otr.go 35 KB

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  1. // Copyright 2012 The Go Authors. All rights reserved.
  2. // Use of this source code is governed by a BSD-style
  3. // license that can be found in the LICENSE file.
  4. // Package otr implements the Off The Record protocol as specified in
  5. // http://www.cypherpunks.ca/otr/Protocol-v2-3.1.0.html
  6. package otr
  7. import (
  8. "bytes"
  9. "crypto/aes"
  10. "crypto/cipher"
  11. "crypto/dsa"
  12. "crypto/hmac"
  13. "crypto/rand"
  14. "crypto/sha1"
  15. "crypto/sha256"
  16. "crypto/subtle"
  17. "encoding/base64"
  18. "encoding/hex"
  19. "errors"
  20. "hash"
  21. "io"
  22. "math/big"
  23. "strconv"
  24. )
  25. // SecurityChange describes a change in the security state of a Conversation.
  26. type SecurityChange int
  27. const (
  28. NoChange SecurityChange = iota
  29. // NewKeys indicates that a key exchange has completed. This occurs
  30. // when a conversation first becomes encrypted, and when the keys are
  31. // renegotiated within an encrypted conversation.
  32. NewKeys
  33. // SMPSecretNeeded indicates that the peer has started an
  34. // authentication and that we need to supply a secret. Call SMPQuestion
  35. // to get the optional, human readable challenge and then Authenticate
  36. // to supply the matching secret.
  37. SMPSecretNeeded
  38. // SMPComplete indicates that an authentication completed. The identity
  39. // of the peer has now been confirmed.
  40. SMPComplete
  41. // SMPFailed indicates that an authentication failed.
  42. SMPFailed
  43. // ConversationEnded indicates that the peer ended the secure
  44. // conversation.
  45. ConversationEnded
  46. )
  47. // QueryMessage can be sent to a peer to start an OTR conversation.
  48. var QueryMessage = "?OTRv2?"
  49. // ErrorPrefix can be used to make an OTR error by appending an error message
  50. // to it.
  51. var ErrorPrefix = "?OTR Error:"
  52. var (
  53. fragmentPartSeparator = []byte(",")
  54. fragmentPrefix = []byte("?OTR,")
  55. msgPrefix = []byte("?OTR:")
  56. queryMarker = []byte("?OTR")
  57. )
  58. // isQuery attempts to parse an OTR query from msg and returns the greatest
  59. // common version, or 0 if msg is not an OTR query.
  60. func isQuery(msg []byte) (greatestCommonVersion int) {
  61. pos := bytes.Index(msg, queryMarker)
  62. if pos == -1 {
  63. return 0
  64. }
  65. for i, c := range msg[pos+len(queryMarker):] {
  66. if i == 0 {
  67. if c == '?' {
  68. // Indicates support for version 1, but we don't
  69. // implement that.
  70. continue
  71. }
  72. if c != 'v' {
  73. // Invalid message
  74. return 0
  75. }
  76. continue
  77. }
  78. if c == '?' {
  79. // End of message
  80. return
  81. }
  82. if c == ' ' || c == '\t' {
  83. // Probably an invalid message
  84. return 0
  85. }
  86. if c == '2' {
  87. greatestCommonVersion = 2
  88. }
  89. }
  90. return 0
  91. }
  92. const (
  93. statePlaintext = iota
  94. stateEncrypted
  95. stateFinished
  96. )
  97. const (
  98. authStateNone = iota
  99. authStateAwaitingDHKey
  100. authStateAwaitingRevealSig
  101. authStateAwaitingSig
  102. )
  103. const (
  104. msgTypeDHCommit = 2
  105. msgTypeData = 3
  106. msgTypeDHKey = 10
  107. msgTypeRevealSig = 17
  108. msgTypeSig = 18
  109. )
  110. const (
  111. // If the requested fragment size is less than this, it will be ignored.
  112. minFragmentSize = 18
  113. // Messages are padded to a multiple of this number of bytes.
  114. paddingGranularity = 256
  115. // The number of bytes in a Diffie-Hellman private value (320-bits).
  116. dhPrivateBytes = 40
  117. // The number of bytes needed to represent an element of the DSA
  118. // subgroup (160-bits).
  119. dsaSubgroupBytes = 20
  120. // The number of bytes of the MAC that are sent on the wire (160-bits).
  121. macPrefixBytes = 20
  122. )
  123. // These are the global, common group parameters for OTR.
  124. var (
  125. p *big.Int // group prime
  126. g *big.Int // group generator
  127. q *big.Int // group order
  128. pMinus2 *big.Int
  129. )
  130. func init() {
  131. p, _ = new(big.Int).SetString("FFFFFFFFFFFFFFFFC90FDAA22168C234C4C6628B80DC1CD129024E088A67CC74020BBEA63B139B22514A08798E3404DDEF9519B3CD3A431B302B0A6DF25F14374FE1356D6D51C245E485B576625E7EC6F44C42E9A637ED6B0BFF5CB6F406B7EDEE386BFB5A899FA5AE9F24117C4B1FE649286651ECE45B3DC2007CB8A163BF0598DA48361C55D39A69163FA8FD24CF5F83655D23DCA3AD961C62F356208552BB9ED529077096966D670C354E4ABC9804F1746C08CA237327FFFFFFFFFFFFFFFF", 16)
  132. q, _ = new(big.Int).SetString("7FFFFFFFFFFFFFFFE487ED5110B4611A62633145C06E0E68948127044533E63A0105DF531D89CD9128A5043CC71A026EF7CA8CD9E69D218D98158536F92F8A1BA7F09AB6B6A8E122F242DABB312F3F637A262174D31BF6B585FFAE5B7A035BF6F71C35FDAD44CFD2D74F9208BE258FF324943328F6722D9EE1003E5C50B1DF82CC6D241B0E2AE9CD348B1FD47E9267AFC1B2AE91EE51D6CB0E3179AB1042A95DCF6A9483B84B4B36B3861AA7255E4C0278BA36046511B993FFFFFFFFFFFFFFFF", 16)
  133. g = new(big.Int).SetInt64(2)
  134. pMinus2 = new(big.Int).Sub(p, g)
  135. }
  136. // Conversation represents a relation with a peer. The zero value is a valid
  137. // Conversation, although PrivateKey must be set.
  138. //
  139. // When communicating with a peer, all inbound messages should be passed to
  140. // Conversation.Receive and all outbound messages to Conversation.Send. The
  141. // Conversation will take care of maintaining the encryption state and
  142. // negotiating encryption as needed.
  143. type Conversation struct {
  144. // PrivateKey contains the private key to use to sign key exchanges.
  145. PrivateKey *PrivateKey
  146. // Rand can be set to override the entropy source. Otherwise,
  147. // crypto/rand will be used.
  148. Rand io.Reader
  149. // If FragmentSize is set, all messages produced by Receive and Send
  150. // will be fragmented into messages of, at most, this number of bytes.
  151. FragmentSize int
  152. // Once Receive has returned NewKeys once, the following fields are
  153. // valid.
  154. SSID [8]byte
  155. TheirPublicKey PublicKey
  156. state, authState int
  157. r [16]byte
  158. x, y *big.Int
  159. gx, gy *big.Int
  160. gxBytes []byte
  161. digest [sha256.Size]byte
  162. revealKeys, sigKeys akeKeys
  163. myKeyId uint32
  164. myCurrentDHPub *big.Int
  165. myCurrentDHPriv *big.Int
  166. myLastDHPub *big.Int
  167. myLastDHPriv *big.Int
  168. theirKeyId uint32
  169. theirCurrentDHPub *big.Int
  170. theirLastDHPub *big.Int
  171. keySlots [4]keySlot
  172. myCounter [8]byte
  173. theirLastCtr [8]byte
  174. oldMACs []byte
  175. k, n int // fragment state
  176. frag []byte
  177. smp smpState
  178. }
  179. // A keySlot contains key material for a specific (their keyid, my keyid) pair.
  180. type keySlot struct {
  181. // used is true if this slot is valid. If false, it's free for reuse.
  182. used bool
  183. theirKeyId uint32
  184. myKeyId uint32
  185. sendAESKey, recvAESKey []byte
  186. sendMACKey, recvMACKey []byte
  187. theirLastCtr [8]byte
  188. }
  189. // akeKeys are generated during key exchange. There's one set for the reveal
  190. // signature message and another for the signature message. In the protocol
  191. // spec the latter are indicated with a prime mark.
  192. type akeKeys struct {
  193. c [16]byte
  194. m1, m2 [32]byte
  195. }
  196. func (c *Conversation) rand() io.Reader {
  197. if c.Rand != nil {
  198. return c.Rand
  199. }
  200. return rand.Reader
  201. }
  202. func (c *Conversation) randMPI(buf []byte) *big.Int {
  203. _, err := io.ReadFull(c.rand(), buf)
  204. if err != nil {
  205. panic("otr: short read from random source")
  206. }
  207. return new(big.Int).SetBytes(buf)
  208. }
  209. // tlv represents the type-length value from the protocol.
  210. type tlv struct {
  211. typ, length uint16
  212. data []byte
  213. }
  214. const (
  215. tlvTypePadding = 0
  216. tlvTypeDisconnected = 1
  217. tlvTypeSMP1 = 2
  218. tlvTypeSMP2 = 3
  219. tlvTypeSMP3 = 4
  220. tlvTypeSMP4 = 5
  221. tlvTypeSMPAbort = 6
  222. tlvTypeSMP1WithQuestion = 7
  223. )
  224. // Receive handles a message from a peer. It returns a human readable message,
  225. // an indicator of whether that message was encrypted, a hint about the
  226. // encryption state and zero or more messages to send back to the peer.
  227. // These messages do not need to be passed to Send before transmission.
  228. func (c *Conversation) Receive(in []byte) (out []byte, encrypted bool, change SecurityChange, toSend [][]byte, err error) {
  229. if bytes.HasPrefix(in, fragmentPrefix) {
  230. in, err = c.processFragment(in)
  231. if in == nil || err != nil {
  232. return
  233. }
  234. }
  235. if bytes.HasPrefix(in, msgPrefix) && in[len(in)-1] == '.' {
  236. in = in[len(msgPrefix) : len(in)-1]
  237. } else if version := isQuery(in); version > 0 {
  238. c.authState = authStateAwaitingDHKey
  239. toSend = c.encode(c.generateDHCommit())
  240. return
  241. } else {
  242. // plaintext message
  243. out = in
  244. return
  245. }
  246. msg := make([]byte, base64.StdEncoding.DecodedLen(len(in)))
  247. msgLen, err := base64.StdEncoding.Decode(msg, in)
  248. if err != nil {
  249. err = errors.New("otr: invalid base64 encoding in message")
  250. return
  251. }
  252. msg = msg[:msgLen]
  253. // The first two bytes are the protocol version (2)
  254. if len(msg) < 3 || msg[0] != 0 || msg[1] != 2 {
  255. err = errors.New("otr: invalid OTR message")
  256. return
  257. }
  258. msgType := int(msg[2])
  259. msg = msg[3:]
  260. switch msgType {
  261. case msgTypeDHCommit:
  262. switch c.authState {
  263. case authStateNone:
  264. c.authState = authStateAwaitingRevealSig
  265. if err = c.processDHCommit(msg); err != nil {
  266. return
  267. }
  268. toSend = c.encode(c.generateDHKey())
  269. return
  270. case authStateAwaitingDHKey:
  271. // This is a 'SYN-crossing'. The greater digest wins.
  272. var cmp int
  273. if cmp, err = c.compareToDHCommit(msg); err != nil {
  274. return
  275. }
  276. if cmp > 0 {
  277. // We win. Retransmit DH commit.
  278. toSend = c.encode(c.serializeDHCommit())
  279. return
  280. } else {
  281. // They win. We forget about our DH commit.
  282. c.authState = authStateAwaitingRevealSig
  283. if err = c.processDHCommit(msg); err != nil {
  284. return
  285. }
  286. toSend = c.encode(c.generateDHKey())
  287. return
  288. }
  289. case authStateAwaitingRevealSig:
  290. if err = c.processDHCommit(msg); err != nil {
  291. return
  292. }
  293. toSend = c.encode(c.serializeDHKey())
  294. case authStateAwaitingSig:
  295. if err = c.processDHCommit(msg); err != nil {
  296. return
  297. }
  298. toSend = c.encode(c.generateDHKey())
  299. c.authState = authStateAwaitingRevealSig
  300. default:
  301. panic("bad state")
  302. }
  303. case msgTypeDHKey:
  304. switch c.authState {
  305. case authStateAwaitingDHKey:
  306. var isSame bool
  307. if isSame, err = c.processDHKey(msg); err != nil {
  308. return
  309. }
  310. if isSame {
  311. err = errors.New("otr: unexpected duplicate DH key")
  312. return
  313. }
  314. toSend = c.encode(c.generateRevealSig())
  315. c.authState = authStateAwaitingSig
  316. case authStateAwaitingSig:
  317. var isSame bool
  318. if isSame, err = c.processDHKey(msg); err != nil {
  319. return
  320. }
  321. if isSame {
  322. toSend = c.encode(c.serializeDHKey())
  323. }
  324. }
  325. case msgTypeRevealSig:
  326. if c.authState != authStateAwaitingRevealSig {
  327. return
  328. }
  329. if err = c.processRevealSig(msg); err != nil {
  330. return
  331. }
  332. toSend = c.encode(c.generateSig())
  333. c.authState = authStateNone
  334. c.state = stateEncrypted
  335. change = NewKeys
  336. case msgTypeSig:
  337. if c.authState != authStateAwaitingSig {
  338. return
  339. }
  340. if err = c.processSig(msg); err != nil {
  341. return
  342. }
  343. c.authState = authStateNone
  344. c.state = stateEncrypted
  345. change = NewKeys
  346. case msgTypeData:
  347. if c.state != stateEncrypted {
  348. err = errors.New("otr: encrypted message received without encrypted session established")
  349. return
  350. }
  351. var tlvs []tlv
  352. out, tlvs, err = c.processData(msg)
  353. encrypted = true
  354. EachTLV:
  355. for _, inTLV := range tlvs {
  356. switch inTLV.typ {
  357. case tlvTypeDisconnected:
  358. change = ConversationEnded
  359. c.state = stateFinished
  360. break EachTLV
  361. case tlvTypeSMP1, tlvTypeSMP2, tlvTypeSMP3, tlvTypeSMP4, tlvTypeSMPAbort, tlvTypeSMP1WithQuestion:
  362. var reply tlv
  363. var complete bool
  364. reply, complete, err = c.processSMP(inTLV)
  365. if err == smpSecretMissingError {
  366. err = nil
  367. change = SMPSecretNeeded
  368. c.smp.saved = &inTLV
  369. return
  370. } else if err == smpFailureError {
  371. err = nil
  372. change = SMPFailed
  373. return
  374. }
  375. if complete {
  376. change = SMPComplete
  377. }
  378. if reply.typ != 0 {
  379. toSend = c.encode(c.generateData(nil, &reply))
  380. }
  381. break EachTLV
  382. default:
  383. // skip unknown TLVs
  384. }
  385. }
  386. default:
  387. err = errors.New("otr: unknown message type " + strconv.Itoa(msgType))
  388. }
  389. return
  390. }
  391. // Send takes a human readable message from the local user, possibly encrypts
  392. // it and returns zero one or more messages to send to the peer.
  393. func (c *Conversation) Send(msg []byte) ([][]byte, error) {
  394. switch c.state {
  395. case statePlaintext:
  396. return [][]byte{msg}, nil
  397. case stateEncrypted:
  398. return c.encode(c.generateData(msg, nil)), nil
  399. case stateFinished:
  400. return nil, errors.New("otr: cannot send message because secure conversation has finished")
  401. }
  402. return nil, errors.New("otr: cannot send message in current state")
  403. }
  404. // SMPQuestion returns the human readable challenge question from the peer.
  405. // It's only valid after Receive has returned SMPSecretNeeded.
  406. func (c *Conversation) SMPQuestion() string {
  407. return c.smp.question
  408. }
  409. // Authenticate begins an authentication with the peer. Authentication involves
  410. // an optional challenge message and a shared secret. The authentication
  411. // proceeds until either Receive returns SMPComplete, SMPSecretNeeded (which
  412. // indicates that a new authentication is happening and thus this one was
  413. // aborted) or SMPFailed.
  414. func (c *Conversation) Authenticate(question string, mutualSecret []byte) (toSend [][]byte, err error) {
  415. if c.state != stateEncrypted {
  416. err = errors.New("otr: can't authenticate a peer without a secure conversation established")
  417. return
  418. }
  419. if c.smp.saved != nil {
  420. c.calcSMPSecret(mutualSecret, false /* they started it */)
  421. var out tlv
  422. var complete bool
  423. out, complete, err = c.processSMP(*c.smp.saved)
  424. if complete {
  425. panic("SMP completed on the first message")
  426. }
  427. c.smp.saved = nil
  428. if out.typ != 0 {
  429. toSend = c.encode(c.generateData(nil, &out))
  430. }
  431. return
  432. }
  433. c.calcSMPSecret(mutualSecret, true /* we started it */)
  434. outs := c.startSMP(question)
  435. for _, out := range outs {
  436. toSend = append(toSend, c.encode(c.generateData(nil, &out))...)
  437. }
  438. return
  439. }
  440. // End ends a secure conversation by generating a termination message for
  441. // the peer and switches to unencrypted communication.
  442. func (c *Conversation) End() (toSend [][]byte) {
  443. switch c.state {
  444. case statePlaintext:
  445. return nil
  446. case stateEncrypted:
  447. c.state = statePlaintext
  448. return c.encode(c.generateData(nil, &tlv{typ: tlvTypeDisconnected}))
  449. case stateFinished:
  450. c.state = statePlaintext
  451. return nil
  452. }
  453. panic("unreachable")
  454. }
  455. var fragmentError = errors.New("otr: invalid OTR fragment")
  456. // processFragment processes a fragmented OTR message and possibly returns a
  457. // complete message. Fragmented messages look like "?OTR,k,n,msg," where k is
  458. // the fragment number (starting from 1), n is the number of fragments in this
  459. // message and msg is a substring of the base64 encoded message.
  460. func (c *Conversation) processFragment(in []byte) (out []byte, err error) {
  461. in = in[len(fragmentPrefix):] // remove "?OTR,"
  462. parts := bytes.Split(in, fragmentPartSeparator)
  463. if len(parts) != 4 || len(parts[3]) != 0 {
  464. return nil, fragmentError
  465. }
  466. k, err := strconv.Atoi(string(parts[0]))
  467. if err != nil {
  468. return nil, fragmentError
  469. }
  470. n, err := strconv.Atoi(string(parts[1]))
  471. if err != nil {
  472. return nil, fragmentError
  473. }
  474. if k < 1 || n < 1 || k > n {
  475. return nil, fragmentError
  476. }
  477. if k == 1 {
  478. c.frag = append(c.frag[:0], parts[2]...)
  479. c.k, c.n = k, n
  480. } else if n == c.n && k == c.k+1 {
  481. c.frag = append(c.frag, parts[2]...)
  482. c.k++
  483. } else {
  484. c.frag = c.frag[:0]
  485. c.n, c.k = 0, 0
  486. }
  487. if c.n > 0 && c.k == c.n {
  488. c.n, c.k = 0, 0
  489. return c.frag, nil
  490. }
  491. return nil, nil
  492. }
  493. func (c *Conversation) generateDHCommit() []byte {
  494. _, err := io.ReadFull(c.rand(), c.r[:])
  495. if err != nil {
  496. panic("otr: short read from random source")
  497. }
  498. var xBytes [dhPrivateBytes]byte
  499. c.x = c.randMPI(xBytes[:])
  500. c.gx = new(big.Int).Exp(g, c.x, p)
  501. c.gy = nil
  502. c.gxBytes = appendMPI(nil, c.gx)
  503. h := sha256.New()
  504. h.Write(c.gxBytes)
  505. h.Sum(c.digest[:0])
  506. aesCipher, err := aes.NewCipher(c.r[:])
  507. if err != nil {
  508. panic(err.Error())
  509. }
  510. var iv [aes.BlockSize]byte
  511. ctr := cipher.NewCTR(aesCipher, iv[:])
  512. ctr.XORKeyStream(c.gxBytes, c.gxBytes)
  513. return c.serializeDHCommit()
  514. }
  515. func (c *Conversation) serializeDHCommit() []byte {
  516. var ret []byte
  517. ret = appendU16(ret, 2) // protocol version
  518. ret = append(ret, msgTypeDHCommit)
  519. ret = appendData(ret, c.gxBytes)
  520. ret = appendData(ret, c.digest[:])
  521. return ret
  522. }
  523. func (c *Conversation) processDHCommit(in []byte) error {
  524. var ok1, ok2 bool
  525. c.gxBytes, in, ok1 = getData(in)
  526. digest, in, ok2 := getData(in)
  527. if !ok1 || !ok2 || len(in) > 0 {
  528. return errors.New("otr: corrupt DH commit message")
  529. }
  530. copy(c.digest[:], digest)
  531. return nil
  532. }
  533. func (c *Conversation) compareToDHCommit(in []byte) (int, error) {
  534. _, in, ok1 := getData(in)
  535. digest, in, ok2 := getData(in)
  536. if !ok1 || !ok2 || len(in) > 0 {
  537. return 0, errors.New("otr: corrupt DH commit message")
  538. }
  539. return bytes.Compare(c.digest[:], digest), nil
  540. }
  541. func (c *Conversation) generateDHKey() []byte {
  542. var yBytes [dhPrivateBytes]byte
  543. c.y = c.randMPI(yBytes[:])
  544. c.gy = new(big.Int).Exp(g, c.y, p)
  545. return c.serializeDHKey()
  546. }
  547. func (c *Conversation) serializeDHKey() []byte {
  548. var ret []byte
  549. ret = appendU16(ret, 2) // protocol version
  550. ret = append(ret, msgTypeDHKey)
  551. ret = appendMPI(ret, c.gy)
  552. return ret
  553. }
  554. func (c *Conversation) processDHKey(in []byte) (isSame bool, err error) {
  555. gy, in, ok := getMPI(in)
  556. if !ok {
  557. err = errors.New("otr: corrupt DH key message")
  558. return
  559. }
  560. if gy.Cmp(g) < 0 || gy.Cmp(pMinus2) > 0 {
  561. err = errors.New("otr: DH value out of range")
  562. return
  563. }
  564. if c.gy != nil {
  565. isSame = c.gy.Cmp(gy) == 0
  566. return
  567. }
  568. c.gy = gy
  569. return
  570. }
  571. func (c *Conversation) generateEncryptedSignature(keys *akeKeys, xFirst bool) ([]byte, []byte) {
  572. var xb []byte
  573. xb = c.PrivateKey.PublicKey.Serialize(xb)
  574. var verifyData []byte
  575. if xFirst {
  576. verifyData = appendMPI(verifyData, c.gx)
  577. verifyData = appendMPI(verifyData, c.gy)
  578. } else {
  579. verifyData = appendMPI(verifyData, c.gy)
  580. verifyData = appendMPI(verifyData, c.gx)
  581. }
  582. verifyData = append(verifyData, xb...)
  583. verifyData = appendU32(verifyData, c.myKeyId)
  584. mac := hmac.New(sha256.New, keys.m1[:])
  585. mac.Write(verifyData)
  586. mb := mac.Sum(nil)
  587. xb = appendU32(xb, c.myKeyId)
  588. xb = append(xb, c.PrivateKey.Sign(c.rand(), mb)...)
  589. aesCipher, err := aes.NewCipher(keys.c[:])
  590. if err != nil {
  591. panic(err.Error())
  592. }
  593. var iv [aes.BlockSize]byte
  594. ctr := cipher.NewCTR(aesCipher, iv[:])
  595. ctr.XORKeyStream(xb, xb)
  596. mac = hmac.New(sha256.New, keys.m2[:])
  597. encryptedSig := appendData(nil, xb)
  598. mac.Write(encryptedSig)
  599. return encryptedSig, mac.Sum(nil)
  600. }
  601. func (c *Conversation) generateRevealSig() []byte {
  602. s := new(big.Int).Exp(c.gy, c.x, p)
  603. c.calcAKEKeys(s)
  604. c.myKeyId++
  605. encryptedSig, mac := c.generateEncryptedSignature(&c.revealKeys, true /* gx comes first */)
  606. c.myCurrentDHPub = c.gx
  607. c.myCurrentDHPriv = c.x
  608. c.rotateDHKeys()
  609. incCounter(&c.myCounter)
  610. var ret []byte
  611. ret = appendU16(ret, 2)
  612. ret = append(ret, msgTypeRevealSig)
  613. ret = appendData(ret, c.r[:])
  614. ret = append(ret, encryptedSig...)
  615. ret = append(ret, mac[:20]...)
  616. return ret
  617. }
  618. func (c *Conversation) processEncryptedSig(encryptedSig, theirMAC []byte, keys *akeKeys, xFirst bool) error {
  619. mac := hmac.New(sha256.New, keys.m2[:])
  620. mac.Write(appendData(nil, encryptedSig))
  621. myMAC := mac.Sum(nil)[:20]
  622. if len(myMAC) != len(theirMAC) || subtle.ConstantTimeCompare(myMAC, theirMAC) == 0 {
  623. return errors.New("bad signature MAC in encrypted signature")
  624. }
  625. aesCipher, err := aes.NewCipher(keys.c[:])
  626. if err != nil {
  627. panic(err.Error())
  628. }
  629. var iv [aes.BlockSize]byte
  630. ctr := cipher.NewCTR(aesCipher, iv[:])
  631. ctr.XORKeyStream(encryptedSig, encryptedSig)
  632. sig := encryptedSig
  633. sig, ok1 := c.TheirPublicKey.Parse(sig)
  634. keyId, sig, ok2 := getU32(sig)
  635. if !ok1 || !ok2 {
  636. return errors.New("otr: corrupt encrypted signature")
  637. }
  638. var verifyData []byte
  639. if xFirst {
  640. verifyData = appendMPI(verifyData, c.gx)
  641. verifyData = appendMPI(verifyData, c.gy)
  642. } else {
  643. verifyData = appendMPI(verifyData, c.gy)
  644. verifyData = appendMPI(verifyData, c.gx)
  645. }
  646. verifyData = c.TheirPublicKey.Serialize(verifyData)
  647. verifyData = appendU32(verifyData, keyId)
  648. mac = hmac.New(sha256.New, keys.m1[:])
  649. mac.Write(verifyData)
  650. mb := mac.Sum(nil)
  651. sig, ok1 = c.TheirPublicKey.Verify(mb, sig)
  652. if !ok1 {
  653. return errors.New("bad signature in encrypted signature")
  654. }
  655. if len(sig) > 0 {
  656. return errors.New("corrupt encrypted signature")
  657. }
  658. c.theirKeyId = keyId
  659. zero(c.theirLastCtr[:])
  660. return nil
  661. }
  662. func (c *Conversation) processRevealSig(in []byte) error {
  663. r, in, ok1 := getData(in)
  664. encryptedSig, in, ok2 := getData(in)
  665. theirMAC := in
  666. if !ok1 || !ok2 || len(theirMAC) != 20 {
  667. return errors.New("otr: corrupt reveal signature message")
  668. }
  669. aesCipher, err := aes.NewCipher(r)
  670. if err != nil {
  671. return errors.New("otr: cannot create AES cipher from reveal signature message: " + err.Error())
  672. }
  673. var iv [aes.BlockSize]byte
  674. ctr := cipher.NewCTR(aesCipher, iv[:])
  675. ctr.XORKeyStream(c.gxBytes, c.gxBytes)
  676. h := sha256.New()
  677. h.Write(c.gxBytes)
  678. digest := h.Sum(nil)
  679. if len(digest) != len(c.digest) || subtle.ConstantTimeCompare(digest, c.digest[:]) == 0 {
  680. return errors.New("otr: bad commit MAC in reveal signature message")
  681. }
  682. var rest []byte
  683. c.gx, rest, ok1 = getMPI(c.gxBytes)
  684. if !ok1 || len(rest) > 0 {
  685. return errors.New("otr: gx corrupt after decryption")
  686. }
  687. if c.gx.Cmp(g) < 0 || c.gx.Cmp(pMinus2) > 0 {
  688. return errors.New("otr: DH value out of range")
  689. }
  690. s := new(big.Int).Exp(c.gx, c.y, p)
  691. c.calcAKEKeys(s)
  692. if err := c.processEncryptedSig(encryptedSig, theirMAC, &c.revealKeys, true /* gx comes first */); err != nil {
  693. return errors.New("otr: in reveal signature message: " + err.Error())
  694. }
  695. c.theirCurrentDHPub = c.gx
  696. c.theirLastDHPub = nil
  697. return nil
  698. }
  699. func (c *Conversation) generateSig() []byte {
  700. c.myKeyId++
  701. encryptedSig, mac := c.generateEncryptedSignature(&c.sigKeys, false /* gy comes first */)
  702. c.myCurrentDHPub = c.gy
  703. c.myCurrentDHPriv = c.y
  704. c.rotateDHKeys()
  705. incCounter(&c.myCounter)
  706. var ret []byte
  707. ret = appendU16(ret, 2)
  708. ret = append(ret, msgTypeSig)
  709. ret = append(ret, encryptedSig...)
  710. ret = append(ret, mac[:macPrefixBytes]...)
  711. return ret
  712. }
  713. func (c *Conversation) processSig(in []byte) error {
  714. encryptedSig, in, ok1 := getData(in)
  715. theirMAC := in
  716. if !ok1 || len(theirMAC) != macPrefixBytes {
  717. return errors.New("otr: corrupt signature message")
  718. }
  719. if err := c.processEncryptedSig(encryptedSig, theirMAC, &c.sigKeys, false /* gy comes first */); err != nil {
  720. return errors.New("otr: in signature message: " + err.Error())
  721. }
  722. c.theirCurrentDHPub = c.gy
  723. c.theirLastDHPub = nil
  724. return nil
  725. }
  726. func (c *Conversation) rotateDHKeys() {
  727. // evict slots using our retired key id
  728. for i := range c.keySlots {
  729. slot := &c.keySlots[i]
  730. if slot.used && slot.myKeyId == c.myKeyId-1 {
  731. slot.used = false
  732. c.oldMACs = append(c.oldMACs, slot.sendMACKey...)
  733. c.oldMACs = append(c.oldMACs, slot.recvMACKey...)
  734. }
  735. }
  736. c.myLastDHPriv = c.myCurrentDHPriv
  737. c.myLastDHPub = c.myCurrentDHPub
  738. var xBytes [dhPrivateBytes]byte
  739. c.myCurrentDHPriv = c.randMPI(xBytes[:])
  740. c.myCurrentDHPub = new(big.Int).Exp(g, c.myCurrentDHPriv, p)
  741. c.myKeyId++
  742. }
  743. func (c *Conversation) processData(in []byte) (out []byte, tlvs []tlv, err error) {
  744. origIn := in
  745. flags, in, ok1 := getU8(in)
  746. theirKeyId, in, ok2 := getU32(in)
  747. myKeyId, in, ok3 := getU32(in)
  748. y, in, ok4 := getMPI(in)
  749. counter, in, ok5 := getNBytes(in, 8)
  750. encrypted, in, ok6 := getData(in)
  751. macedData := origIn[:len(origIn)-len(in)]
  752. theirMAC, in, ok7 := getNBytes(in, macPrefixBytes)
  753. _, in, ok8 := getData(in)
  754. if !ok1 || !ok2 || !ok3 || !ok4 || !ok5 || !ok6 || !ok7 || !ok8 || len(in) > 0 {
  755. err = errors.New("otr: corrupt data message")
  756. return
  757. }
  758. ignoreErrors := flags&1 != 0
  759. slot, err := c.calcDataKeys(myKeyId, theirKeyId)
  760. if err != nil {
  761. if ignoreErrors {
  762. err = nil
  763. }
  764. return
  765. }
  766. mac := hmac.New(sha1.New, slot.recvMACKey)
  767. mac.Write([]byte{0, 2, 3})
  768. mac.Write(macedData)
  769. myMAC := mac.Sum(nil)
  770. if len(myMAC) != len(theirMAC) || subtle.ConstantTimeCompare(myMAC, theirMAC) == 0 {
  771. if !ignoreErrors {
  772. err = errors.New("otr: bad MAC on data message")
  773. }
  774. return
  775. }
  776. if bytes.Compare(counter, slot.theirLastCtr[:]) <= 0 {
  777. err = errors.New("otr: counter regressed")
  778. return
  779. }
  780. copy(slot.theirLastCtr[:], counter)
  781. var iv [aes.BlockSize]byte
  782. copy(iv[:], counter)
  783. aesCipher, err := aes.NewCipher(slot.recvAESKey)
  784. if err != nil {
  785. panic(err.Error())
  786. }
  787. ctr := cipher.NewCTR(aesCipher, iv[:])
  788. ctr.XORKeyStream(encrypted, encrypted)
  789. decrypted := encrypted
  790. if myKeyId == c.myKeyId {
  791. c.rotateDHKeys()
  792. }
  793. if theirKeyId == c.theirKeyId {
  794. // evict slots using their retired key id
  795. for i := range c.keySlots {
  796. slot := &c.keySlots[i]
  797. if slot.used && slot.theirKeyId == theirKeyId-1 {
  798. slot.used = false
  799. c.oldMACs = append(c.oldMACs, slot.sendMACKey...)
  800. c.oldMACs = append(c.oldMACs, slot.recvMACKey...)
  801. }
  802. }
  803. c.theirLastDHPub = c.theirCurrentDHPub
  804. c.theirKeyId++
  805. c.theirCurrentDHPub = y
  806. }
  807. if nulPos := bytes.IndexByte(decrypted, 0); nulPos >= 0 {
  808. out = decrypted[:nulPos]
  809. tlvData := decrypted[nulPos+1:]
  810. for len(tlvData) > 0 {
  811. var t tlv
  812. var ok1, ok2, ok3 bool
  813. t.typ, tlvData, ok1 = getU16(tlvData)
  814. t.length, tlvData, ok2 = getU16(tlvData)
  815. t.data, tlvData, ok3 = getNBytes(tlvData, int(t.length))
  816. if !ok1 || !ok2 || !ok3 {
  817. err = errors.New("otr: corrupt tlv data")
  818. }
  819. tlvs = append(tlvs, t)
  820. }
  821. } else {
  822. out = decrypted
  823. }
  824. return
  825. }
  826. func (c *Conversation) generateData(msg []byte, extra *tlv) []byte {
  827. slot, err := c.calcDataKeys(c.myKeyId-1, c.theirKeyId)
  828. if err != nil {
  829. panic("otr: failed to generate sending keys: " + err.Error())
  830. }
  831. var plaintext []byte
  832. plaintext = append(plaintext, msg...)
  833. plaintext = append(plaintext, 0)
  834. padding := paddingGranularity - ((len(plaintext) + 4) % paddingGranularity)
  835. plaintext = appendU16(plaintext, tlvTypePadding)
  836. plaintext = appendU16(plaintext, uint16(padding))
  837. for i := 0; i < padding; i++ {
  838. plaintext = append(plaintext, 0)
  839. }
  840. if extra != nil {
  841. plaintext = appendU16(plaintext, extra.typ)
  842. plaintext = appendU16(plaintext, uint16(len(extra.data)))
  843. plaintext = append(plaintext, extra.data...)
  844. }
  845. encrypted := make([]byte, len(plaintext))
  846. var iv [aes.BlockSize]byte
  847. copy(iv[:], c.myCounter[:])
  848. aesCipher, err := aes.NewCipher(slot.sendAESKey)
  849. if err != nil {
  850. panic(err.Error())
  851. }
  852. ctr := cipher.NewCTR(aesCipher, iv[:])
  853. ctr.XORKeyStream(encrypted, plaintext)
  854. var ret []byte
  855. ret = appendU16(ret, 2)
  856. ret = append(ret, msgTypeData)
  857. ret = append(ret, 0 /* flags */)
  858. ret = appendU32(ret, c.myKeyId-1)
  859. ret = appendU32(ret, c.theirKeyId)
  860. ret = appendMPI(ret, c.myCurrentDHPub)
  861. ret = append(ret, c.myCounter[:]...)
  862. ret = appendData(ret, encrypted)
  863. mac := hmac.New(sha1.New, slot.sendMACKey)
  864. mac.Write(ret)
  865. ret = append(ret, mac.Sum(nil)[:macPrefixBytes]...)
  866. ret = appendData(ret, c.oldMACs)
  867. c.oldMACs = nil
  868. incCounter(&c.myCounter)
  869. return ret
  870. }
  871. func incCounter(counter *[8]byte) {
  872. for i := 7; i >= 0; i-- {
  873. counter[i]++
  874. if counter[i] > 0 {
  875. break
  876. }
  877. }
  878. }
  879. // calcDataKeys computes the keys used to encrypt a data message given the key
  880. // IDs.
  881. func (c *Conversation) calcDataKeys(myKeyId, theirKeyId uint32) (slot *keySlot, err error) {
  882. // Check for a cache hit.
  883. for i := range c.keySlots {
  884. slot = &c.keySlots[i]
  885. if slot.used && slot.theirKeyId == theirKeyId && slot.myKeyId == myKeyId {
  886. return
  887. }
  888. }
  889. // Find an empty slot to write into.
  890. slot = nil
  891. for i := range c.keySlots {
  892. if !c.keySlots[i].used {
  893. slot = &c.keySlots[i]
  894. break
  895. }
  896. }
  897. if slot == nil {
  898. err = errors.New("otr: internal error: no key slots")
  899. return
  900. }
  901. var myPriv, myPub, theirPub *big.Int
  902. if myKeyId == c.myKeyId {
  903. myPriv = c.myCurrentDHPriv
  904. myPub = c.myCurrentDHPub
  905. } else if myKeyId == c.myKeyId-1 {
  906. myPriv = c.myLastDHPriv
  907. myPub = c.myLastDHPub
  908. } else {
  909. err = errors.New("otr: peer requested keyid " + strconv.FormatUint(uint64(myKeyId), 10) + " when I'm on " + strconv.FormatUint(uint64(c.myKeyId), 10))
  910. return
  911. }
  912. if theirKeyId == c.theirKeyId {
  913. theirPub = c.theirCurrentDHPub
  914. } else if theirKeyId == c.theirKeyId-1 && c.theirLastDHPub != nil {
  915. theirPub = c.theirLastDHPub
  916. } else {
  917. err = errors.New("otr: peer requested keyid " + strconv.FormatUint(uint64(myKeyId), 10) + " when they're on " + strconv.FormatUint(uint64(c.myKeyId), 10))
  918. return
  919. }
  920. var sendPrefixByte, recvPrefixByte [1]byte
  921. if myPub.Cmp(theirPub) > 0 {
  922. // we're the high end
  923. sendPrefixByte[0], recvPrefixByte[0] = 1, 2
  924. } else {
  925. // we're the low end
  926. sendPrefixByte[0], recvPrefixByte[0] = 2, 1
  927. }
  928. s := new(big.Int).Exp(theirPub, myPriv, p)
  929. sBytes := appendMPI(nil, s)
  930. h := sha1.New()
  931. h.Write(sendPrefixByte[:])
  932. h.Write(sBytes)
  933. slot.sendAESKey = h.Sum(slot.sendAESKey[:0])[:16]
  934. h.Reset()
  935. h.Write(slot.sendAESKey)
  936. slot.sendMACKey = h.Sum(slot.sendMACKey[:0])
  937. h.Reset()
  938. h.Write(recvPrefixByte[:])
  939. h.Write(sBytes)
  940. slot.recvAESKey = h.Sum(slot.recvAESKey[:0])[:16]
  941. h.Reset()
  942. h.Write(slot.recvAESKey)
  943. slot.recvMACKey = h.Sum(slot.recvMACKey[:0])
  944. zero(slot.theirLastCtr[:])
  945. return
  946. }
  947. func (c *Conversation) calcAKEKeys(s *big.Int) {
  948. mpi := appendMPI(nil, s)
  949. h := sha256.New()
  950. var cBytes [32]byte
  951. hashWithPrefix(c.SSID[:], 0, mpi, h)
  952. hashWithPrefix(cBytes[:], 1, mpi, h)
  953. copy(c.revealKeys.c[:], cBytes[:16])
  954. copy(c.sigKeys.c[:], cBytes[16:])
  955. hashWithPrefix(c.revealKeys.m1[:], 2, mpi, h)
  956. hashWithPrefix(c.revealKeys.m2[:], 3, mpi, h)
  957. hashWithPrefix(c.sigKeys.m1[:], 4, mpi, h)
  958. hashWithPrefix(c.sigKeys.m2[:], 5, mpi, h)
  959. }
  960. func hashWithPrefix(out []byte, prefix byte, in []byte, h hash.Hash) {
  961. h.Reset()
  962. var p [1]byte
  963. p[0] = prefix
  964. h.Write(p[:])
  965. h.Write(in)
  966. if len(out) == h.Size() {
  967. h.Sum(out[:0])
  968. } else {
  969. digest := h.Sum(nil)
  970. copy(out, digest)
  971. }
  972. }
  973. func (c *Conversation) encode(msg []byte) [][]byte {
  974. b64 := make([]byte, base64.StdEncoding.EncodedLen(len(msg))+len(msgPrefix)+1)
  975. base64.StdEncoding.Encode(b64[len(msgPrefix):], msg)
  976. copy(b64, msgPrefix)
  977. b64[len(b64)-1] = '.'
  978. if c.FragmentSize < minFragmentSize || len(b64) <= c.FragmentSize {
  979. // We can encode this in a single fragment.
  980. return [][]byte{b64}
  981. }
  982. // We have to fragment this message.
  983. var ret [][]byte
  984. bytesPerFragment := c.FragmentSize - minFragmentSize
  985. numFragments := (len(b64) + bytesPerFragment) / bytesPerFragment
  986. for i := 0; i < numFragments; i++ {
  987. frag := []byte("?OTR," + strconv.Itoa(i+1) + "," + strconv.Itoa(numFragments) + ",")
  988. todo := bytesPerFragment
  989. if todo > len(b64) {
  990. todo = len(b64)
  991. }
  992. frag = append(frag, b64[:todo]...)
  993. b64 = b64[todo:]
  994. frag = append(frag, ',')
  995. ret = append(ret, frag)
  996. }
  997. return ret
  998. }
  999. type PublicKey struct {
  1000. dsa.PublicKey
  1001. }
  1002. func (pk *PublicKey) Parse(in []byte) ([]byte, bool) {
  1003. var ok bool
  1004. var pubKeyType uint16
  1005. if pubKeyType, in, ok = getU16(in); !ok || pubKeyType != 0 {
  1006. return nil, false
  1007. }
  1008. if pk.P, in, ok = getMPI(in); !ok {
  1009. return nil, false
  1010. }
  1011. if pk.Q, in, ok = getMPI(in); !ok {
  1012. return nil, false
  1013. }
  1014. if pk.G, in, ok = getMPI(in); !ok {
  1015. return nil, false
  1016. }
  1017. if pk.Y, in, ok = getMPI(in); !ok {
  1018. return nil, false
  1019. }
  1020. return in, true
  1021. }
  1022. func (pk *PublicKey) Serialize(in []byte) []byte {
  1023. in = appendU16(in, 0)
  1024. in = appendMPI(in, pk.P)
  1025. in = appendMPI(in, pk.Q)
  1026. in = appendMPI(in, pk.G)
  1027. in = appendMPI(in, pk.Y)
  1028. return in
  1029. }
  1030. // Fingerprint returns the 20-byte, binary fingerprint of the PublicKey.
  1031. func (pk *PublicKey) Fingerprint() []byte {
  1032. b := pk.Serialize(nil)
  1033. h := sha1.New()
  1034. h.Write(b[2:])
  1035. return h.Sum(nil)
  1036. }
  1037. func (pk *PublicKey) Verify(hashed, sig []byte) ([]byte, bool) {
  1038. if len(sig) != 2*dsaSubgroupBytes {
  1039. return nil, false
  1040. }
  1041. r := new(big.Int).SetBytes(sig[:dsaSubgroupBytes])
  1042. s := new(big.Int).SetBytes(sig[dsaSubgroupBytes:])
  1043. ok := dsa.Verify(&pk.PublicKey, hashed, r, s)
  1044. return sig[dsaSubgroupBytes*2:], ok
  1045. }
  1046. type PrivateKey struct {
  1047. PublicKey
  1048. dsa.PrivateKey
  1049. }
  1050. func (priv *PrivateKey) Sign(rand io.Reader, hashed []byte) []byte {
  1051. r, s, err := dsa.Sign(rand, &priv.PrivateKey, hashed)
  1052. if err != nil {
  1053. panic(err.Error())
  1054. }
  1055. rBytes := r.Bytes()
  1056. sBytes := s.Bytes()
  1057. if len(rBytes) > dsaSubgroupBytes || len(sBytes) > dsaSubgroupBytes {
  1058. panic("DSA signature too large")
  1059. }
  1060. out := make([]byte, 2*dsaSubgroupBytes)
  1061. copy(out[dsaSubgroupBytes-len(rBytes):], rBytes)
  1062. copy(out[len(out)-len(sBytes):], sBytes)
  1063. return out
  1064. }
  1065. func (priv *PrivateKey) Serialize(in []byte) []byte {
  1066. in = priv.PublicKey.Serialize(in)
  1067. in = appendMPI(in, priv.PrivateKey.X)
  1068. return in
  1069. }
  1070. func (priv *PrivateKey) Parse(in []byte) ([]byte, bool) {
  1071. in, ok := priv.PublicKey.Parse(in)
  1072. if !ok {
  1073. return in, ok
  1074. }
  1075. priv.PrivateKey.PublicKey = priv.PublicKey.PublicKey
  1076. priv.PrivateKey.X, in, ok = getMPI(in)
  1077. return in, ok
  1078. }
  1079. func (priv *PrivateKey) Generate(rand io.Reader) {
  1080. if err := dsa.GenerateParameters(&priv.PrivateKey.PublicKey.Parameters, rand, dsa.L1024N160); err != nil {
  1081. panic(err.Error())
  1082. }
  1083. if err := dsa.GenerateKey(&priv.PrivateKey, rand); err != nil {
  1084. panic(err.Error())
  1085. }
  1086. priv.PublicKey.PublicKey = priv.PrivateKey.PublicKey
  1087. }
  1088. func notHex(r rune) bool {
  1089. if r >= '0' && r <= '9' ||
  1090. r >= 'a' && r <= 'f' ||
  1091. r >= 'A' && r <= 'F' {
  1092. return false
  1093. }
  1094. return true
  1095. }
  1096. // Import parses the contents of a libotr private key file.
  1097. func (priv *PrivateKey) Import(in []byte) bool {
  1098. mpiStart := []byte(" #")
  1099. mpis := make([]*big.Int, 5)
  1100. for i := 0; i < len(mpis); i++ {
  1101. start := bytes.Index(in, mpiStart)
  1102. if start == -1 {
  1103. return false
  1104. }
  1105. in = in[start+len(mpiStart):]
  1106. end := bytes.IndexFunc(in, notHex)
  1107. if end == -1 {
  1108. return false
  1109. }
  1110. hexBytes := in[:end]
  1111. in = in[end:]
  1112. if len(hexBytes)&1 != 0 {
  1113. return false
  1114. }
  1115. mpiBytes := make([]byte, len(hexBytes)/2)
  1116. if _, err := hex.Decode(mpiBytes, hexBytes); err != nil {
  1117. return false
  1118. }
  1119. mpis[i] = new(big.Int).SetBytes(mpiBytes)
  1120. }
  1121. priv.PrivateKey.P = mpis[0]
  1122. priv.PrivateKey.Q = mpis[1]
  1123. priv.PrivateKey.G = mpis[2]
  1124. priv.PrivateKey.Y = mpis[3]
  1125. priv.PrivateKey.X = mpis[4]
  1126. priv.PublicKey.PublicKey = priv.PrivateKey.PublicKey
  1127. a := new(big.Int).Exp(priv.PrivateKey.G, priv.PrivateKey.X, priv.PrivateKey.P)
  1128. return a.Cmp(priv.PrivateKey.Y) == 0
  1129. }
  1130. func getU8(in []byte) (uint8, []byte, bool) {
  1131. if len(in) < 1 {
  1132. return 0, in, false
  1133. }
  1134. return in[0], in[1:], true
  1135. }
  1136. func getU16(in []byte) (uint16, []byte, bool) {
  1137. if len(in) < 2 {
  1138. return 0, in, false
  1139. }
  1140. r := uint16(in[0])<<8 | uint16(in[1])
  1141. return r, in[2:], true
  1142. }
  1143. func getU32(in []byte) (uint32, []byte, bool) {
  1144. if len(in) < 4 {
  1145. return 0, in, false
  1146. }
  1147. r := uint32(in[0])<<24 | uint32(in[1])<<16 | uint32(in[2])<<8 | uint32(in[3])
  1148. return r, in[4:], true
  1149. }
  1150. func getMPI(in []byte) (*big.Int, []byte, bool) {
  1151. l, in, ok := getU32(in)
  1152. if !ok || uint32(len(in)) < l {
  1153. return nil, in, false
  1154. }
  1155. r := new(big.Int).SetBytes(in[:l])
  1156. return r, in[l:], true
  1157. }
  1158. func getData(in []byte) ([]byte, []byte, bool) {
  1159. l, in, ok := getU32(in)
  1160. if !ok || uint32(len(in)) < l {
  1161. return nil, in, false
  1162. }
  1163. return in[:l], in[l:], true
  1164. }
  1165. func getNBytes(in []byte, n int) ([]byte, []byte, bool) {
  1166. if len(in) < n {
  1167. return nil, in, false
  1168. }
  1169. return in[:n], in[n:], true
  1170. }
  1171. func appendU16(out []byte, v uint16) []byte {
  1172. out = append(out, byte(v>>8), byte(v))
  1173. return out
  1174. }
  1175. func appendU32(out []byte, v uint32) []byte {
  1176. out = append(out, byte(v>>24), byte(v>>16), byte(v>>8), byte(v))
  1177. return out
  1178. }
  1179. func appendData(out, v []byte) []byte {
  1180. out = appendU32(out, uint32(len(v)))
  1181. out = append(out, v...)
  1182. return out
  1183. }
  1184. func appendMPI(out []byte, v *big.Int) []byte {
  1185. vBytes := v.Bytes()
  1186. out = appendU32(out, uint32(len(vBytes)))
  1187. out = append(out, vBytes...)
  1188. return out
  1189. }
  1190. func appendMPIs(out []byte, mpis ...*big.Int) []byte {
  1191. for _, mpi := range mpis {
  1192. out = appendMPI(out, mpi)
  1193. }
  1194. return out
  1195. }
  1196. func zero(b []byte) {
  1197. for i := range b {
  1198. b[i] = 0
  1199. }
  1200. }