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[rust-lightning] / lightning / src / ln / peer_channel_encryptor.rs
1 use ln::msgs::LightningError;
2 use ln::msgs;
3
4 use bitcoin_hashes::{Hash, HashEngine, Hmac, HmacEngine};
5 use bitcoin_hashes::sha256::Hash as Sha256;
6
7 use secp256k1::Secp256k1;
8 use secp256k1::key::{PublicKey,SecretKey};
9 use secp256k1::ecdh::SharedSecret;
10 use secp256k1;
11
12 use util::chacha20poly1305rfc::ChaCha20Poly1305RFC;
13 use util::byte_utils;
14
15 // Sha256("Noise_XK_secp256k1_ChaChaPoly_SHA256")
16 const NOISE_CK: [u8; 32] = [0x26, 0x40, 0xf5, 0x2e, 0xeb, 0xcd, 0x9e, 0x88, 0x29, 0x58, 0x95, 0x1c, 0x79, 0x42, 0x50, 0xee, 0xdb, 0x28, 0x00, 0x2c, 0x05, 0xd7, 0xdc, 0x2e, 0xa0, 0xf1, 0x95, 0x40, 0x60, 0x42, 0xca, 0xf1];
17 // Sha256(NOISE_CK || "lightning")
18 const NOISE_H: [u8; 32] = [0xd1, 0xfb, 0xf6, 0xde, 0xe4, 0xf6, 0x86, 0xf1, 0x32, 0xfd, 0x70, 0x2c, 0x4a, 0xbf, 0x8f, 0xba, 0x4b, 0xb4, 0x20, 0xd8, 0x9d, 0x2a, 0x04, 0x8a, 0x3c, 0x4f, 0x4c, 0x09, 0x2e, 0x37, 0xb6, 0x76];
19
20 pub enum NextNoiseStep {
21         ActOne,
22         ActTwo,
23         ActThree,
24         NoiseComplete,
25 }
26
27 #[derive(PartialEq)]
28 enum NoiseStep {
29         PreActOne,
30         PostActOne,
31         PostActTwo,
32         // When done swap noise_state for NoiseState::Finished
33 }
34
35 struct BidirectionalNoiseState {
36         h: [u8; 32],
37         ck: [u8; 32],
38 }
39 enum DirectionalNoiseState {
40         Outbound {
41                 ie: SecretKey,
42         },
43         Inbound {
44                 ie: Option<PublicKey>, // filled in if state >= PostActOne
45                 re: Option<SecretKey>, // filled in if state >= PostActTwo
46                 temp_k2: Option<[u8; 32]>, // filled in if state >= PostActTwo
47         }
48 }
49 enum NoiseState {
50         InProgress {
51                 state: NoiseStep,
52                 directional_state: DirectionalNoiseState,
53                 bidirectional_state: BidirectionalNoiseState,
54         },
55         Finished {
56                 sk: [u8; 32],
57                 sn: u64,
58                 sck: [u8; 32],
59                 rk: [u8; 32],
60                 rn: u64,
61                 rck: [u8; 32],
62         }
63 }
64
65 pub struct PeerChannelEncryptor {
66         secp_ctx: Secp256k1<secp256k1::SignOnly>,
67         their_node_id: Option<PublicKey>, // filled in for outbound, or inbound after noise_state is Finished
68
69         noise_state: NoiseState,
70 }
71
72 impl PeerChannelEncryptor {
73         pub fn new_outbound(their_node_id: PublicKey, ephemeral_key: SecretKey) -> PeerChannelEncryptor {
74                 let secp_ctx = Secp256k1::signing_only();
75
76                 let mut sha = Sha256::engine();
77                 sha.input(&NOISE_H);
78                 sha.input(&their_node_id.serialize()[..]);
79                 let h = Sha256::from_engine(sha).into_inner();
80
81                 PeerChannelEncryptor {
82                         their_node_id: Some(their_node_id),
83                         secp_ctx: secp_ctx,
84                         noise_state: NoiseState::InProgress {
85                                 state: NoiseStep::PreActOne,
86                                 directional_state: DirectionalNoiseState::Outbound {
87                                         ie: ephemeral_key,
88                                 },
89                                 bidirectional_state: BidirectionalNoiseState {
90                                         h: h,
91                                         ck: NOISE_CK,
92                                 },
93                         }
94                 }
95         }
96
97         pub fn new_inbound(our_node_secret: &SecretKey) -> PeerChannelEncryptor {
98                 let secp_ctx = Secp256k1::signing_only();
99
100                 let mut sha = Sha256::engine();
101                 sha.input(&NOISE_H);
102                 let our_node_id = PublicKey::from_secret_key(&secp_ctx, our_node_secret);
103                 sha.input(&our_node_id.serialize()[..]);
104                 let h = Sha256::from_engine(sha).into_inner();
105
106                 PeerChannelEncryptor {
107                         their_node_id: None,
108                         secp_ctx: secp_ctx,
109                         noise_state: NoiseState::InProgress {
110                                 state: NoiseStep::PreActOne,
111                                 directional_state: DirectionalNoiseState::Inbound {
112                                         ie: None,
113                                         re: None,
114                                         temp_k2: None,
115                                 },
116                                 bidirectional_state: BidirectionalNoiseState {
117                                         h: h,
118                                         ck: NOISE_CK,
119                                 },
120                         }
121                 }
122         }
123
124         #[inline]
125         fn encrypt_with_ad(res: &mut[u8], n: u64, key: &[u8; 32], h: &[u8], plaintext: &[u8]) {
126                 let mut nonce = [0; 12];
127                 nonce[4..].copy_from_slice(&byte_utils::le64_to_array(n));
128
129                 let mut chacha = ChaCha20Poly1305RFC::new(key, &nonce, h);
130                 let mut tag = [0; 16];
131                 chacha.encrypt(plaintext, &mut res[0..plaintext.len()], &mut tag);
132                 res[plaintext.len()..].copy_from_slice(&tag);
133         }
134
135         #[inline]
136         fn decrypt_with_ad(res: &mut[u8], n: u64, key: &[u8; 32], h: &[u8], cyphertext: &[u8]) -> Result<(), LightningError> {
137                 let mut nonce = [0; 12];
138                 nonce[4..].copy_from_slice(&byte_utils::le64_to_array(n));
139
140                 let mut chacha = ChaCha20Poly1305RFC::new(key, &nonce, h);
141                 if !chacha.decrypt(&cyphertext[0..cyphertext.len() - 16], res, &cyphertext[cyphertext.len() - 16..]) {
142                         return Err(LightningError{err: "Bad MAC", action: msgs::ErrorAction::DisconnectPeer{ msg: None }});
143                 }
144                 Ok(())
145         }
146
147         fn hkdf_extract_expand(salt: &[u8], ikm: &[u8]) -> ([u8; 32], [u8; 32]) {
148                 let mut hmac = HmacEngine::<Sha256>::new(salt);
149                 hmac.input(ikm);
150                 let prk = Hmac::from_engine(hmac).into_inner();
151                 let mut hmac = HmacEngine::<Sha256>::new(&prk[..]);
152                 hmac.input(&[1; 1]);
153                 let t1 = Hmac::from_engine(hmac).into_inner();
154                 let mut hmac = HmacEngine::<Sha256>::new(&prk[..]);
155                 hmac.input(&t1);
156                 hmac.input(&[2; 1]);
157                 (t1, Hmac::from_engine(hmac).into_inner())
158         }
159
160         #[inline]
161         fn hkdf(state: &mut BidirectionalNoiseState, ss: SharedSecret) -> [u8; 32] {
162                 let (t1, t2) = Self::hkdf_extract_expand(&state.ck, &ss[..]);
163                 state.ck = t1;
164                 t2
165         }
166
167         #[inline]
168         fn outbound_noise_act<T: secp256k1::Signing>(secp_ctx: &Secp256k1<T>, state: &mut BidirectionalNoiseState, our_key: &SecretKey, their_key: &PublicKey) -> ([u8; 50], [u8; 32]) {
169                 let our_pub = PublicKey::from_secret_key(secp_ctx, &our_key);
170
171                 let mut sha = Sha256::engine();
172                 sha.input(&state.h);
173                 sha.input(&our_pub.serialize()[..]);
174                 state.h = Sha256::from_engine(sha).into_inner();
175
176                 let ss = SharedSecret::new(&their_key, &our_key);
177                 let temp_k = PeerChannelEncryptor::hkdf(state, ss);
178
179                 let mut res = [0; 50];
180                 res[1..34].copy_from_slice(&our_pub.serialize()[..]);
181                 PeerChannelEncryptor::encrypt_with_ad(&mut res[34..], 0, &temp_k, &state.h, &[0; 0]);
182
183                 let mut sha = Sha256::engine();
184                 sha.input(&state.h);
185                 sha.input(&res[34..]);
186                 state.h = Sha256::from_engine(sha).into_inner();
187
188                 (res, temp_k)
189         }
190
191         #[inline]
192         fn inbound_noise_act(state: &mut BidirectionalNoiseState, act: &[u8], our_key: &SecretKey) -> Result<(PublicKey, [u8; 32]), LightningError> {
193                 assert_eq!(act.len(), 50);
194
195                 if act[0] != 0 {
196                         return Err(LightningError{err: "Unknown handshake version number", action: msgs::ErrorAction::DisconnectPeer{ msg: None }});
197                 }
198
199                 let their_pub = match PublicKey::from_slice(&act[1..34]) {
200                         Err(_) => return Err(LightningError{err: "Invalid public key", action: msgs::ErrorAction::DisconnectPeer{ msg: None }}),
201                         Ok(key) => key,
202                 };
203
204                 let mut sha = Sha256::engine();
205                 sha.input(&state.h);
206                 sha.input(&their_pub.serialize()[..]);
207                 state.h = Sha256::from_engine(sha).into_inner();
208
209                 let ss = SharedSecret::new(&their_pub, &our_key);
210                 let temp_k = PeerChannelEncryptor::hkdf(state, ss);
211
212                 let mut dec = [0; 0];
213                 PeerChannelEncryptor::decrypt_with_ad(&mut dec, 0, &temp_k, &state.h, &act[34..])?;
214
215                 let mut sha = Sha256::engine();
216                 sha.input(&state.h);
217                 sha.input(&act[34..]);
218                 state.h = Sha256::from_engine(sha).into_inner();
219
220                 Ok((their_pub, temp_k))
221         }
222
223         pub fn get_act_one(&mut self) -> [u8; 50] {
224                 match self.noise_state {
225                         NoiseState::InProgress { ref mut state, ref directional_state, ref mut bidirectional_state } =>
226                                 match directional_state {
227                                         &DirectionalNoiseState::Outbound { ref ie } => {
228                                                 if *state != NoiseStep::PreActOne {
229                                                         panic!("Requested act at wrong step");
230                                                 }
231
232                                                 let (res, _) = PeerChannelEncryptor::outbound_noise_act(&self.secp_ctx, bidirectional_state, &ie, &self.their_node_id.unwrap());
233                                                 *state = NoiseStep::PostActOne;
234                                                 res
235                                         },
236                                         _ => panic!("Wrong direction for act"),
237                                 },
238                         _ => panic!("Cannot get act one after noise handshake completes"),
239                 }
240         }
241
242         pub fn process_act_one_with_keys(&mut self, act_one: &[u8], our_node_secret: &SecretKey, our_ephemeral: SecretKey) -> Result<[u8; 50], LightningError> {
243                 assert_eq!(act_one.len(), 50);
244
245                 match self.noise_state {
246                         NoiseState::InProgress { ref mut state, ref mut directional_state, ref mut bidirectional_state } =>
247                                 match directional_state {
248                                         &mut DirectionalNoiseState::Inbound { ref mut ie, ref mut re, ref mut temp_k2 } => {
249                                                 if *state != NoiseStep::PreActOne {
250                                                         panic!("Requested act at wrong step");
251                                                 }
252
253                                                 let (their_pub, _) = PeerChannelEncryptor::inbound_noise_act(bidirectional_state, act_one, &our_node_secret)?;
254                                                 ie.get_or_insert(their_pub);
255
256                                                 re.get_or_insert(our_ephemeral);
257
258                                                 let (res, temp_k) = PeerChannelEncryptor::outbound_noise_act(&self.secp_ctx, bidirectional_state, &re.unwrap(), &ie.unwrap());
259                                                 *temp_k2 = Some(temp_k);
260                                                 *state = NoiseStep::PostActTwo;
261                                                 Ok(res)
262                                         },
263                                         _ => panic!("Wrong direction for act"),
264                                 },
265                         _ => panic!("Cannot get act one after noise handshake completes"),
266                 }
267         }
268
269         pub fn process_act_two(&mut self, act_two: &[u8], our_node_secret: &SecretKey) -> Result<([u8; 66], PublicKey), LightningError> {
270                 assert_eq!(act_two.len(), 50);
271
272                 let final_hkdf;
273                 let ck;
274                 let res: [u8; 66] = match self.noise_state {
275                         NoiseState::InProgress { ref state, ref directional_state, ref mut bidirectional_state } =>
276                                 match directional_state {
277                                         &DirectionalNoiseState::Outbound { ref ie } => {
278                                                 if *state != NoiseStep::PostActOne {
279                                                         panic!("Requested act at wrong step");
280                                                 }
281
282                                                 let (re, temp_k2) = PeerChannelEncryptor::inbound_noise_act(bidirectional_state, act_two, &ie)?;
283
284                                                 let mut res = [0; 66];
285                                                 let our_node_id = PublicKey::from_secret_key(&self.secp_ctx, &our_node_secret);
286
287                                                 PeerChannelEncryptor::encrypt_with_ad(&mut res[1..50], 1, &temp_k2, &bidirectional_state.h, &our_node_id.serialize()[..]);
288
289                                                 let mut sha = Sha256::engine();
290                                                 sha.input(&bidirectional_state.h);
291                                                 sha.input(&res[1..50]);
292                                                 bidirectional_state.h = Sha256::from_engine(sha).into_inner();
293
294                                                 let ss = SharedSecret::new(&re, our_node_secret);
295                                                 let temp_k = PeerChannelEncryptor::hkdf(bidirectional_state, ss);
296
297                                                 PeerChannelEncryptor::encrypt_with_ad(&mut res[50..], 0, &temp_k, &bidirectional_state.h, &[0; 0]);
298                                                 final_hkdf = Self::hkdf_extract_expand(&bidirectional_state.ck, &[0; 0]);
299                                                 ck = bidirectional_state.ck.clone();
300                                                 res
301                                         },
302                                         _ => panic!("Wrong direction for act"),
303                                 },
304                         _ => panic!("Cannot get act one after noise handshake completes"),
305                 };
306
307                 let (sk, rk) = final_hkdf;
308                 self.noise_state = NoiseState::Finished {
309                         sk: sk,
310                         sn: 0,
311                         sck: ck.clone(),
312                         rk: rk,
313                         rn: 0,
314                         rck: ck,
315                 };
316
317                 Ok((res, self.their_node_id.unwrap().clone()))
318         }
319
320         pub fn process_act_three(&mut self, act_three: &[u8]) -> Result<PublicKey, LightningError> {
321                 assert_eq!(act_three.len(), 66);
322
323                 let final_hkdf;
324                 let ck;
325                 match self.noise_state {
326                         NoiseState::InProgress { ref state, ref directional_state, ref mut bidirectional_state } =>
327                                 match directional_state {
328                                         &DirectionalNoiseState::Inbound { ie: _, ref re, ref temp_k2 } => {
329                                                 if *state != NoiseStep::PostActTwo {
330                                                         panic!("Requested act at wrong step");
331                                                 }
332                                                 if act_three[0] != 0 {
333                                                         return Err(LightningError{err: "Unknown handshake version number", action: msgs::ErrorAction::DisconnectPeer{ msg: None }});
334                                                 }
335
336                                                 let mut their_node_id = [0; 33];
337                                                 PeerChannelEncryptor::decrypt_with_ad(&mut their_node_id, 1, &temp_k2.unwrap(), &bidirectional_state.h, &act_three[1..50])?;
338                                                 self.their_node_id = Some(match PublicKey::from_slice(&their_node_id) {
339                                                         Ok(key) => key,
340                                                         Err(_) => return Err(LightningError{err: "Bad node_id from peer", action: msgs::ErrorAction::DisconnectPeer{ msg: None }}),
341                                                 });
342
343                                                 let mut sha = Sha256::engine();
344                                                 sha.input(&bidirectional_state.h);
345                                                 sha.input(&act_three[1..50]);
346                                                 bidirectional_state.h = Sha256::from_engine(sha).into_inner();
347
348                                                 let ss = SharedSecret::new(&self.their_node_id.unwrap(), &re.unwrap());
349                                                 let temp_k = PeerChannelEncryptor::hkdf(bidirectional_state, ss);
350
351                                                 PeerChannelEncryptor::decrypt_with_ad(&mut [0; 0], 0, &temp_k, &bidirectional_state.h, &act_three[50..])?;
352                                                 final_hkdf = Self::hkdf_extract_expand(&bidirectional_state.ck, &[0; 0]);
353                                                 ck = bidirectional_state.ck.clone();
354                                         },
355                                         _ => panic!("Wrong direction for act"),
356                                 },
357                         _ => panic!("Cannot get act one after noise handshake completes"),
358                 }
359
360                 let (rk, sk) = final_hkdf;
361                 self.noise_state = NoiseState::Finished {
362                         sk: sk,
363                         sn: 0,
364                         sck: ck.clone(),
365                         rk: rk,
366                         rn: 0,
367                         rck: ck,
368                 };
369
370                 Ok(self.their_node_id.unwrap().clone())
371         }
372
373         /// Encrypts the given message, returning the encrypted version
374         /// panics if msg.len() > 65535 or Noise handshake has not finished.
375         pub fn encrypt_message(&mut self, msg: &[u8]) -> Vec<u8> {
376                 if msg.len() > 65535 {
377                         panic!("Attempted to encrypt message longer than 65535 bytes!");
378                 }
379
380                 let mut res = Vec::with_capacity(msg.len() + 16*2 + 2);
381                 res.resize(msg.len() + 16*2 + 2, 0);
382
383                 match self.noise_state {
384                         NoiseState::Finished { ref mut sk, ref mut sn, ref mut sck, rk: _, rn: _, rck: _ } => {
385                                 if *sn >= 1000 {
386                                         let (new_sck, new_sk) = Self::hkdf_extract_expand(sck, sk);
387                                         *sck = new_sck;
388                                         *sk = new_sk;
389                                         *sn = 0;
390                                 }
391
392                                 Self::encrypt_with_ad(&mut res[0..16+2], *sn, sk, &[0; 0], &byte_utils::be16_to_array(msg.len() as u16));
393                                 *sn += 1;
394
395                                 Self::encrypt_with_ad(&mut res[16+2..], *sn, sk, &[0; 0], msg);
396                                 *sn += 1;
397                         },
398                         _ => panic!("Tried to encrypt a message prior to noise handshake completion"),
399                 }
400
401                 res
402         }
403
404         /// Decrypts a message length header from the remote peer.
405         /// panics if noise handshake has not yet finished or msg.len() != 18
406         pub fn decrypt_length_header(&mut self, msg: &[u8]) -> Result<u16, LightningError> {
407                 assert_eq!(msg.len(), 16+2);
408
409                 match self.noise_state {
410                         NoiseState::Finished { sk: _, sn: _, sck: _, ref mut rk, ref mut rn, ref mut rck } => {
411                                 if *rn >= 1000 {
412                                         let (new_rck, new_rk) = Self::hkdf_extract_expand(rck, rk);
413                                         *rck = new_rck;
414                                         *rk = new_rk;
415                                         *rn = 0;
416                                 }
417
418                                 let mut res = [0; 2];
419                                 Self::decrypt_with_ad(&mut res, *rn, rk, &[0; 0], msg)?;
420                                 *rn += 1;
421                                 Ok(byte_utils::slice_to_be16(&res))
422                         },
423                         _ => panic!("Tried to encrypt a message prior to noise handshake completion"),
424                 }
425         }
426
427         /// Decrypts the given message.
428         /// panics if msg.len() > 65535 + 16
429         pub fn decrypt_message(&mut self, msg: &[u8]) -> Result<Vec<u8>, LightningError> {
430                 if msg.len() > 65535 + 16 {
431                         panic!("Attempted to encrypt message longer than 65535 bytes!");
432                 }
433
434                 match self.noise_state {
435                         NoiseState::Finished { sk: _, sn: _, sck: _, ref rk, ref mut rn, rck: _ } => {
436                                 let mut res = Vec::with_capacity(msg.len() - 16);
437                                 res.resize(msg.len() - 16, 0);
438                                 Self::decrypt_with_ad(&mut res[..], *rn, rk, &[0; 0], msg)?;
439                                 *rn += 1;
440
441                                 Ok(res)
442                         },
443                         _ => panic!("Tried to encrypt a message prior to noise handshake completion"),
444                 }
445         }
446
447         pub fn get_noise_step(&self) -> NextNoiseStep {
448                 match self.noise_state {
449                         NoiseState::InProgress {ref state, ..} => {
450                                 match state {
451                                         &NoiseStep::PreActOne => NextNoiseStep::ActOne,
452                                         &NoiseStep::PostActOne => NextNoiseStep::ActTwo,
453                                         &NoiseStep::PostActTwo => NextNoiseStep::ActThree,
454                                 }
455                         },
456                         NoiseState::Finished {..} => NextNoiseStep::NoiseComplete,
457                 }
458         }
459
460         pub fn is_ready_for_encryption(&self) -> bool {
461                 match self.noise_state {
462                         NoiseState::InProgress {..} => { false },
463                         NoiseState::Finished {..} => { true }
464                 }
465         }
466 }
467
468 #[cfg(test)]
469 mod tests {
470         use secp256k1::key::{PublicKey,SecretKey};
471
472         use hex;
473
474         use ln::peer_channel_encryptor::{PeerChannelEncryptor,NoiseState};
475
476         fn get_outbound_peer_for_initiator_test_vectors() -> PeerChannelEncryptor {
477                 let their_node_id = PublicKey::from_slice(&hex::decode("028d7500dd4c12685d1f568b4c2b5048e8534b873319f3a8daa612b469132ec7f7").unwrap()[..]).unwrap();
478
479                 let mut outbound_peer = PeerChannelEncryptor::new_outbound(their_node_id, SecretKey::from_slice(&hex::decode("1212121212121212121212121212121212121212121212121212121212121212").unwrap()[..]).unwrap());
480                 assert_eq!(outbound_peer.get_act_one()[..], hex::decode("00036360e856310ce5d294e8be33fc807077dc56ac80d95d9cd4ddbd21325eff73f70df6086551151f58b8afe6c195782c6a").unwrap()[..]);
481                 outbound_peer
482         }
483
484         #[test]
485         fn noise_initiator_test_vectors() {
486                 let our_node_id = SecretKey::from_slice(&hex::decode("1111111111111111111111111111111111111111111111111111111111111111").unwrap()[..]).unwrap();
487
488                 {
489                         // transport-initiator successful handshake
490                         let mut outbound_peer = get_outbound_peer_for_initiator_test_vectors();
491
492                         let act_two = hex::decode("0002466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730ae").unwrap().to_vec();
493                         assert_eq!(outbound_peer.process_act_two(&act_two[..], &our_node_id).unwrap().0[..], hex::decode("00b9e3a702e93e3a9948c2ed6e5fd7590a6e1c3a0344cfc9d5b57357049aa22355361aa02e55a8fc28fef5bd6d71ad0c38228dc68b1c466263b47fdf31e560e139ba").unwrap()[..]);
494
495                         match outbound_peer.noise_state {
496                                 NoiseState::Finished { sk, sn, sck, rk, rn, rck } => {
497                                         assert_eq!(sk, hex::decode("969ab31b4d288cedf6218839b27a3e2140827047f2c0f01bf5c04435d43511a9").unwrap()[..]);
498                                         assert_eq!(sn, 0);
499                                         assert_eq!(sck, hex::decode("919219dbb2920afa8db80f9a51787a840bcf111ed8d588caf9ab4be716e42b01").unwrap()[..]);
500                                         assert_eq!(rk, hex::decode("bb9020b8965f4df047e07f955f3c4b88418984aadc5cdb35096b9ea8fa5c3442").unwrap()[..]);
501                                         assert_eq!(rn, 0);
502                                         assert_eq!(rck, hex::decode("919219dbb2920afa8db80f9a51787a840bcf111ed8d588caf9ab4be716e42b01").unwrap()[..]);
503                                 },
504                                 _ => panic!()
505                         }
506                 }
507                 {
508                         // transport-initiator act2 short read test
509                         // Can't actually test this cause process_act_two requires you pass the right length!
510                 }
511                 {
512                         // transport-initiator act2 bad version test
513                         let mut outbound_peer = get_outbound_peer_for_initiator_test_vectors();
514
515                         let act_two = hex::decode("0102466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730ae").unwrap().to_vec();
516                         assert!(outbound_peer.process_act_two(&act_two[..], &our_node_id).is_err());
517                 }
518
519                 {
520                         // transport-initiator act2 bad key serialization test
521                         let mut outbound_peer = get_outbound_peer_for_initiator_test_vectors();
522
523                         let act_two = hex::decode("0004466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730ae").unwrap().to_vec();
524                         assert!(outbound_peer.process_act_two(&act_two[..], &our_node_id).is_err());
525                 }
526
527                 {
528                         // transport-initiator act2 bad MAC test
529                         let mut outbound_peer = get_outbound_peer_for_initiator_test_vectors();
530
531                         let act_two = hex::decode("0002466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730af").unwrap().to_vec();
532                         assert!(outbound_peer.process_act_two(&act_two[..], &our_node_id).is_err());
533                 }
534         }
535
536         #[test]
537         fn noise_responder_test_vectors() {
538                 let our_node_id = SecretKey::from_slice(&hex::decode("2121212121212121212121212121212121212121212121212121212121212121").unwrap()[..]).unwrap();
539                 let our_ephemeral = SecretKey::from_slice(&hex::decode("2222222222222222222222222222222222222222222222222222222222222222").unwrap()[..]).unwrap();
540
541                 {
542                         // transport-responder successful handshake
543                         let mut inbound_peer = PeerChannelEncryptor::new_inbound(&our_node_id);
544
545                         let act_one = hex::decode("00036360e856310ce5d294e8be33fc807077dc56ac80d95d9cd4ddbd21325eff73f70df6086551151f58b8afe6c195782c6a").unwrap().to_vec();
546                         assert_eq!(inbound_peer.process_act_one_with_keys(&act_one[..], &our_node_id, our_ephemeral.clone()).unwrap()[..], hex::decode("0002466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730ae").unwrap()[..]);
547
548                         let act_three = hex::decode("00b9e3a702e93e3a9948c2ed6e5fd7590a6e1c3a0344cfc9d5b57357049aa22355361aa02e55a8fc28fef5bd6d71ad0c38228dc68b1c466263b47fdf31e560e139ba").unwrap().to_vec();
549                         // test vector doesn't specify the initiator static key, but it's the same as the one
550                         // from transport-initiator successful handshake
551                         assert_eq!(inbound_peer.process_act_three(&act_three[..]).unwrap().serialize()[..], hex::decode("034f355bdcb7cc0af728ef3cceb9615d90684bb5b2ca5f859ab0f0b704075871aa").unwrap()[..]);
552
553                         match inbound_peer.noise_state {
554                                 NoiseState::Finished { sk, sn, sck, rk, rn, rck } => {
555                                         assert_eq!(sk, hex::decode("bb9020b8965f4df047e07f955f3c4b88418984aadc5cdb35096b9ea8fa5c3442").unwrap()[..]);
556                                         assert_eq!(sn, 0);
557                                         assert_eq!(sck, hex::decode("919219dbb2920afa8db80f9a51787a840bcf111ed8d588caf9ab4be716e42b01").unwrap()[..]);
558                                         assert_eq!(rk, hex::decode("969ab31b4d288cedf6218839b27a3e2140827047f2c0f01bf5c04435d43511a9").unwrap()[..]);
559                                         assert_eq!(rn, 0);
560                                         assert_eq!(rck, hex::decode("919219dbb2920afa8db80f9a51787a840bcf111ed8d588caf9ab4be716e42b01").unwrap()[..]);
561                                 },
562                                 _ => panic!()
563                         }
564                 }
565                 {
566                         // transport-responder act1 short read test
567                         // Can't actually test this cause process_act_one requires you pass the right length!
568                 }
569                 {
570                         // transport-responder act1 bad version test
571                         let mut inbound_peer = PeerChannelEncryptor::new_inbound(&our_node_id);
572
573                         let act_one = hex::decode("01036360e856310ce5d294e8be33fc807077dc56ac80d95d9cd4ddbd21325eff73f70df6086551151f58b8afe6c195782c6a").unwrap().to_vec();
574                         assert!(inbound_peer.process_act_one_with_keys(&act_one[..], &our_node_id, our_ephemeral.clone()).is_err());
575                 }
576                 {
577                         // transport-responder act1 bad key serialization test
578                         let mut inbound_peer = PeerChannelEncryptor::new_inbound(&our_node_id);
579
580                         let act_one =hex::decode("00046360e856310ce5d294e8be33fc807077dc56ac80d95d9cd4ddbd21325eff73f70df6086551151f58b8afe6c195782c6a").unwrap().to_vec();
581                         assert!(inbound_peer.process_act_one_with_keys(&act_one[..], &our_node_id, our_ephemeral.clone()).is_err());
582                 }
583                 {
584                         // transport-responder act1 bad MAC test
585                         let mut inbound_peer = PeerChannelEncryptor::new_inbound(&our_node_id);
586
587                         let act_one = hex::decode("00036360e856310ce5d294e8be33fc807077dc56ac80d95d9cd4ddbd21325eff73f70df6086551151f58b8afe6c195782c6b").unwrap().to_vec();
588                         assert!(inbound_peer.process_act_one_with_keys(&act_one[..], &our_node_id, our_ephemeral.clone()).is_err());
589                 }
590                 {
591                         // transport-responder act3 bad version test
592                         let mut inbound_peer = PeerChannelEncryptor::new_inbound(&our_node_id);
593
594                         let act_one = hex::decode("00036360e856310ce5d294e8be33fc807077dc56ac80d95d9cd4ddbd21325eff73f70df6086551151f58b8afe6c195782c6a").unwrap().to_vec();
595                         assert_eq!(inbound_peer.process_act_one_with_keys(&act_one[..], &our_node_id, our_ephemeral.clone()).unwrap()[..], hex::decode("0002466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730ae").unwrap()[..]);
596
597                         let act_three = hex::decode("01b9e3a702e93e3a9948c2ed6e5fd7590a6e1c3a0344cfc9d5b57357049aa22355361aa02e55a8fc28fef5bd6d71ad0c38228dc68b1c466263b47fdf31e560e139ba").unwrap().to_vec();
598                         assert!(inbound_peer.process_act_three(&act_three[..]).is_err());
599                 }
600                 {
601                         // transport-responder act3 short read test
602                         // Can't actually test this cause process_act_three requires you pass the right length!
603                 }
604                 {
605                         // transport-responder act3 bad MAC for ciphertext test
606                         let mut inbound_peer = PeerChannelEncryptor::new_inbound(&our_node_id);
607
608                         let act_one = hex::decode("00036360e856310ce5d294e8be33fc807077dc56ac80d95d9cd4ddbd21325eff73f70df6086551151f58b8afe6c195782c6a").unwrap().to_vec();
609                         assert_eq!(inbound_peer.process_act_one_with_keys(&act_one[..], &our_node_id, our_ephemeral.clone()).unwrap()[..], hex::decode("0002466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730ae").unwrap()[..]);
610
611                         let act_three = hex::decode("00c9e3a702e93e3a9948c2ed6e5fd7590a6e1c3a0344cfc9d5b57357049aa22355361aa02e55a8fc28fef5bd6d71ad0c38228dc68b1c466263b47fdf31e560e139ba").unwrap().to_vec();
612                         assert!(inbound_peer.process_act_three(&act_three[..]).is_err());
613                 }
614                 {
615                         // transport-responder act3 bad rs test
616                         let mut inbound_peer = PeerChannelEncryptor::new_inbound(&our_node_id);
617
618                         let act_one = hex::decode("00036360e856310ce5d294e8be33fc807077dc56ac80d95d9cd4ddbd21325eff73f70df6086551151f58b8afe6c195782c6a").unwrap().to_vec();
619                         assert_eq!(inbound_peer.process_act_one_with_keys(&act_one[..], &our_node_id, our_ephemeral.clone()).unwrap()[..], hex::decode("0002466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730ae").unwrap()[..]);
620
621                         let act_three = hex::decode("00bfe3a702e93e3a9948c2ed6e5fd7590a6e1c3a0344cfc9d5b57357049aa2235536ad09a8ee351870c2bb7f78b754a26c6cef79a98d25139c856d7efd252c2ae73c").unwrap().to_vec();
622                         assert!(inbound_peer.process_act_three(&act_three[..]).is_err());
623                 }
624                 {
625                         // transport-responder act3 bad MAC test
626                         let mut inbound_peer = PeerChannelEncryptor::new_inbound(&our_node_id);
627
628                         let act_one = hex::decode("00036360e856310ce5d294e8be33fc807077dc56ac80d95d9cd4ddbd21325eff73f70df6086551151f58b8afe6c195782c6a").unwrap().to_vec();
629                         assert_eq!(inbound_peer.process_act_one_with_keys(&act_one[..], &our_node_id, our_ephemeral.clone()).unwrap()[..], hex::decode("0002466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730ae").unwrap()[..]);
630
631                         let act_three = hex::decode("00b9e3a702e93e3a9948c2ed6e5fd7590a6e1c3a0344cfc9d5b57357049aa22355361aa02e55a8fc28fef5bd6d71ad0c38228dc68b1c466263b47fdf31e560e139bb").unwrap().to_vec();
632                         assert!(inbound_peer.process_act_three(&act_three[..]).is_err());
633                 }
634         }
635
636
637         #[test]
638         fn message_encryption_decryption_test_vectors() {
639                 // We use the same keys as the initiator and responder test vectors, so we copy those tests
640                 // here and use them to encrypt.
641                 let mut outbound_peer = get_outbound_peer_for_initiator_test_vectors();
642
643                 {
644                         let our_node_id = SecretKey::from_slice(&hex::decode("1111111111111111111111111111111111111111111111111111111111111111").unwrap()[..]).unwrap();
645
646                         let act_two = hex::decode("0002466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730ae").unwrap().to_vec();
647                         assert_eq!(outbound_peer.process_act_two(&act_two[..], &our_node_id).unwrap().0[..], hex::decode("00b9e3a702e93e3a9948c2ed6e5fd7590a6e1c3a0344cfc9d5b57357049aa22355361aa02e55a8fc28fef5bd6d71ad0c38228dc68b1c466263b47fdf31e560e139ba").unwrap()[..]);
648
649                         match outbound_peer.noise_state {
650                                 NoiseState::Finished { sk, sn, sck, rk, rn, rck } => {
651                                         assert_eq!(sk, hex::decode("969ab31b4d288cedf6218839b27a3e2140827047f2c0f01bf5c04435d43511a9").unwrap()[..]);
652                                         assert_eq!(sn, 0);
653                                         assert_eq!(sck, hex::decode("919219dbb2920afa8db80f9a51787a840bcf111ed8d588caf9ab4be716e42b01").unwrap()[..]);
654                                         assert_eq!(rk, hex::decode("bb9020b8965f4df047e07f955f3c4b88418984aadc5cdb35096b9ea8fa5c3442").unwrap()[..]);
655                                         assert_eq!(rn, 0);
656                                         assert_eq!(rck, hex::decode("919219dbb2920afa8db80f9a51787a840bcf111ed8d588caf9ab4be716e42b01").unwrap()[..]);
657                                 },
658                                 _ => panic!()
659                         }
660                 }
661
662                 let mut inbound_peer;
663
664                 {
665                         // transport-responder successful handshake
666                         let our_node_id = SecretKey::from_slice(&hex::decode("2121212121212121212121212121212121212121212121212121212121212121").unwrap()[..]).unwrap();
667                         let our_ephemeral = SecretKey::from_slice(&hex::decode("2222222222222222222222222222222222222222222222222222222222222222").unwrap()[..]).unwrap();
668
669                         inbound_peer = PeerChannelEncryptor::new_inbound(&our_node_id);
670
671                         let act_one = hex::decode("00036360e856310ce5d294e8be33fc807077dc56ac80d95d9cd4ddbd21325eff73f70df6086551151f58b8afe6c195782c6a").unwrap().to_vec();
672                         assert_eq!(inbound_peer.process_act_one_with_keys(&act_one[..], &our_node_id, our_ephemeral.clone()).unwrap()[..], hex::decode("0002466d7fcae563e5cb09a0d1870bb580344804617879a14949cf22285f1bae3f276e2470b93aac583c9ef6eafca3f730ae").unwrap()[..]);
673
674                         let act_three = hex::decode("00b9e3a702e93e3a9948c2ed6e5fd7590a6e1c3a0344cfc9d5b57357049aa22355361aa02e55a8fc28fef5bd6d71ad0c38228dc68b1c466263b47fdf31e560e139ba").unwrap().to_vec();
675                         // test vector doesn't specify the initiator static key, but it's the same as the one
676                         // from transport-initiator successful handshake
677                         assert_eq!(inbound_peer.process_act_three(&act_three[..]).unwrap().serialize()[..], hex::decode("034f355bdcb7cc0af728ef3cceb9615d90684bb5b2ca5f859ab0f0b704075871aa").unwrap()[..]);
678
679                         match inbound_peer.noise_state {
680                                 NoiseState::Finished { sk, sn, sck, rk, rn, rck } => {
681                                         assert_eq!(sk, hex::decode("bb9020b8965f4df047e07f955f3c4b88418984aadc5cdb35096b9ea8fa5c3442").unwrap()[..]);
682                                         assert_eq!(sn, 0);
683                                         assert_eq!(sck, hex::decode("919219dbb2920afa8db80f9a51787a840bcf111ed8d588caf9ab4be716e42b01").unwrap()[..]);
684                                         assert_eq!(rk, hex::decode("969ab31b4d288cedf6218839b27a3e2140827047f2c0f01bf5c04435d43511a9").unwrap()[..]);
685                                         assert_eq!(rn, 0);
686                                         assert_eq!(rck, hex::decode("919219dbb2920afa8db80f9a51787a840bcf111ed8d588caf9ab4be716e42b01").unwrap()[..]);
687                                 },
688                                 _ => panic!()
689                         }
690                 }
691
692                 for i in 0..1005 {
693                         let msg = [0x68, 0x65, 0x6c, 0x6c, 0x6f];
694                         let res = outbound_peer.encrypt_message(&msg);
695                         assert_eq!(res.len(), 5 + 2*16 + 2);
696
697                         let len_header = res[0..2+16].to_vec();
698                         assert_eq!(inbound_peer.decrypt_length_header(&len_header[..]).unwrap() as usize, msg.len());
699                         assert_eq!(inbound_peer.decrypt_message(&res[2+16..]).unwrap()[..], msg[..]);
700
701                         if i == 0 {
702                                 assert_eq!(res, hex::decode("cf2b30ddf0cf3f80e7c35a6e6730b59fe802473180f396d88a8fb0db8cbcf25d2f214cf9ea1d95").unwrap());
703                         } else if i == 1 {
704                                 assert_eq!(res, hex::decode("72887022101f0b6753e0c7de21657d35a4cb2a1f5cde2650528bbc8f837d0f0d7ad833b1a256a1").unwrap());
705                         } else if i == 500 {
706                                 assert_eq!(res, hex::decode("178cb9d7387190fa34db9c2d50027d21793c9bc2d40b1e14dcf30ebeeeb220f48364f7a4c68bf8").unwrap());
707                         } else if i == 501 {
708                                 assert_eq!(res, hex::decode("1b186c57d44eb6de4c057c49940d79bb838a145cb528d6e8fd26dbe50a60ca2c104b56b60e45bd").unwrap());
709                         } else if i == 1000 {
710                                 assert_eq!(res, hex::decode("4a2f3cc3b5e78ddb83dcb426d9863d9d9a723b0337c89dd0b005d89f8d3c05c52b76b29b740f09").unwrap());
711                         } else if i == 1001 {
712                                 assert_eq!(res, hex::decode("2ecd8c8a5629d0d02ab457a0fdd0f7b90a192cd46be5ecb6ca570bfc5e268338b1a16cf4ef2d36").unwrap());
713                         }
714                 }
715         }
716 }