize
908         // them from untrusted input):
909         #[derive(Clone)]
910         pub(crate) struct FinalOnionHopData {
911                 pub(crate) payment_secret: PaymentSecret,
912                 /// The total value, in msat, of the payment as received by the ultimate recipient.
913                 /// Message serialization may panic if this value is more than 21 million Bitcoin.
914                 pub(crate) total_msat: u64,
915         }
916
917         pub(crate) enum OnionHopDataFormat {
918                 Legacy { // aka Realm-0
919                         short_channel_id: u64,
920                 },
921                 NonFinalNode {
922                         short_channel_id: u64,
923                 },
924                 FinalNode {
925                         payment_data: Option<FinalOnionHopData>,
926                         keysend_preimage: Option<PaymentPreimage>,
927                 },
928         }
929
930         pub struct OnionHopData {
931                 pub(crate) format: OnionHopDataFormat,
932                 /// The value, in msat, of the payment after this hop's fee is deducted.
933                 /// Message serialization may panic if this value is more than 21 million Bitcoin.
934                 pub(crate) amt_to_forward: u64,
935                 pub(crate) outgoing_cltv_value: u32,
936                 // 12 bytes of 0-padding for Legacy format
937         }
938
939         pub struct DecodedOnionErrorPacket {
940                 pub(crate) hmac: [u8; 32],
941                 pub(crate) failuremsg: Vec<u8>,
942                 pub(crate) pad: Vec<u8>,
943         }
944 }
945 #[cfg(feature = "fuzztarget")]
946 pub use self::fuzzy_internal_msgs::*;
947 #[cfg(not(feature = "fuzztarget"))]
948 pub(crate) use self::fuzzy_internal_msgs::*;
949
950 #[derive(Clone)]
951 pub(crate) struct OnionPacket {
952         pub(crate) version: u8,
953         /// In order to ensure we always return an error on Onion decode in compliance with BOLT 4, we
954         /// have to deserialize OnionPackets contained in UpdateAddHTLCs even if the ephemeral public
955         /// key (here) is bogus, so we hold a Result instead of a PublicKey as we'd like.
956         pub(crate) public_key: Result<PublicKey, secp256k1::Error>,
957         pub(crate) hop_data: [u8; 20*65],
958         pub(crate) hmac: [u8; 32],
959 }
960
961 impl PartialEq for OnionPacket {
962         fn eq(&self, other: &OnionPacket) -> bool {
963                 for (i, j) in self.hop_data.iter().zip(other.hop_data.iter()) {
964                         if i != j { return false; }
965                 }
966                 self.version == other.version &&
967                         self.public_key == other.public_key &&
968                         self.hmac == other.hmac
969         }
970 }
971
972 impl fmt::Debug for OnionPacket {
973         fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
974                 f.write_fmt(format_args!("OnionPacket version {} with hmac {:?}", self.version, &self.hmac[..]))
975         }
976 }
977
978 #[derive(Clone, Debug, PartialEq)]
979 pub(crate) struct OnionErrorPacket {
980         // This really should be a constant size slice, but the spec lets these things be up to 128KB?
981         // (TODO) We limit it in decode to much lower...
982         pub(crate) data: Vec<u8>,
983 }
984
985 impl fmt::Display for DecodeError {
986         fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
987                 match *self {
988                         DecodeError::UnknownVersion => f.write_str("Unknown realm byte in Onion packet"),
989                         DecodeError::UnknownRequiredFeature => f.write_str("Unknown required feature preventing decode"),
990                         DecodeError::InvalidValue => f.write_str("Nonsense bytes didn't map to the type they were interpreted as"),
991                         DecodeError::ShortRead => f.write_str("Packet extended beyond the provided bytes"),
992                         DecodeError::BadLengthDescriptor => f.write_str("A length descriptor in the packet didn't describe the later data correctly"),
993                         DecodeError::Io(ref e) => e.fmt(f),
994                         DecodeError::UnsupportedCompression => f.write_str("We don't support receiving messages with zlib-compressed fields"),
995                 }
996         }
997 }
998
999 impl From<io::Error> for DecodeError {
1000         fn from(e: io::Error) -> Self {
1001                 if e.kind() == io::ErrorKind::UnexpectedEof {
1002                         DecodeError::ShortRead
1003                 } else {
1004                         DecodeError::Io(e.kind())
1005                 }
1006         }
1007 }
1008
1009 impl Writeable for OptionalField<Script> {
1010         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1011                 match *self {
1012                         OptionalField::Present(ref script) => {
1013                                 // Note that Writeable for script includes the 16-bit length tag for us
1014                                 script.write(w)?;
1015                         },
1016                         OptionalField::Absent => {}
1017                 }
1018                 Ok(())
1019         }
1020 }
1021
1022 impl Readable for OptionalField<Script> {
1023         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1024                 match <u16 as Readable>::read(r) {
1025                         Ok(len) => {
1026                                 let mut buf = vec![0; len as usize];
1027                                 r.read_exact(&mut buf)?;
1028                                 Ok(OptionalField::Present(Script::from(buf)))
1029                         },
1030                         Err(DecodeError::ShortRead) => Ok(OptionalField::Absent),
1031                         Err(e) => Err(e)
1032                 }
1033         }
1034 }
1035
1036 impl Writeable for OptionalField<u64> {
1037         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1038                 match *self {
1039                         OptionalField::Present(ref value) => {
1040                                 value.write(w)?;
1041                         },
1042                         OptionalField::Absent => {}
1043                 }
1044                 Ok(())
1045         }
1046 }
1047
1048 impl Readable for OptionalField<u64> {
1049         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1050                 let value: u64 = Readable::read(r)?;
1051                 Ok(OptionalField::Present(value))
1052         }
1053 }
1054
1055
1056 impl_writeable_msg!(AcceptChannel, {
1057         temporary_channel_id,
1058         dust_limit_satoshis,
1059         max_htlc_value_in_flight_msat,
1060         channel_reserve_satoshis,
1061         htlc_minimum_msat,
1062         minimum_depth,
1063         to_self_delay,
1064         max_accepted_htlcs,
1065         funding_pubkey,
1066         revocation_basepoint,
1067         payment_point,
1068         delayed_payment_basepoint,
1069         htlc_basepoint,
1070         first_per_commitment_point,
1071         shutdown_scriptpubkey
1072 }, {});
1073
1074 impl_writeable_msg!(AnnouncementSignatures, {
1075         channel_id,
1076         short_channel_id,
1077         node_signature,
1078         bitcoin_signature
1079 }, {});
1080
1081 impl Writeable for ChannelReestablish {
1082         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1083                 self.channel_id.write(w)?;
1084                 self.next_local_commitment_number.write(w)?;
1085                 self.next_remote_commitment_number.write(w)?;
1086                 match self.data_loss_protect {
1087                         OptionalField::Present(ref data_loss_protect) => {
1088                                 (*data_loss_protect).your_last_per_commitment_secret.write(w)?;
1089                                 (*data_loss_protect).my_current_per_commitment_point.write(w)?;
1090                         },
1091                         OptionalField::Absent => {}
1092                 }
1093                 Ok(())
1094         }
1095 }
1096
1097 impl Readable for ChannelReestablish{
1098         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1099                 Ok(Self {
1100                         channel_id: Readable::read(r)?,
1101                         next_local_commitment_number: Readable::read(r)?,
1102                         next_remote_commitment_number: Readable::read(r)?,
1103                         data_loss_protect: {
1104                                 match <[u8; 32] as Readable>::read(r) {
1105                                         Ok(your_last_per_commitment_secret) =>
1106                                                 OptionalField::Present(DataLossProtect {
1107                                                         your_last_per_commitment_secret,
1108                                                         my_current_per_commitment_point: Readable::read(r)?,
1109                                                 }),
1110                                         Err(DecodeError::ShortRead) => OptionalField::Absent,
1111                                         Err(e) => return Err(e)
1112                                 }
1113                         }
1114                 })
1115         }
1116 }
1117
1118 impl_writeable_msg!(ClosingSigned,
1119         { channel_id, fee_satoshis, signature },
1120         { (1, fee_range, option) }
1121 );
1122
1123 impl_writeable!(ClosingSignedFeeRange, {
1124         min_fee_satoshis,
1125         max_fee_satoshis
1126 });
1127
1128 impl_writeable_msg!(CommitmentSigned, {
1129         channel_id,
1130         signature,
1131         htlc_signatures
1132 }, {});
1133
1134 impl_writeable!(DecodedOnionErrorPacket, {
1135         hmac,
1136         failuremsg,
1137         pad
1138 });
1139
1140 impl_writeable_msg!(FundingCreated, {
1141         temporary_channel_id,
1142         funding_txid,
1143         funding_output_index,
1144         signature
1145 }, {});
1146
1147 impl_writeable_msg!(FundingSigned, {
1148         channel_id,
1149         signature
1150 }, {});
1151
1152 impl_writeable_msg!(FundingLocked, {
1153         channel_id,
1154         next_per_commitment_point,
1155 }, {});
1156
1157 impl Writeable for Init {
1158         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1159                 // global_features gets the bottom 13 bits of our features, and local_features gets all of
1160                 // our relevant feature bits. This keeps us compatible with old nodes.
1161                 self.features.write_up_to_13(w)?;
1162                 self.features.write(w)
1163         }
1164 }
1165
1166 impl Readable for Init {
1167         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1168                 let global_features: InitFeatures = Readable::read(r)?;
1169                 let features: InitFeatures = Readable::read(r)?;
1170                 Ok(Init {
1171                         features: features.or(global_features),
1172                 })
1173         }
1174 }
1175
1176 impl_writeable_msg!(OpenChannel, {
1177         chain_hash,
1178         temporary_channel_id,
1179         funding_satoshis,
1180         push_msat,
1181         dust_limit_satoshis,
1182         max_htlc_value_in_flight_msat,
1183         channel_reserve_satoshis,
1184         htlc_minimum_msat,
1185         feerate_per_kw,
1186         to_self_delay,
1187         max_accepted_htlcs,
1188         funding_pubkey,
1189         revocation_basepoint,
1190         payment_point,
1191         delayed_payment_basepoint,
1192         htlc_basepoint,
1193         first_per_commitment_point,
1194         channel_flags,
1195         shutdown_scriptpubkey
1196 }, {});
1197
1198 impl_writeable_msg!(RevokeAndACK, {
1199         channel_id,
1200         per_commitment_secret,
1201         next_per_commitment_point
1202 }, {});
1203
1204 impl_writeable_msg!(Shutdown, {
1205         channel_id,
1206         scriptpubkey
1207 }, {});
1208
1209 impl_writeable_msg!(UpdateFailHTLC, {
1210         channel_id,
1211         htlc_id,
1212         reason
1213 }, {});
1214
1215 impl_writeable_msg!(UpdateFailMalformedHTLC, {
1216         channel_id,
1217         htlc_id,
1218         sha256_of_onion,
1219         failure_code
1220 }, {});
1221
1222 impl_writeable_msg!(UpdateFee, {
1223         channel_id,
1224         feerate_per_kw
1225 }, {});
1226
1227 impl_writeable_msg!(UpdateFulfillHTLC, {
1228         channel_id,
1229         htlc_id,
1230         payment_preimage
1231 }, {});
1232
1233 // Note that this is written as a part of ChannelManager objects, and thus cannot change its
1234 // serialization format in a way which assumes we know the total serialized length/message end
1235 // position.
1236 impl_writeable!(OnionErrorPacket, {
1237         data
1238 });
1239
1240 // Note that this is written as a part of ChannelManager objects, and thus cannot change its
1241 // serialization format in a way which assumes we know the total serialized length/message end
1242 // position.
1243 impl Writeable for OnionPacket {
1244         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1245                 self.version.write(w)?;
1246                 match self.public_key {
1247                         Ok(pubkey) => pubkey.write(w)?,
1248                         Err(_) => [0u8;33].write(w)?,
1249                 }
1250                 w.write_all(&self.hop_data)?;
1251                 self.hmac.write(w)?;
1252                 Ok(())
1253         }
1254 }
1255
1256 impl Readable for OnionPacket {
1257         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1258                 Ok(OnionPacket {
1259                         version: Readable::read(r)?,
1260                         public_key: {
1261                                 let mut buf = [0u8;33];
1262                                 r.read_exact(&mut buf)?;
1263                                 PublicKey::from_slice(&buf)
1264                         },
1265                         hop_data: Readable::read(r)?,
1266                         hmac: Readable::read(r)?,
1267                 })
1268         }
1269 }
1270
1271 impl_writeable_msg!(UpdateAddHTLC, {
1272         channel_id,
1273         htlc_id,
1274         amount_msat,
1275         payment_hash,
1276         cltv_expiry,
1277         onion_routing_packet
1278 }, {});
1279
1280 impl Writeable for FinalOnionHopData {
1281         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1282                 self.payment_secret.0.write(w)?;
1283                 HighZeroBytesDroppedVarInt(self.total_msat).write(w)
1284         }
1285 }
1286
1287 impl Readable for FinalOnionHopData {
1288         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1289                 let secret: [u8; 32] = Readable::read(r)?;
1290                 let amt: HighZeroBytesDroppedVarInt<u64> = Readable::read(r)?;
1291                 Ok(Self { payment_secret: PaymentSecret(secret), total_msat: amt.0 })
1292         }
1293 }
1294
1295 impl Writeable for OnionHopData {
1296         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1297                 // Note that this should never be reachable if Rust-Lightning generated the message, as we
1298                 // check values are sane long before we get here, though its possible in the future
1299                 // user-generated messages may hit this.
1300                 if self.amt_to_forward > MAX_VALUE_MSAT { panic!("We should never be sending infinite/overflow onion payments"); }
1301                 match self.format {
1302                         OnionHopDataFormat::Legacy { short_channel_id } => {
1303                                 0u8.write(w)?;
1304                                 short_channel_id.write(w)?;
1305                                 self.amt_to_forward.write(w)?;
1306                                 self.outgoing_cltv_value.write(w)?;
1307                                 w.write_all(&[0;12])?;
1308                         },
1309                         OnionHopDataFormat::NonFinalNode { short_channel_id } => {
1310                                 encode_varint_length_prefixed_tlv!(w, {
1311                                         (2, HighZeroBytesDroppedVarInt(self.amt_to_forward), required),
1312                                         (4, HighZeroBytesDroppedVarInt(self.outgoing_cltv_value), required),
1313                                         (6, short_channel_id, required)
1314                                 });
1315                         },
1316                         OnionHopDataFormat::FinalNode { ref payment_data, ref keysend_preimage } => {
1317                                 if let Some(final_data) = payment_data {
1318                                         if final_data.total_msat > MAX_VALUE_MSAT { panic!("We should never be sending infinite/overflow onion payments"); }
1319                                 }
1320                                 encode_varint_length_prefixed_tlv!(w, {
1321                                         (2, HighZeroBytesDroppedVarInt(self.amt_to_forward), required),
1322                                         (4, HighZeroBytesDroppedVarInt(self.outgoing_cltv_value), required),
1323                                         (8, payment_data, option),
1324                                         (5482373484, keysend_preimage, option)
1325                                 });
1326                         },
1327                 }
1328                 Ok(())
1329         }
1330 }
1331
1332 impl Readable for OnionHopData {
1333         fn read<R: Read>(mut r: &mut R) -> Result<Self, DecodeError> {
1334                 use bitcoin::consensus::encode::{Decodable, Error, VarInt};
1335                 let v: VarInt = Decodable::consensus_decode(&mut r)
1336                         .map_err(|e| match e {
1337                                 Error::Io(ioe) => DecodeError::from(ioe),
1338                                 _ => DecodeError::InvalidValue
1339                         })?;
1340                 const LEGACY_ONION_HOP_FLAG: u64 = 0;
1341                 let (format, amt, cltv_value) = if v.0 != LEGACY_ONION_HOP_FLAG {
1342                         let mut rd = FixedLengthReader::new(r, v.0);
1343                         let mut amt = HighZeroBytesDroppedVarInt(0u64);
1344                         let mut cltv_value = HighZeroBytesDroppedVarInt(0u32);
1345                         let mut short_id: Option<u64> = None;
1346                         let mut payment_data: Option<FinalOnionHopData> = None;
1347                         let mut keysend_preimage: Option<PaymentPreimage> = None;
1348                         // The TLV type is chosen to be compatible with lnd and c-lightning.
1349                         decode_tlv_stream!(&mut rd, {
1350                                 (2, amt, required),
1351                                 (4, cltv_value, required),
1352                                 (6, short_id, option),
1353                                 (8, payment_data, option),
1354                                 (5482373484, keysend_preimage, option)
1355                         });
1356                         rd.eat_remaining().map_err(|_| DecodeError::ShortRead)?;
1357                         let format = if let Some(short_channel_id) = short_id {
1358                                 if payment_data.is_some() { return Err(DecodeError::InvalidValue); }
1359                                 OnionHopDataFormat::NonFinalNode {
1360                                         short_channel_id,
1361                                 }
1362                         } else {
1363                                 if let &Some(ref data) = &payment_data {
1364                                         if data.total_msat > MAX_VALUE_MSAT {
1365                                                 return Err(DecodeError::InvalidValue);
1366                                         }
1367                                 }
1368                                 OnionHopDataFormat::FinalNode {
1369                                         payment_data,
1370                                         keysend_preimage,
1371                                 }
1372                         };
1373                         (format, amt.0, cltv_value.0)
1374                 } else {
1375                         let format = OnionHopDataFormat::Legacy {
1376                                 short_channel_id: Readable::read(r)?,
1377                         };
1378                         let amt: u64 = Readable::read(r)?;
1379                         let cltv_value: u32 = Readable::read(r)?;
1380                         r.read_exact(&mut [0; 12])?;
1381                         (format, amt, cltv_value)
1382                 };
1383
1384                 if amt > MAX_VALUE_MSAT {
1385                         return Err(DecodeError::InvalidValue);
1386                 }
1387                 Ok(OnionHopData {
1388                         format,
1389                         amt_to_forward: amt,
1390                         outgoing_cltv_value: cltv_value,
1391                 })
1392         }
1393 }
1394
1395 impl Writeable for Ping {
1396         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1397                 self.ponglen.write(w)?;
1398                 vec![0u8; self.byteslen as usize].write(w)?; // size-unchecked write
1399                 Ok(())
1400         }
1401 }
1402
1403 impl Readable for Ping {
1404         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1405                 Ok(Ping {
1406                         ponglen: Readable::read(r)?,
1407                         byteslen: {
1408                                 let byteslen = Readable::read(r)?;
1409                                 r.read_exact(&mut vec![0u8; byteslen as usize][..])?;
1410                                 byteslen
1411                         }
1412                 })
1413         }
1414 }
1415
1416 impl Writeable for Pong {
1417         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1418                 vec![0u8; self.byteslen as usize].write(w)?; // size-unchecked write
1419                 Ok(())
1420         }
1421 }
1422
1423 impl Readable for Pong {
1424         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1425                 Ok(Pong {
1426                         byteslen: {
1427                                 let byteslen = Readable::read(r)?;
1428                                 r.read_exact(&mut vec![0u8; byteslen as usize][..])?;
1429                                 byteslen
1430                         }
1431                 })
1432         }
1433 }
1434
1435 impl Writeable for UnsignedChannelAnnouncement {
1436         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1437                 self.features.write(w)?;
1438                 self.chain_hash.write(w)?;
1439                 self.short_channel_id.write(w)?;
1440                 self.node_id_1.write(w)?;
1441                 self.node_id_2.write(w)?;
1442                 self.bitcoin_key_1.write(w)?;
1443                 self.bitcoin_key_2.write(w)?;
1444                 w.write_all(&self.excess_data[..])?;
1445                 Ok(())
1446         }
1447 }
1448
1449 impl Readable for UnsignedChannelAnnouncement {
1450         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1451                 Ok(Self {
1452                         features: Readable::read(r)?,
1453                         chain_hash: Readable::read(r)?,
1454                         short_channel_id: Readable::read(r)?,
1455                         node_id_1: Readable::read(r)?,
1456                         node_id_2: Readable::read(r)?,
1457                         bitcoin_key_1: Readable::read(r)?,
1458                         bitcoin_key_2: Readable::read(r)?,
1459                         excess_data: read_to_end(r)?,
1460                 })
1461         }
1462 }
1463
1464 impl_writeable!(ChannelAnnouncement, {
1465         node_signature_1,
1466         node_signature_2,
1467         bitcoin_signature_1,
1468         bitcoin_signature_2,
1469         contents
1470 });
1471
1472 impl Writeable for UnsignedChannelUpdate {
1473         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1474                 let mut message_flags: u8 = 0;
1475                 if let OptionalField::Present(_) = self.htlc_maximum_msat {
1476                         message_flags = 1;
1477                 }
1478                 self.chain_hash.write(w)?;
1479                 self.short_channel_id.write(w)?;
1480                 self.timestamp.write(w)?;
1481                 let all_flags = self.flags as u16 | ((message_flags as u16) << 8);
1482                 all_flags.write(w)?;
1483                 self.cltv_expiry_delta.write(w)?;
1484                 self.htlc_minimum_msat.write(w)?;
1485                 self.fee_base_msat.write(w)?;
1486                 self.fee_proportional_millionths.write(w)?;
1487                 self.htlc_maximum_msat.write(w)?;
1488                 w.write_all(&self.excess_data[..])?;
1489                 Ok(())
1490         }
1491 }
1492
1493 impl Readable for UnsignedChannelUpdate {
1494         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1495                 let has_htlc_maximum_msat;
1496                 Ok(Self {
1497                         chain_hash: Readable::read(r)?,
1498                         short_channel_id: Readable::read(r)?,
1499                         timestamp: Readable::read(r)?,
1500                         flags: {
1501                                 let flags: u16 = Readable::read(r)?;
1502                                 let message_flags = flags >> 8;
1503                                 has_htlc_maximum_msat = (message_flags as i32 & 1) == 1;
1504                                 flags as u8
1505                         },
1506                         cltv_expiry_delta: Readable::read(r)?,
1507                         htlc_minimum_msat: Readable::read(r)?,
1508                         fee_base_msat: Readable::read(r)?,
1509                         fee_proportional_millionths: Readable::read(r)?,
1510                         htlc_maximum_msat: if has_htlc_maximum_msat { Readable::read(r)? } else { OptionalField::Absent },
1511                         excess_data: read_to_end(r)?,
1512                 })
1513         }
1514 }
1515
1516 impl_writeable!(ChannelUpdate, {
1517         signature,
1518         contents
1519 });
1520
1521 impl Writeable for ErrorMessage {
1522         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1523                 self.channel_id.write(w)?;
1524                 (self.data.len() as u16).write(w)?;
1525                 w.write_all(self.data.as_bytes())?;
1526                 Ok(())
1527         }
1528 }
1529
1530 impl Readable for ErrorMessage {
1531         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1532                 Ok(Self {
1533                         channel_id: Readable::read(r)?,
1534                         data: {
1535                                 let mut sz: usize = <u16 as Readable>::read(r)? as usize;
1536                                 let data = read_to_end(r)?;
1537                                 sz = cmp::min(data.len(), sz);
1538                                 match String::from_utf8(data[..sz as usize].to_vec()) {
1539                                         Ok(s) => s,
1540                                         Err(_) => return Err(DecodeError::InvalidValue),
1541                                 }
1542                         }
1543                 })
1544         }
1545 }
1546
1547 impl Writeable for UnsignedNodeAnnouncement {
1548         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1549                 self.features.write(w)?;
1550                 self.timestamp.write(w)?;
1551                 self.node_id.write(w)?;
1552                 w.write_all(&self.rgb)?;
1553                 self.alias.write(w)?;
1554
1555                 let mut addr_len = 0;
1556                 for addr in self.addresses.iter() {
1557                         addr_len += 1 + addr.len();
1558                 }
1559                 (addr_len + self.excess_address_data.len() as u16).write(w)?;
1560                 for addr in self.addresses.iter() {
1561                         addr.write(w)?;
1562                 }
1563                 w.write_all(&self.excess_address_data[..])?;
1564                 w.write_all(&self.excess_data[..])?;
1565                 Ok(())
1566         }
1567 }
1568
1569 impl Readable for UnsignedNodeAnnouncement {
1570         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1571                 let features: NodeFeatures = Readable::read(r)?;
1572                 let timestamp: u32 = Readable::read(r)?;
1573                 let node_id: PublicKey = Readable::read(r)?;
1574                 let mut rgb = [0; 3];
1575                 r.read_exact(&mut rgb)?;
1576                 let alias: [u8; 32] = Readable::read(r)?;
1577
1578                 let addr_len: u16 = Readable::read(r)?;
1579                 let mut addresses: Vec<NetAddress> = Vec::new();
1580                 let mut addr_readpos = 0;
1581                 let mut excess = false;
1582                 let mut excess_byte = 0;
1583                 loop {
1584                         if addr_len <= addr_readpos { break; }
1585                         match Readable::read(r) {
1586                                 Ok(Ok(addr)) => {
1587                                         if addr_len < addr_readpos + 1 + addr.len() {
1588                                                 return Err(DecodeError::BadLengthDescriptor);
1589                                         }
1590                                         addr_readpos += (1 + addr.len()) as u16;
1591                                         addresses.push(addr);
1592                                 },
1593                                 Ok(Err(unknown_descriptor)) => {
1594                                         excess = true;
1595                                         excess_byte = unknown_descriptor;
1596                                         break;
1597                                 },
1598                                 Err(DecodeError::ShortRead) => return Err(DecodeError::BadLengthDescriptor),
1599                                 Err(e) => return Err(e),
1600                         }
1601                 }
1602
1603                 let mut excess_data = vec![];
1604                 let excess_address_data = if addr_readpos < addr_len {
1605                         let mut excess_address_data = vec![0; (addr_len - addr_readpos) as usize];
1606                         r.read_exact(&mut excess_address_data[if excess { 1 } else { 0 }..])?;
1607                         if excess {
1608                                 excess_address_data[0] = excess_byte;
1609                         }
1610                         excess_address_data
1611                 } else {
1612                         if excess {
1613                                 excess_data.push(excess_byte);
1614                         }
1615                         Vec::new()
1616                 };
1617                 excess_data.extend(read_to_end(r)?.iter());
1618                 Ok(UnsignedNodeAnnouncement {
1619                         features,
1620                         timestamp,
1621                         node_id,
1622                         rgb,
1623                         alias,
1624                         addresses,
1625                         excess_address_data,
1626                         excess_data,
1627                 })
1628         }
1629 }
1630
1631 impl_writeable!(NodeAnnouncement, {
1632         signature,
1633         contents
1634 });
1635
1636 impl Readable for QueryShortChannelIds {
1637         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1638                 let chain_hash: BlockHash = Readable::read(r)?;
1639
1640                 let encoding_len: u16 = Readable::read(r)?;
1641                 let encoding_type: u8 = Readable::read(r)?;
1642
1643                 // Must be encoding_type=0 uncompressed serialization. We do not
1644                 // support encoding_type=1 zlib serialization.
1645                 if encoding_type != EncodingType::Uncompressed as u8 {
1646                         return Err(DecodeError::UnsupportedCompression);
1647                 }
1648
1649                 // We expect the encoding_len to always includes the 1-byte
1650                 // encoding_type and that short_channel_ids are 8-bytes each
1651                 if encoding_len == 0 || (encoding_len - 1) % 8 != 0 {
1652                         return Err(DecodeError::InvalidValue);
1653                 }
1654
1655                 // Read short_channel_ids (8-bytes each), for the u16 encoding_len
1656                 // less the 1-byte encoding_type
1657                 let short_channel_id_count: u16 = (encoding_len - 1)/8;
1658                 let mut short_channel_ids = Vec::with_capacity(short_channel_id_count as usize);
1659                 for _ in 0..short_channel_id_count {
1660                         short_channel_ids.push(Readable::read(r)?);
1661                 }
1662
1663                 Ok(QueryShortChannelIds {
1664                         chain_hash,
1665                         short_channel_ids,
1666                 })
1667         }
1668 }
1669
1670 impl Writeable for QueryShortChannelIds {
1671         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1672                 // Calculated from 1-byte encoding_type plus 8-bytes per short_channel_id
1673                 let encoding_len: u16 = 1 + self.short_channel_ids.len() as u16 * 8;
1674
1675                 self.chain_hash.write(w)?;
1676                 encoding_len.write(w)?;
1677
1678                 // We only support type=0 uncompressed serialization
1679                 (EncodingType::Uncompressed as u8).write(w)?;
1680
1681                 for scid in self.short_channel_ids.iter() {
1682                         scid.write(w)?;
1683                 }
1684
1685                 Ok(())
1686         }
1687 }
1688
1689 impl_writeable_msg!(ReplyShortChannelIdsEnd, {
1690         chain_hash,
1691         full_information,
1692 }, {});
1693
1694 impl QueryChannelRange {
1695         /**
1696          * Calculates the overflow safe ending block height for the query.
1697          * Overflow returns `0xffffffff`, otherwise returns `first_blocknum + number_of_blocks`
1698          */
1699         pub fn end_blocknum(&self) -> u32 {
1700                 match self.first_blocknum.checked_add(self.number_of_blocks) {
1701                         Some(block) => block,
1702                         None => u32::max_value(),
1703                 }
1704         }
1705 }
1706
1707 impl_writeable_msg!(QueryChannelRange, {
1708         chain_hash,
1709         first_blocknum,
1710         number_of_blocks
1711 }, {});
1712
1713 impl Readable for ReplyChannelRange {
1714         fn read<R: Read>(r: &mut R) -> Result<Self, DecodeError> {
1715                 let chain_hash: BlockHash = Readable::read(r)?;
1716                 let first_blocknum: u32 = Readable::read(r)?;
1717                 let number_of_blocks: u32 = Readable::read(r)?;
1718                 let sync_complete: bool = Readable::read(r)?;
1719
1720                 let encoding_len: u16 = Readable::read(r)?;
1721                 let encoding_type: u8 = Readable::read(r)?;
1722
1723                 // Must be encoding_type=0 uncompressed serialization. We do not
1724                 // support encoding_type=1 zlib serialization.
1725                 if encoding_type != EncodingType::Uncompressed as u8 {
1726                         return Err(DecodeError::UnsupportedCompression);
1727                 }
1728
1729                 // We expect the encoding_len to always includes the 1-byte
1730                 // encoding_type and that short_channel_ids are 8-bytes each
1731                 if encoding_len == 0 || (encoding_len - 1) % 8 != 0 {
1732                         return Err(DecodeError::InvalidValue);
1733                 }
1734
1735                 // Read short_channel_ids (8-bytes each), for the u16 encoding_len
1736                 // less the 1-byte encoding_type
1737                 let short_channel_id_count: u16 = (encoding_len - 1)/8;
1738                 let mut short_channel_ids = Vec::with_capacity(short_channel_id_count as usize);
1739                 for _ in 0..short_channel_id_count {
1740                         short_channel_ids.push(Readable::read(r)?);
1741                 }
1742
1743                 Ok(ReplyChannelRange {
1744                         chain_hash,
1745                         first_blocknum,
1746                         number_of_blocks,
1747                         sync_complete,
1748                         short_channel_ids
1749                 })
1750         }
1751 }
1752
1753 impl Writeable for ReplyChannelRange {
1754         fn write<W: Writer>(&self, w: &mut W) -> Result<(), io::Error> {
1755                 let encoding_len: u16 = 1 + self.short_channel_ids.len() as u16 * 8;
1756                 self.chain_hash.write(w)?;
1757                 self.first_blocknum.write(w)?;
1758                 self.number_of_blocks.write(w)?;
1759                 self.sync_complete.write(w)?;
1760
1761                 encoding_len.write(w)?;
1762                 (EncodingType::Uncompressed as u8).write(w)?;
1763                 for scid in self.short_channel_ids.iter() {
1764                         scid.write(w)?;
1765                 }
1766
1767                 Ok(())
1768         }
1769 }
1770
1771 impl_writeable_msg!(GossipTimestampFilter, {
1772         chain_hash,
1773         first_timestamp,
1774         timestamp_range,
1775 }, {});
1776
1777 #[cfg(test)]
1778 mod tests {
1779         use hex;
1780         use ln::{PaymentPreimage, PaymentHash, PaymentSecret};
1781         use ln::msgs;
1782         use ln::msgs::{ChannelFeatures, FinalOnionHopData, InitFeatures, NodeFeatures, OptionalField, OnionErrorPacket, OnionHopDataFormat};
1783         use util::ser::{Writeable, Readable};
1784
1785         use bitcoin::hashes::hex::FromHex;
1786         use bitcoin::util::address::Address;
1787         use bitcoin::network::constants::Network;
1788         use bitcoin::blockdata::script::Builder;
1789         use bitcoin::blockdata::opcodes;
1790         use bitcoin::hash_types::{Txid, BlockHash};
1791
1792         use bitcoin::secp256k1::key::{PublicKey,SecretKey};
1793         use bitcoin::secp256k1::{Secp256k1, Message};
1794
1795         use io::Cursor;
1796         use prelude::*;
1797
1798         #[test]
1799         fn encoding_channel_reestablish_no_secret() {
1800                 let cr = msgs::ChannelReestablish {
1801                         channel_id: [4, 0, 0, 0, 0, 0, 0, 0, 5, 0, 0, 0, 0, 0, 0, 0, 6, 0, 0, 0, 0, 0, 0, 0, 7, 0, 0, 0, 0, 0, 0, 0],
1802                         next_local_commitment_number: 3,
1803                         next_remote_commitment_number: 4,
1804                         data_loss_protect: OptionalField::Absent,
1805                 };
1806
1807                 let encoded_value = cr.encode();
1808                 assert_eq!(
1809                         encoded_value,
1810                         vec![4, 0, 0, 0, 0, 0, 0, 0, 5, 0, 0, 0, 0, 0, 0, 0, 6, 0, 0, 0, 0, 0, 0, 0, 7, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 3, 0, 0, 0, 0, 0, 0, 0, 4]
1811                 );
1812         }
1813
1814         #[test]
1815         fn encoding_channel_reestablish_with_secret() {
1816                 let public_key = {
1817                         let secp_ctx = Secp256k1::new();
1818                         PublicKey::from_secret_key(&secp_ctx, &SecretKey::from_slice(&hex::decode("0101010101010101010101010101010101010101010101010101010101010101").unwrap()[..]).unwrap())
1819                 };
1820
1821                 let cr = msgs::ChannelReestablish {
1822                         channel_id: [4, 0, 0, 0, 0, 0, 0, 0, 5, 0, 0, 0, 0, 0, 0, 0, 6, 0, 0, 0, 0, 0, 0, 0, 7, 0, 0, 0, 0, 0, 0, 0],
1823                         next_local_commitment_number: 3,
1824                         next_remote_commitment_number: 4,
1825                         data_loss_protect: OptionalField::Present(msgs::DataLossProtect { your_last_per_commitment_secret: [9;32], my_current_per_commitment_point: public_key}),
1826                 };
1827
1828                 let encoded_value = cr.encode();
1829                 assert_eq!(
1830                         encoded_value,
1831                         vec![4, 0, 0, 0, 0, 0, 0, 0, 5, 0, 0, 0, 0, 0, 0, 0, 6, 0, 0, 0, 0, 0, 0, 0, 7, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 3, 0, 0, 0, 0, 0, 0, 0, 4, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 3, 27, 132, 197, 86, 123, 18, 100, 64, 153, 93, 62, 213, 170, 186, 5, 101, 215, 30, 24, 52, 96, 72, 25, 255, 156, 23, 245, 233, 213, 221, 7, 143]
1832                 );
1833         }
1834
1835         macro_rules! get_keys_from {
1836                 ($slice: expr, $secp_ctx: expr) => {
1837                         {
1838                                 let privkey = SecretKey::from_slice(&hex::decode($slice).unwrap()[..]).unwrap();
1839                                 let pubkey = PublicKey::from_secret_key(&$secp_ctx, &privkey);
1840                                 (privkey, pubkey)
1841                         }
1842                 }
1843         }
1844
1845         macro_rules! get_sig_on {
1846                 ($privkey: expr, $ctx: expr, $string: expr) => {
1847                         {
1848                                 let sighash = Message::from_slice(&$string.into_bytes()[..]).unwrap();
1849                                 $ctx.sign(&sighash, &$privkey)
1850                         }
1851                 }
1852         }
1853
1854         #[test]
1855         fn encoding_announcement_signatures() {
1856                 let secp_ctx = Secp256k1::new();
1857                 let (privkey, _) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
1858                 let sig_1 = get_sig_on!(privkey, secp_ctx, String::from("01010101010101010101010101010101"));
1859                 let sig_2 = get_sig_on!(privkey, secp_ctx, String::from("02020202020202020202020202020202"));
1860                 let announcement_signatures = msgs::AnnouncementSignatures {
1861                         channel_id: [4, 0, 0, 0, 0, 0, 0, 0, 5, 0, 0, 0, 0, 0, 0, 0, 6, 0, 0, 0, 0, 0, 0, 0, 7, 0, 0, 0, 0, 0, 0, 0],
1862                         short_channel_id: 2316138423780173,
1863                         node_signature: sig_1,
1864                         bitcoin_signature: sig_2,
1865                 };
1866
1867                 let encoded_value = announcement_signatures.encode();
1868                 assert_eq!(encoded_value, hex::decode("040000000000000005000000000000000600000000000000070000000000000000083a840000034dd977cb9b53d93a6ff64bb5f1e158b4094b66e798fb12911168a3ccdf80a83096340a6a95da0ae8d9f776528eecdbb747eb6b545495a4319ed5378e35b21e073acf9953cef4700860f5967838eba2bae89288ad188ebf8b20bf995c3ea53a26df1876d0a3a0e13172ba286a673140190c02ba9da60a2e43a745188c8a83c7f3ef").unwrap());
1869         }
1870
1871         fn do_encoding_channel_announcement(unknown_features_bits: bool, excess_data: bool) {
1872                 let secp_ctx = Secp256k1::new();
1873                 let (privkey_1, pubkey_1) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
1874                 let (privkey_2, pubkey_2) = get_keys_from!("0202020202020202020202020202020202020202020202020202020202020202", secp_ctx);
1875                 let (privkey_3, pubkey_3) = get_keys_from!("0303030303030303030303030303030303030303030303030303030303030303", secp_ctx);
1876                 let (privkey_4, pubkey_4) = get_keys_from!("0404040404040404040404040404040404040404040404040404040404040404", secp_ctx);
1877                 let sig_1 = get_sig_on!(privkey_1, secp_ctx, String::from("01010101010101010101010101010101"));
1878                 let sig_2 = get_sig_on!(privkey_2, secp_ctx, String::from("01010101010101010101010101010101"));
1879                 let sig_3 = get_sig_on!(privkey_3, secp_ctx, String::from("01010101010101010101010101010101"));
1880                 let sig_4 = get_sig_on!(privkey_4, secp_ctx, String::from("01010101010101010101010101010101"));
1881                 let mut features = ChannelFeatures::known();
1882                 if unknown_features_bits {
1883                         features = ChannelFeatures::from_le_bytes(vec![0xFF, 0xFF]);
1884                 }
1885                 let unsigned_channel_announcement = msgs::UnsignedChannelAnnouncement {
1886                         features,
1887                         chain_hash: BlockHash::from_hex("6fe28c0ab6f1b372c1a6a246ae63f74f931e8365e15a089c68d6190000000000").unwrap(),
1888                         short_channel_id: 2316138423780173,
1889                         node_id_1: pubkey_1,
1890                         node_id_2: pubkey_2,
1891                         bitcoin_key_1: pubkey_3,
1892                         bitcoin_key_2: pubkey_4,
1893                         excess_data: if excess_data { vec![10, 0, 0, 20, 0, 0, 30, 0, 0, 40] } else { Vec::new() },
1894                 };
1895                 let channel_announcement = msgs::ChannelAnnouncement {
1896                         node_signature_1: sig_1,
1897                         node_signature_2: sig_2,
1898                         bitcoin_signature_1: sig_3,
1899                         bitcoin_signature_2: sig_4,
1900                         contents: unsigned_channel_announcement,
1901                 };
1902                 let encoded_value = channel_announcement.encode();
1903                 let mut target_value = hex::decode("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").unwrap();
1904                 if unknown_features_bits {
1905                         target_value.append(&mut hex::decode("0002ffff").unwrap());
1906                 } else {
1907                         target_value.append(&mut hex::decode("0000").unwrap());
1908                 }
1909                 target_value.append(&mut hex::decode("000000000019d6689c085ae165831e934ff763ae46a2a6c172b3f1b60a8ce26f").unwrap());
1910                 target_value.append(&mut hex::decode("00083a840000034d031b84c5567b126440995d3ed5aaba0565d71e1834604819ff9c17f5e9d5dd078f024d4b6cd1361032ca9bd2aeb9d900aa4d45d9ead80ac9423374c451a7254d076602531fe6068134503d2723133227c867ac8fa6c83c537e9a44c3c5bdbdcb1fe33703462779ad4aad39514614751a71085f2f10e1c7a593e4e030efb5b8721ce55b0b").unwrap());
1911                 if excess_data {
1912                         target_value.append(&mut hex::decode("0a00001400001e000028").unwrap());
1913                 }
1914                 assert_eq!(encoded_value, target_value);
1915         }
1916
1917         #[test]
1918         fn encoding_channel_announcement() {
1919                 do_encoding_channel_announcement(true, false);
1920                 do_encoding_channel_announcement(false, true);
1921                 do_encoding_channel_announcement(false, false);
1922                 do_encoding_channel_announcement(true, true);
1923         }
1924
1925         fn do_encoding_node_announcement(unknown_features_bits: bool, ipv4: bool, ipv6: bool, onionv2: bool, onionv3: bool, excess_address_data: bool, excess_data: bool) {
1926                 let secp_ctx = Secp256k1::new();
1927                 let (privkey_1, pubkey_1) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
1928                 let sig_1 = get_sig_on!(privkey_1, secp_ctx, String::from("01010101010101010101010101010101"));
1929                 let features = if unknown_features_bits {
1930                         NodeFeatures::from_le_bytes(vec![0xFF, 0xFF])
1931                 } else {
1932                         // Set to some features we may support
1933                         NodeFeatures::from_le_bytes(vec![2 | 1 << 5])
1934                 };
1935                 let mut addresses = Vec::new();
1936                 if ipv4 {
1937                         addresses.push(msgs::NetAddress::IPv4 {
1938                                 addr: [255, 254, 253, 252],
1939                                 port: 9735
1940                         });
1941                 }
1942                 if ipv6 {
1943                         addresses.push(msgs::NetAddress::IPv6 {
1944                                 addr: [255, 254, 253, 252, 251, 250, 249, 248, 247, 246, 245, 244, 243, 242, 241, 240],
1945                                 port: 9735
1946                         });
1947                 }
1948                 if onionv2 {
1949                         addresses.push(msgs::NetAddress::OnionV2 {
1950                                 addr: [255, 254, 253, 252, 251, 250, 249, 248, 247, 246],
1951                                 port: 9735
1952                         });
1953                 }
1954                 if onionv3 {
1955                         addresses.push(msgs::NetAddress::OnionV3 {
1956                                 ed25519_pubkey: [255, 254, 253, 252, 251, 250, 249, 248, 247, 246, 245, 244, 243, 242, 241, 240, 239, 238, 237, 236, 235, 234, 233, 232, 231, 230, 229, 228, 227, 226, 225, 224],
1957                                 checksum: 32,
1958                                 version: 16,
1959                                 port: 9735
1960                         });
1961                 }
1962                 let mut addr_len = 0;
1963                 for addr in &addresses {
1964                         addr_len += addr.len() + 1;
1965                 }
1966                 let unsigned_node_announcement = msgs::UnsignedNodeAnnouncement {
1967                         features,
1968                         timestamp: 20190119,
1969                         node_id: pubkey_1,
1970                         rgb: [32; 3],
1971                         alias: [16;32],
1972                         addresses,
1973                         excess_address_data: if excess_address_data { vec![33, 108, 40, 11, 83, 149, 162, 84, 110, 126, 75, 38, 99, 224, 79, 129, 22, 34, 241, 90, 79, 146, 232, 58, 162, 233, 43, 162, 165, 115, 193, 57, 20, 44, 84, 174, 99, 7, 42, 30, 193, 238, 125, 192, 192, 75, 222, 92, 132, 120, 6, 23, 42, 160, 92, 146, 194, 42, 232, 227, 8, 209, 210, 105] } else { Vec::new() },
1974                         excess_data: if excess_data { vec![59, 18, 204, 25, 92, 224, 162, 209, 189, 166, 168, 139, 239, 161, 159, 160, 127, 81, 202, 167, 92, 232, 56, 55, 242, 137, 101, 96, 11, 138, 172, 171, 8, 85, 255, 176, 231, 65, 236, 95, 124, 65, 66, 30, 152, 41, 169, 212, 134, 17, 200, 200, 49, 247, 27, 229, 234, 115, 230, 101, 148, 151, 127, 253] } else { Vec::new() },
1975                 };
1976                 addr_len += unsigned_node_announcement.excess_address_data.len() as u16;
1977                 let node_announcement = msgs::NodeAnnouncement {
1978                         signature: sig_1,
1979                         contents: unsigned_node_announcement,
1980                 };
1981                 let encoded_value = node_announcement.encode();
1982                 let mut target_value = hex::decode("d977cb9b53d93a6ff64bb5f1e158b4094b66e798fb12911168a3ccdf80a83096340a6a95da0ae8d9f776528eecdbb747eb6b545495a4319ed5378e35b21e073a").unwrap();
1983                 if unknown_features_bits {
1984                         target_value.append(&mut hex::decode("0002ffff").unwrap());
1985                 } else {
1986                         target_value.append(&mut hex::decode("000122").unwrap());
1987                 }
1988                 target_value.append(&mut hex::decode("013413a7031b84c5567b126440995d3ed5aaba0565d71e1834604819ff9c17f5e9d5dd078f2020201010101010101010101010101010101010101010101010101010101010101010").unwrap());
1989                 target_value.append(&mut vec![(addr_len >> 8) as u8, addr_len as u8]);
1990                 if ipv4 {
1991                         target_value.append(&mut hex::decode("01fffefdfc2607").unwrap());
1992                 }
1993                 if ipv6 {
1994                         target_value.append(&mut hex::decode("02fffefdfcfbfaf9f8f7f6f5f4f3f2f1f02607").unwrap());
1995                 }
1996                 if onionv2 {
1997                         target_value.append(&mut hex::decode("03fffefdfcfbfaf9f8f7f62607").unwrap());
1998                 }
1999                 if onionv3 {
2000                         target_value.append(&mut hex::decode("04fffefdfcfbfaf9f8f7f6f5f4f3f2f1f0efeeedecebeae9e8e7e6e5e4e3e2e1e00020102607").unwrap());
2001                 }
2002                 if excess_address_data {
2003                         target_value.append(&mut hex::decode("216c280b5395a2546e7e4b2663e04f811622f15a4f92e83aa2e92ba2a573c139142c54ae63072a1ec1ee7dc0c04bde5c847806172aa05c92c22ae8e308d1d269").unwrap());
2004                 }
2005                 if excess_data {
2006                         target_value.append(&mut hex::decode("3b12cc195ce0a2d1bda6a88befa19fa07f51caa75ce83837f28965600b8aacab0855ffb0e741ec5f7c41421e9829a9d48611c8c831f71be5ea73e66594977ffd").unwrap());
2007                 }
2008                 assert_eq!(encoded_value, target_value);
2009         }
2010
2011         #[test]
2012         fn encoding_node_announcement() {
2013                 do_encoding_node_announcement(true, true, true, true, true, true, true);
2014                 do_encoding_node_announcement(false, false, false, false, false, false, false);
2015                 do_encoding_node_announcement(false, true, false, false, false, false, false);
2016                 do_encoding_node_announcement(false, false, true, false, false, false, false);
2017                 do_encoding_node_announcement(false, false, false, true, false, false, false);
2018                 do_encoding_node_announcement(false, false, false, false, true, false, false);
2019                 do_encoding_node_announcement(false, false, false, false, false, true, false);
2020                 do_encoding_node_announcement(false, true, false, true, false, true, false);
2021                 do_encoding_node_announcement(false, false, true, false, true, false, false);
2022         }
2023
2024         fn do_encoding_channel_update(direction: bool, disable: bool, htlc_maximum_msat: bool, excess_data: bool) {
2025                 let secp_ctx = Secp256k1::new();
2026                 let (privkey_1, _) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2027                 let sig_1 = get_sig_on!(privkey_1, secp_ctx, String::from("01010101010101010101010101010101"));
2028                 let unsigned_channel_update = msgs::UnsignedChannelUpdate {
2029                         chain_hash: BlockHash::from_hex("6fe28c0ab6f1b372c1a6a246ae63f74f931e8365e15a089c68d6190000000000").unwrap(),
2030                         short_channel_id: 2316138423780173,
2031                         timestamp: 20190119,
2032                         flags: if direction { 1 } else { 0 } | if disable { 1 << 1 } else { 0 },
2033                         cltv_expiry_delta: 144,
2034                         htlc_minimum_msat: 1000000,
2035                         htlc_maximum_msat: if htlc_maximum_msat { OptionalField::Present(131355275467161) } else { OptionalField::Absent },
2036                         fee_base_msat: 10000,
2037                         fee_proportional_millionths: 20,
2038                         excess_data: if excess_data { vec![0, 0, 0, 0, 59, 154, 202, 0] } else { Vec::new() }
2039                 };
2040                 let channel_update = msgs::ChannelUpdate {
2041                         signature: sig_1,
2042                         contents: unsigned_channel_update
2043                 };
2044                 let encoded_value = channel_update.encode();
2045                 let mut target_value = hex::decode("d977cb9b53d93a6ff64bb5f1e158b4094b66e798fb12911168a3ccdf80a83096340a6a95da0ae8d9f776528eecdbb747eb6b545495a4319ed5378e35b21e073a").unwrap();
2046                 target_value.append(&mut hex::decode("000000000019d6689c085ae165831e934ff763ae46a2a6c172b3f1b60a8ce26f").unwrap());
2047                 target_value.append(&mut hex::decode("00083a840000034d013413a7").unwrap());
2048                 if htlc_maximum_msat {
2049                         target_value.append(&mut hex::decode("01").unwrap());
2050                 } else {
2051                         target_value.append(&mut hex::decode("00").unwrap());
2052                 }
2053                 target_value.append(&mut hex::decode("00").unwrap());
2054                 if direction {
2055                         let flag = target_value.last_mut().unwrap();
2056                         *flag = 1;
2057                 }
2058                 if disable {
2059                         let flag = target_value.last_mut().unwrap();
2060                         *flag = *flag | 1 << 1;
2061                 }
2062                 target_value.append(&mut hex::decode("009000000000000f42400000271000000014").unwrap());
2063                 if htlc_maximum_msat {
2064                         target_value.append(&mut hex::decode("0000777788889999").unwrap());
2065                 }
2066                 if excess_data {
2067                         target_value.append(&mut hex::decode("000000003b9aca00").unwrap());
2068                 }
2069                 assert_eq!(encoded_value, target_value);
2070         }
2071
2072         #[test]
2073         fn encoding_channel_update() {
2074                 do_encoding_channel_update(false, false, false, false);
2075                 do_encoding_channel_update(false, false, false, true);
2076                 do_encoding_channel_update(true, false, false, false);
2077                 do_encoding_channel_update(true, false, false, true);
2078                 do_encoding_channel_update(false, true, false, false);
2079                 do_encoding_channel_update(false, true, false, true);
2080                 do_encoding_channel_update(false, false, true, false);
2081                 do_encoding_channel_update(false, false, true, true);
2082                 do_encoding_channel_update(true, true, true, false);
2083                 do_encoding_channel_update(true, true, true, true);
2084         }
2085
2086         fn do_encoding_open_channel(random_bit: bool, shutdown: bool) {
2087                 let secp_ctx = Secp256k1::new();
2088                 let (_, pubkey_1) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2089                 let (_, pubkey_2) = get_keys_from!("0202020202020202020202020202020202020202020202020202020202020202", secp_ctx);
2090                 let (_, pubkey_3) = get_keys_from!("0303030303030303030303030303030303030303030303030303030303030303", secp_ctx);
2091                 let (_, pubkey_4) = get_keys_from!("0404040404040404040404040404040404040404040404040404040404040404", secp_ctx);
2092                 let (_, pubkey_5) = get_keys_from!("0505050505050505050505050505050505050505050505050505050505050505", secp_ctx);
2093                 let (_, pubkey_6) = get_keys_from!("0606060606060606060606060606060606060606060606060606060606060606", secp_ctx);
2094                 let open_channel = msgs::OpenChannel {
2095                         chain_hash: BlockHash::from_hex("6fe28c0ab6f1b372c1a6a246ae63f74f931e8365e15a089c68d6190000000000").unwrap(),
2096                         temporary_channel_id: [2; 32],
2097                         funding_satoshis: 1311768467284833366,
2098                         push_msat: 2536655962884945560,
2099                         dust_limit_satoshis: 3608586615801332854,
2100                         max_htlc_value_in_flight_msat: 8517154655701053848,
2101                         channel_reserve_satoshis: 8665828695742877976,
2102                         htlc_minimum_msat: 2316138423780173,
2103                         feerate_per_kw: 821716,
2104                         to_self_delay: 49340,
2105                         max_accepted_htlcs: 49340,
2106                         funding_pubkey: pubkey_1,
2107                         revocation_basepoint: pubkey_2,
2108                         payment_point: pubkey_3,
2109                         delayed_payment_basepoint: pubkey_4,
2110                         htlc_basepoint: pubkey_5,
2111                         first_per_commitment_point: pubkey_6,
2112                         channel_flags: if random_bit { 1 << 5 } else { 0 },
2113                         shutdown_scriptpubkey: if shutdown { OptionalField::Present(Address::p2pkh(&::bitcoin::PublicKey{compressed: true, key: pubkey_1}, Network::Testnet).script_pubkey()) } else { OptionalField::Absent }
2114                 };
2115                 let encoded_value = open_channel.encode();
2116                 let mut target_value = Vec::new();
2117                 target_value.append(&mut hex::decode("000000000019d6689c085ae165831e934ff763ae46a2a6c172b3f1b60a8ce26f").unwrap());
2118                 target_value.append(&mut hex::decode("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").unwrap());
2119                 if random_bit {
2120                         target_value.append(&mut hex::decode("20").unwrap());
2121                 } else {
2122                         target_value.append(&mut hex::decode("00").unwrap());
2123                 }
2124                 if shutdown {
2125                         target_value.append(&mut hex::decode("001976a91479b000887626b294a914501a4cd226b58b23598388ac").unwrap());
2126                 }
2127                 assert_eq!(encoded_value, target_value);
2128         }
2129
2130         #[test]
2131         fn encoding_open_channel() {
2132                 do_encoding_open_channel(false, false);
2133                 do_encoding_open_channel(true, false);
2134                 do_encoding_open_channel(false, true);
2135                 do_encoding_open_channel(true, true);
2136         }
2137
2138         fn do_encoding_accept_channel(shutdown: bool) {
2139                 let secp_ctx = Secp256k1::new();
2140                 let (_, pubkey_1) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2141                 let (_, pubkey_2) = get_keys_from!("0202020202020202020202020202020202020202020202020202020202020202", secp_ctx);
2142                 let (_, pubkey_3) = get_keys_from!("0303030303030303030303030303030303030303030303030303030303030303", secp_ctx);
2143                 let (_, pubkey_4) = get_keys_from!("0404040404040404040404040404040404040404040404040404040404040404", secp_ctx);
2144                 let (_, pubkey_5) = get_keys_from!("0505050505050505050505050505050505050505050505050505050505050505", secp_ctx);
2145                 let (_, pubkey_6) = get_keys_from!("0606060606060606060606060606060606060606060606060606060606060606", secp_ctx);
2146                 let accept_channel = msgs::AcceptChannel {
2147                         temporary_channel_id: [2; 32],
2148                         dust_limit_satoshis: 1311768467284833366,
2149                         max_htlc_value_in_flight_msat: 2536655962884945560,
2150                         channel_reserve_satoshis: 3608586615801332854,
2151                         htlc_minimum_msat: 2316138423780173,
2152                         minimum_depth: 821716,
2153                         to_self_delay: 49340,
2154                         max_accepted_htlcs: 49340,
2155                         funding_pubkey: pubkey_1,
2156                         revocation_basepoint: pubkey_2,
2157                         payment_point: pubkey_3,
2158                         delayed_payment_basepoint: pubkey_4,
2159                         htlc_basepoint: pubkey_5,
2160                         first_per_commitment_point: pubkey_6,
2161                         shutdown_scriptpubkey: if shutdown { OptionalField::Present(Address::p2pkh(&::bitcoin::PublicKey{compressed: true, key: pubkey_1}, Network::Testnet).script_pubkey()) } else { OptionalField::Absent }
2162                 };
2163                 let encoded_value = accept_channel.encode();
2164                 let mut target_value = hex::decode("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").unwrap();
2165                 if shutdown {
2166                         target_value.append(&mut hex::decode("001976a91479b000887626b294a914501a4cd226b58b23598388ac").unwrap());
2167                 }
2168                 assert_eq!(encoded_value, target_value);
2169         }
2170
2171         #[test]
2172         fn encoding_accept_channel() {
2173                 do_encoding_accept_channel(false);
2174                 do_encoding_accept_channel(true);
2175         }
2176
2177         #[test]
2178         fn encoding_funding_created() {
2179                 let secp_ctx = Secp256k1::new();
2180                 let (privkey_1, _) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2181                 let sig_1 = get_sig_on!(privkey_1, secp_ctx, String::from("01010101010101010101010101010101"));
2182                 let funding_created = msgs::FundingCreated {
2183                         temporary_channel_id: [2; 32],
2184                         funding_txid: Txid::from_hex("c2d4449afa8d26140898dd54d3390b057ba2a5afcf03ba29d7dc0d8b9ffe966e").unwrap(),
2185                         funding_output_index: 255,
2186                         signature: sig_1,
2187                 };
2188                 let encoded_value = funding_created.encode();
2189                 let target_value = hex::decode("02020202020202020202020202020202020202020202020202020202020202026e96fe9f8b0ddcd729ba03cfafa5a27b050b39d354dd980814268dfa9a44d4c200ffd977cb9b53d93a6ff64bb5f1e158b4094b66e798fb12911168a3ccdf80a83096340a6a95da0ae8d9f776528eecdbb747eb6b545495a4319ed5378e35b21e073a").unwrap();
2190                 assert_eq!(encoded_value, target_value);
2191         }
2192
2193         #[test]
2194         fn encoding_funding_signed() {
2195                 let secp_ctx = Secp256k1::new();
2196                 let (privkey_1, _) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2197                 let sig_1 = get_sig_on!(privkey_1, secp_ctx, String::from("01010101010101010101010101010101"));
2198                 let funding_signed = msgs::FundingSigned {
2199                         channel_id: [2; 32],
2200                         signature: sig_1,
2201                 };
2202                 let encoded_value = funding_signed.encode();
2203                 let target_value = hex::decode("0202020202020202020202020202020202020202020202020202020202020202d977cb9b53d93a6ff64bb5f1e158b4094b66e798fb12911168a3ccdf80a83096340a6a95da0ae8d9f776528eecdbb747eb6b545495a4319ed5378e35b21e073a").unwrap();
2204                 assert_eq!(encoded_value, target_value);
2205         }
2206
2207         #[test]
2208         fn encoding_funding_locked() {
2209                 let secp_ctx = Secp256k1::new();
2210                 let (_, pubkey_1,) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2211                 let funding_locked = msgs::FundingLocked {
2212                         channel_id: [2; 32],
2213                         next_per_commitment_point: pubkey_1,
2214                 };
2215                 let encoded_value = funding_locked.encode();
2216                 let target_value = hex::decode("0202020202020202020202020202020202020202020202020202020202020202031b84c5567b126440995d3ed5aaba0565d71e1834604819ff9c17f5e9d5dd078f").unwrap();
2217                 assert_eq!(encoded_value, target_value);
2218         }
2219
2220         fn do_encoding_shutdown(script_type: u8) {
2221                 let secp_ctx = Secp256k1::new();
2222                 let (_, pubkey_1) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2223                 let script = Builder::new().push_opcode(opcodes::OP_TRUE).into_script();
2224                 let shutdown = msgs::Shutdown {
2225                         channel_id: [2; 32],
2226                         scriptpubkey:
2227                                      if script_type == 1 { Address::p2pkh(&::bitcoin::PublicKey{compressed: true, key: pubkey_1}, Network::Testnet).script_pubkey() }
2228                                 else if script_type == 2 { Address::p2sh(&script, Network::Testnet).script_pubkey() }
2229                                 else if script_type == 3 { Address::p2wpkh(&::bitcoin::PublicKey{compressed: true, key: pubkey_1}, Network::Testnet).unwrap().script_pubkey() }
2230                                 else                     { Address::p2wsh(&script, Network::Testnet).script_pubkey() },
2231                 };
2232                 let encoded_value = shutdown.encode();
2233                 let mut target_value = hex::decode("0202020202020202020202020202020202020202020202020202020202020202").unwrap();
2234                 if script_type == 1 {
2235                         target_value.append(&mut hex::decode("001976a91479b000887626b294a914501a4cd226b58b23598388ac").unwrap());
2236                 } else if script_type == 2 {
2237                         target_value.append(&mut hex::decode("0017a914da1745e9b549bd0bfa1a569971c77eba30cd5a4b87").unwrap());
2238                 } else if script_type == 3 {
2239                         target_value.append(&mut hex::decode("0016001479b000887626b294a914501a4cd226b58b235983").unwrap());
2240                 } else if script_type == 4 {
2241                         target_value.append(&mut hex::decode("002200204ae81572f06e1b88fd5ced7a1a000945432e83e1551e6f721ee9c00b8cc33260").unwrap());
2242                 }
2243                 assert_eq!(encoded_value, target_value);
2244         }
2245
2246         #[test]
2247         fn encoding_shutdown() {
2248                 do_encoding_shutdown(1);
2249                 do_encoding_shutdown(2);
2250                 do_encoding_shutdown(3);
2251                 do_encoding_shutdown(4);
2252         }
2253
2254         #[test]
2255         fn encoding_closing_signed() {
2256                 let secp_ctx = Secp256k1::new();
2257                 let (privkey_1, _) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2258                 let sig_1 = get_sig_on!(privkey_1, secp_ctx, String::from("01010101010101010101010101010101"));
2259                 let closing_signed = msgs::ClosingSigned {
2260                         channel_id: [2; 32],
2261                         fee_satoshis: 2316138423780173,
2262                         signature: sig_1,
2263                         fee_range: None,
2264                 };
2265                 let encoded_value = closing_signed.encode();
2266                 let target_value = hex::decode("020202020202020202020202020202020202020202020202020202020202020200083a840000034dd977cb9b53d93a6ff64bb5f1e158b4094b66e798fb12911168a3ccdf80a83096340a6a95da0ae8d9f776528eecdbb747eb6b545495a4319ed5378e35b21e073a").unwrap();
2267                 assert_eq!(encoded_value, target_value);
2268                 assert_eq!(msgs::ClosingSigned::read(&mut Cursor::new(&target_value)).unwrap(), closing_signed);
2269
2270                 let closing_signed_with_range = msgs::ClosingSigned {
2271                         channel_id: [2; 32],
2272                         fee_satoshis: 2316138423780173,
2273                         signature: sig_1,
2274                         fee_range: Some(msgs::ClosingSignedFeeRange {
2275                                 min_fee_satoshis: 0xdeadbeef,
2276                                 max_fee_satoshis: 0x1badcafe01234567,
2277                         }),
2278                 };
2279                 let encoded_value_with_range = closing_signed_with_range.encode();
2280                 let target_value_with_range = hex::decode("020202020202020202020202020202020202020202020202020202020202020200083a840000034dd977cb9b53d93a6ff64bb5f1e158b4094b66e798fb12911168a3ccdf80a83096340a6a95da0ae8d9f776528eecdbb747eb6b545495a4319ed5378e35b21e073a011000000000deadbeef1badcafe01234567").unwrap();
2281                 assert_eq!(encoded_value_with_range, target_value_with_range);
2282                 assert_eq!(msgs::ClosingSigned::read(&mut Cursor::new(&target_value_with_range)).unwrap(),
2283                         closing_signed_with_range);
2284         }
2285
2286         #[test]
2287         fn encoding_update_add_htlc() {
2288                 let secp_ctx = Secp256k1::new();
2289                 let (_, pubkey_1) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2290                 let onion_routing_packet = msgs::OnionPacket {
2291                         version: 255,
2292                         public_key: Ok(pubkey_1),
2293                         hop_data: [1; 20*65],
2294                         hmac: [2; 32]
2295                 };
2296                 let update_add_htlc = msgs::UpdateAddHTLC {
2297                         channel_id: [2; 32],
2298                         htlc_id: 2316138423780173,
2299                         amount_msat: 3608586615801332854,
2300                         payment_hash: PaymentHash([1; 32]),
2301                         cltv_expiry: 821716,
2302                         onion_routing_packet
2303                 };
2304                 let encoded_value = update_add_htlc.encode();
2305                 let target_value = hex::decode("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").unwrap();
2306                 assert_eq!(encoded_value, target_value);
2307         }
2308
2309         #[test]
2310         fn encoding_update_fulfill_htlc() {
2311                 let update_fulfill_htlc = msgs::UpdateFulfillHTLC {
2312                         channel_id: [2; 32],
2313                         htlc_id: 2316138423780173,
2314                         payment_preimage: PaymentPreimage([1; 32]),
2315                 };
2316                 let encoded_value = update_fulfill_htlc.encode();
2317                 let target_value = hex::decode("020202020202020202020202020202020202020202020202020202020202020200083a840000034d0101010101010101010101010101010101010101010101010101010101010101").unwrap();
2318                 assert_eq!(encoded_value, target_value);
2319         }
2320
2321         #[test]
2322         fn encoding_update_fail_htlc() {
2323                 let reason = OnionErrorPacket {
2324                         data: [1; 32].to_vec(),
2325                 };
2326                 let update_fail_htlc = msgs::UpdateFailHTLC {
2327                         channel_id: [2; 32],
2328                         htlc_id: 2316138423780173,
2329                         reason
2330                 };
2331                 let encoded_value = update_fail_htlc.encode();
2332                 let target_value = hex::decode("020202020202020202020202020202020202020202020202020202020202020200083a840000034d00200101010101010101010101010101010101010101010101010101010101010101").unwrap();
2333                 assert_eq!(encoded_value, target_value);
2334         }
2335
2336         #[test]
2337         fn encoding_update_fail_malformed_htlc() {
2338                 let update_fail_malformed_htlc = msgs::UpdateFailMalformedHTLC {
2339                         channel_id: [2; 32],
2340                         htlc_id: 2316138423780173,
2341                         sha256_of_onion: [1; 32],
2342                         failure_code: 255
2343                 };
2344                 let encoded_value = update_fail_malformed_htlc.encode();
2345                 let target_value = hex::decode("020202020202020202020202020202020202020202020202020202020202020200083a840000034d010101010101010101010101010101010101010101010101010101010101010100ff").unwrap();
2346                 assert_eq!(encoded_value, target_value);
2347         }
2348
2349         fn do_encoding_commitment_signed(htlcs: bool) {
2350                 let secp_ctx = Secp256k1::new();
2351                 let (privkey_1, _) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2352                 let (privkey_2, _) = get_keys_from!("0202020202020202020202020202020202020202020202020202020202020202", secp_ctx);
2353                 let (privkey_3, _) = get_keys_from!("0303030303030303030303030303030303030303030303030303030303030303", secp_ctx);
2354                 let (privkey_4, _) = get_keys_from!("0404040404040404040404040404040404040404040404040404040404040404", secp_ctx);
2355                 let sig_1 = get_sig_on!(privkey_1, secp_ctx, String::from("01010101010101010101010101010101"));
2356                 let sig_2 = get_sig_on!(privkey_2, secp_ctx, String::from("01010101010101010101010101010101"));
2357                 let sig_3 = get_sig_on!(privkey_3, secp_ctx, String::from("01010101010101010101010101010101"));
2358                 let sig_4 = get_sig_on!(privkey_4, secp_ctx, String::from("01010101010101010101010101010101"));
2359                 let commitment_signed = msgs::CommitmentSigned {
2360                         channel_id: [2; 32],
2361                         signature: sig_1,
2362                         htlc_signatures: if htlcs { vec![sig_2, sig_3, sig_4] } else { Vec::new() },
2363                 };
2364                 let encoded_value = commitment_signed.encode();
2365                 let mut target_value = hex::decode("0202020202020202020202020202020202020202020202020202020202020202d977cb9b53d93a6ff64bb5f1e158b4094b66e798fb12911168a3ccdf80a83096340a6a95da0ae8d9f776528eecdbb747eb6b545495a4319ed5378e35b21e073a").unwrap();
2366                 if htlcs {
2367                         target_value.append(&mut hex::decode("00031735b6a427e80d5fe7cd90a2f4ee08dc9c27cda7c35a4172e5d85b12c49d4232537e98f9b1f3c5e6989a8b9644e90e8918127680dbd0d4043510840fc0f1e11a216c280b5395a2546e7e4b2663e04f811622f15a4f91e83aa2e92ba2a573c139142c54ae63072a1ec1ee7dc0c04bde5c847806172aa05c92c22ae8e308d1d2692b12cc195ce0a2d1bda6a88befa19fa07f51caa75ce83837f28965600b8aacab0855ffb0e741ec5f7c41421e9829a9d48611c8c831f71be5ea73e66594977ffd").unwrap());
2368                 } else {
2369                         target_value.append(&mut hex::decode("0000").unwrap());
2370                 }
2371                 assert_eq!(encoded_value, target_value);
2372         }
2373
2374         #[test]
2375         fn encoding_commitment_signed() {
2376                 do_encoding_commitment_signed(true);
2377                 do_encoding_commitment_signed(false);
2378         }
2379
2380         #[test]
2381         fn encoding_revoke_and_ack() {
2382                 let secp_ctx = Secp256k1::new();
2383                 let (_, pubkey_1) = get_keys_from!("0101010101010101010101010101010101010101010101010101010101010101", secp_ctx);
2384                 let raa = msgs::RevokeAndACK {
2385                         channel_id: [2; 32],
2386                         per_commitment_secret: [1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1],
2387                         next_per_commitment_point: pubkey_1,
2388                 };
2389                 let encoded_value = raa.encode();
2390                 let target_value = hex::decode("02020202020202020202020202020202020202020202020202020202020202020101010101010101010101010101010101010101010101010101010101010101031b84c5567b126440995d3ed5aaba0565d71e1834604819ff9c17f5e9d5dd078f").unwrap();
2391                 assert_eq!(encoded_value, target_value);
2392         }
2393
2394         #[test]
2395         fn encoding_update_fee() {
2396                 let update_fee = msgs::UpdateFee {
2397                         channel_id: [2; 32],
2398                         feerate_per_kw: 20190119,
2399                 };
2400                 let encoded_value = update_fee.encode();
2401                 let target_value = hex::decode("0202020202020202020202020202020202020202020202020202020202020202013413a7").unwrap();
2402                 assert_eq!(encoded_value, target_value);
2403         }
2404
2405         #[test]
2406         fn encoding_init() {
2407                 assert_eq!(msgs::Init {
2408                         features: InitFeatures::from_le_bytes(vec![0xFF, 0xFF, 0xFF]),
2409                 }.encode(), hex::decode("00023fff0003ffffff").unwrap());
2410                 assert_eq!(msgs::Init {
2411                         features: InitFeatures::from_le_bytes(vec![0xFF]),
2412                 }.encode(), hex::decode("0001ff0001ff").unwrap());
2413                 assert_eq!(msgs::Init {
2414                         features: InitFeatures::from_le_bytes(vec![]),
2415                 }.encode(), hex::decode("00000000").unwrap());
2416         }
2417
2418         #[test]
2419         fn encoding_error() {
2420                 let error = msgs::ErrorMessage {
2421                         channel_id: [2; 32],
2422                         data: String::from("rust-lightning"),
2423                 };
2424                 let encoded_value = error.encode();
2425                 let target_value = hex::decode("0202020202020202020202020202020202020202020202020202020202020202000e727573742d6c696768746e696e67").unwrap();
2426                 assert_eq!(encoded_value, target_value);
2427         }
2428
2429         #[test]
2430         fn encoding_ping() {
2431                 let ping = msgs::Ping {
2432                         ponglen: 64,
2433                         byteslen: 64
2434                 };
2435                 let encoded_value = ping.encode();
2436                 let target_value = hex::decode("0040004000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000").unwrap();
2437                 assert_eq!(encoded_value, target_value);
2438         }
2439
2440         #[test]
2441         fn encoding_pong() {
2442                 let pong = msgs::Pong {
2443                         byteslen: 64
2444                 };
2445                 let encoded_value = pong.encode();
2446                 let target_value = hex::decode("004000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000").unwrap();
2447                 assert_eq!(encoded_value, target_value);
2448         }
2449
2450         #[test]
2451         fn encoding_legacy_onion_hop_data() {
2452                 let msg = msgs::OnionHopData {
2453                         format: OnionHopDataFormat::Legacy {
2454                                 short_channel_id: 0xdeadbeef1bad1dea,
2455                         },
2456                         amt_to_forward: 0x0badf00d01020304,
2457                         outgoing_cltv_value: 0xffffffff,
2458                 };
2459                 let encoded_value = msg.encode();
2460                 let target_value = hex::decode("00deadbeef1bad1dea0badf00d01020304ffffffff000000000000000000000000").unwrap();
2461                 assert_eq!(encoded_value, target_value);
2462         }
2463
2464         #[test]
2465         fn encoding_nonfinal_onion_hop_data() {
2466                 let mut msg = msgs::OnionHopData {
2467                         format: OnionHopDataFormat::NonFinalNode {
2468                                 short_channel_id: 0xdeadbeef1bad1dea,
2469                         },
2470                         amt_to_forward: 0x0badf00d01020304,
2471                         outgoing_cltv_value: 0xffffffff,
2472                 };
2473                 let encoded_value = msg.encode();
2474                 let target_value = hex::decode("1a02080badf00d010203040404ffffffff0608deadbeef1bad1dea").unwrap();
2475                 assert_eq!(encoded_value, target_value);
2476                 msg = Readable::read(&mut Cursor::new(&target_value[..])).unwrap();
2477                 if let OnionHopDataFormat::NonFinalNode { short_channel_id } = msg.format {
2478                         assert_eq!(short_channel_id, 0xdeadbeef1bad1dea);
2479                 } else { panic!(); }
2480                 assert_eq!(msg.amt_to_forward, 0x0badf00d01020304);
2481                 assert_eq!(msg.outgoing_cltv_value, 0xffffffff);
2482         }
2483
2484         #[test]
2485         fn encoding_final_onion_hop_data() {
2486                 let mut msg = msgs::OnionHopData {
2487                         format: OnionHopDataFormat::FinalNode {
2488                                 payment_data: None,
2489                                 keysend_preimage: None,
2490                         },
2491                         amt_to_forward: 0x0badf00d01020304,
2492                         outgoing_cltv_value: 0xffffffff,
2493                 };
2494                 let encoded_value = msg.encode();
2495                 let target_value = hex::decode("1002080badf00d010203040404ffffffff").unwrap();
2496                 assert_eq!(encoded_value, target_value);
2497                 msg = Readable::read(&mut Cursor::new(&target_value[..])).unwrap();
2498                 if let OnionHopDataFormat::FinalNode { payment_data: None, .. } = msg.format { } else { panic!(); }
2499                 assert_eq!(msg.amt_to_forward, 0x0badf00d01020304);
2500                 assert_eq!(msg.outgoing_cltv_value, 0xffffffff);
2501         }
2502
2503         #[test]
2504         fn encoding_final_onion_hop_data_with_secret() {
2505                 let expected_payment_secret = PaymentSecret([0x42u8; 32]);
2506                 let mut msg = msgs::OnionHopData {
2507                         format: OnionHopDataFormat::FinalNode {
2508                                 payment_data: Some(FinalOnionHopData {
2509                                         payment_secret: expected_payment_secret,
2510                                         total_msat: 0x1badca1f
2511                                 }),
2512                                 keysend_preimage: None,
2513                         },
2514                         amt_to_forward: 0x0badf00d01020304,
2515                         outgoing_cltv_value: 0xffffffff,
2516                 };
2517                 let encoded_value = msg.encode();
2518                 let target_value = hex::decode("3602080badf00d010203040404ffffffff082442424242424242424242424242424242424242424242424242424242424242421badca1f").unwrap();
2519                 assert_eq!(encoded_value, target_value);
2520                 msg = Readable::read(&mut Cursor::new(&target_value[..])).unwrap();
2521                 if let OnionHopDataFormat::FinalNode {
2522                         payment_data: Some(FinalOnionHopData {
2523                                 payment_secret,
2524                                 total_msat: 0x1badca1f
2525                         }),
2526                         keysend_preimage: None,
2527                 } = msg.format {
2528                         assert_eq!(payment_secret, expected_payment_secret);
2529                 } else { panic!(); }
2530                 assert_eq!(msg.amt_to_forward, 0x0badf00d01020304);
2531                 assert_eq!(msg.outgoing_cltv_value, 0xffffffff);
2532         }
2533
2534         #[test]
2535         fn query_channel_range_end_blocknum() {
2536                 let tests: Vec<(u32, u32, u32)> = vec![
2537                         (10000, 1500, 11500),
2538                         (0, 0xffffffff, 0xffffffff),
2539                         (1, 0xffffffff, 0xffffffff),
2540                 ];
2541
2542                 for (first_blocknum, number_of_blocks, expected) in tests.into_iter() {
2543                         let sut = msgs::QueryChannelRange {
2544                                 chain_hash: BlockHash::from_hex("06226e46111a0b59caaf126043eb5bbf28c34f3a5e332a1fc7b2b73cf188910f").unwrap(),
2545                                 first_blocknum,
2546                                 number_of_blocks,
2547                         };
2548                         assert_eq!(sut.end_blocknum(), expected);
2549                 }
2550         }
2551
2552         #[test]
2553         fn encoding_query_channel_range() {
2554                 let mut query_channel_range = msgs::QueryChannelRange {
2555                         chain_hash: BlockHash::from_hex("06226e46111a0b59caaf126043eb5bbf28c34f3a5e332a1fc7b2b73cf188910f").unwrap(),
2556                         first_blocknum: 100000,
2557                         number_of_blocks: 1500,
2558                 };
2559                 let encoded_value = query_channel_range.encode();
2560                 let target_value = hex::decode("0f9188f13cb7b2c71f2a335e3a4fc328bf5beb436012afca590b1a11466e2206000186a0000005dc").unwrap();
2561                 assert_eq!(encoded_value, target_value);
2562
2563                 query_channel_range = Readable::read(&mut Cursor::new(&target_value[..])).unwrap();
2564                 assert_eq!(query_channel_range.first_blocknum, 100000);
2565                 assert_eq!(query_channel_range.number_of_blocks, 1500);
2566         }
2567
2568         #[test]
2569         fn encoding_reply_channel_range() {
2570                 do_encoding_reply_channel_range(0);
2571                 do_encoding_reply_channel_range(1);
2572         }
2573
2574         fn do_encoding_reply_channel_range(encoding_type: u8) {
2575                 let mut target_value = hex::decode("0f9188f13cb7b2c71f2a335e3a4fc328bf5beb436012afca590b1a11466e2206000b8a06000005dc01").unwrap();
2576                 let expected_chain_hash = BlockHash::from_hex("06226e46111a0b59caaf126043eb5bbf28c34f3a5e332a1fc7b2b73cf188910f").unwrap();
2577                 let mut reply_channel_range = msgs::ReplyChannelRange {
2578                         chain_hash: expected_chain_hash,
2579                         first_blocknum: 756230,
2580                         number_of_blocks: 1500,
2581                         sync_complete: true,
2582                         short_channel_ids: vec![0x000000000000008e, 0x0000000000003c69, 0x000000000045a6c4],
2583                 };
2584
2585                 if encoding_type == 0 {
2586                         target_value.append(&mut hex::decode("001900000000000000008e0000000000003c69000000000045a6c4").unwrap());
2587                         let encoded_value = reply_channel_range.encode();
2588                         assert_eq!(encoded_value, target_value);
2589
2590                         reply_channel_range = Readable::read(&mut Cursor::new(&target_value[..])).unwrap();
2591                         assert_eq!(reply_channel_range.chain_hash, expected_chain_hash);
2592                         assert_eq!(reply_channel_range.first_blocknum, 756230);
2593                         assert_eq!(reply_channel_range.number_of_blocks, 1500);
2594                         assert_eq!(reply_channel_range.sync_complete, true);
2595                         assert_eq!(reply_channel_range.short_channel_ids[0], 0x000000000000008e);
2596                         assert_eq!(reply_channel_range.short_channel_ids[1], 0x0000000000003c69);
2597                         assert_eq!(reply_channel_range.short_channel_ids[2], 0x000000000045a6c4);
2598                 } else {
2599                         target_value.append(&mut hex::decode("001601789c636000833e08659309a65878be010010a9023a").unwrap());
2600                         let result: Result<msgs::ReplyChannelRange, msgs::DecodeError> = Readable::read(&mut Cursor::new(&target_value[..]));
2601                         assert!(result.is_err(), "Expected decode failure with unsupported zlib encoding");
2602                 }
2603         }
2604
2605         #[test]
2606         fn encoding_query_short_channel_ids() {
2607                 do_encoding_query_short_channel_ids(0);
2608                 do_encoding_query_short_channel_ids(1);
2609         }
2610
2611         fn do_encoding_query_short_channel_ids(encoding_type: u8) {
2612                 let mut target_value = hex::decode("0f9188f13cb7b2c71f2a335e3a4fc328bf5beb436012afca590b1a11466e2206").unwrap();
2613                 let expected_chain_hash = BlockHash::from_hex("06226e46111a0b59caaf126043eb5bbf28c34f3a5e332a1fc7b2b73cf188910f").unwrap();
2614                 let mut query_short_channel_ids = msgs::QueryShortChannelIds {
2615                         chain_hash: expected_chain_hash,
2616                         short_channel_ids: vec![0x0000000000008e, 0x0000000000003c69, 0x000000000045a6c4],
2617                 };
2618
2619                 if encoding_type == 0 {
2620                         target_value.append(&mut hex::decode("001900000000000000008e0000000000003c69000000000045a6c4").unwrap());
2621                         let encoded_value = query_short_channel_ids.encode();
2622                         assert_eq!(encoded_value, target_value);
2623
2624                         query_short_channel_ids = Readable::read(&mut Cursor::new(&target_value[..])).unwrap();
2625                         assert_eq!(query_short_channel_ids.chain_hash, expected_chain_hash);
2626                         assert_eq!(query_short_channel_ids.short_channel_ids[0], 0x000000000000008e);
2627                         assert_eq!(query_short_channel_ids.short_channel_ids[1], 0x0000000000003c69);
2628                         assert_eq!(query_short_channel_ids.short_channel_ids[2], 0x000000000045a6c4);
2629                 } else {
2630                         target_value.append(&mut hex::decode("001601789c636000833e08659309a65878be010010a9023a").unwrap());
2631                         let result: Result<msgs::QueryShortChannelIds, msgs::DecodeError> = Readable::read(&mut Cursor::new(&target_value[..]));
2632                         assert!(result.is_err(), "Expected decode failure with unsupported zlib encoding");
2633                 }
2634         }
2635
2636         #[test]
2637         fn encoding_reply_short_channel_ids_end() {
2638                 let expected_chain_hash = BlockHash::from_hex("06226e46111a0b59caaf126043eb5bbf28c34f3a5e332a1fc7b2b73cf188910f").unwrap();
2639                 let mut reply_short_channel_ids_end = msgs::ReplyShortChannelIdsEnd {
2640                         chain_hash: expected_chain_hash,
2641                         full_information: true,
2642                 };
2643                 let encoded_value = reply_short_channel_ids_end.encode();
2644                 let target_value = hex::decode("0f9188f13cb7b2c71f2a335e3a4fc328bf5beb436012afca590b1a11466e220601").unwrap();
2645                 assert_eq!(encoded_value, target_value);
2646
2647                 reply_short_channel_ids_end = Readable::read(&mut Cursor::new(&target_value[..])).unwrap();
2648                 assert_eq!(reply_short_channel_ids_end.chain_hash, expected_chain_hash);
2649                 assert_eq!(reply_short_channel_ids_end.full_information, true);
2650         }
2651
2652         #[test]
2653         fn encoding_gossip_timestamp_filter(){
2654                 let expected_chain_hash = BlockHash::from_hex("06226e46111a0b59caaf126043eb5bbf28c34f3a5e332a1fc7b2b73cf188910f").unwrap();
2655                 let mut gossip_timestamp_filter = msgs::GossipTimestampFilter {
2656                         chain_hash: expected_chain_hash,
2657                         first_timestamp: 1590000000,
2658                         timestamp_range: 0xffff_ffff,
2659                 };
2660                 let encoded_value = gossip_timestamp_filter.encode();
2661                 let target_value = hex::decode("0f9188f13cb7b2c71f2a335e3a4fc328bf5beb436012afca590b1a11466e22065ec57980ffffffff").unwrap();
2662                 assert_eq!(encoded_value, target_value);
2663
2664                 gossip_timestamp_filter = Readable::read(&mut Cursor::new(&target_value[..])).unwrap();
2665                 assert_eq!(gossip_timestamp_filter.chain_hash, expected_chain_hash);
2666                 assert_eq!(gossip_timestamp_filter.first_timestamp, 1590000000);
2667                 assert_eq!(gossip_timestamp_filter.timestamp_range, 0xffff_ffff);
2668         }
2669 }