handshake_client.go 25 KB

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  1. // Copyright 2009 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 tls
  5. import (
  6. "bytes"
  7. "crypto"
  8. "crypto/ecdsa"
  9. "crypto/rsa"
  10. "crypto/subtle"
  11. "crypto/x509"
  12. "errors"
  13. "fmt"
  14. "io"
  15. "net"
  16. "strconv"
  17. "strings"
  18. )
  19. type clientHandshakeState struct {
  20. c *Conn
  21. serverHello *serverHelloMsg
  22. hello *clientHelloMsg
  23. suite *cipherSuite
  24. finishedHash finishedHash
  25. masterSecret []byte
  26. session *ClientSessionState
  27. }
  28. func makeClientHello(config *Config) (*clientHelloMsg, error) {
  29. if len(config.ServerName) == 0 && !config.InsecureSkipVerify {
  30. return nil, errors.New("tls: either ServerName or InsecureSkipVerify must be specified in the tls.Config")
  31. }
  32. nextProtosLength := 0
  33. for _, proto := range config.NextProtos {
  34. if l := len(proto); l == 0 || l > 255 {
  35. return nil, errors.New("tls: invalid NextProtos value")
  36. } else {
  37. nextProtosLength += 1 + l
  38. }
  39. }
  40. if nextProtosLength > 0xffff {
  41. return nil, errors.New("tls: NextProtos values too large")
  42. }
  43. hello := &clientHelloMsg{
  44. vers: config.maxVersion(),
  45. compressionMethods: []uint8{compressionNone},
  46. random: make([]byte, 32),
  47. ocspStapling: true,
  48. scts: true,
  49. serverName: hostnameInSNI(config.ServerName),
  50. supportedCurves: config.curvePreferences(),
  51. supportedPoints: []uint8{pointFormatUncompressed},
  52. nextProtoNeg: len(config.NextProtos) > 0,
  53. secureRenegotiationSupported: true,
  54. alpnProtocols: config.NextProtos,
  55. }
  56. possibleCipherSuites := config.cipherSuites()
  57. hello.cipherSuites = make([]uint16, 0, len(possibleCipherSuites))
  58. NextCipherSuite:
  59. for _, suiteId := range possibleCipherSuites {
  60. for _, suite := range cipherSuites {
  61. if suite.id != suiteId {
  62. continue
  63. }
  64. // Don't advertise TLS 1.2-only cipher suites unless
  65. // we're attempting TLS 1.2.
  66. if hello.vers < VersionTLS12 && suite.flags&suiteTLS12 != 0 {
  67. continue
  68. }
  69. hello.cipherSuites = append(hello.cipherSuites, suiteId)
  70. continue NextCipherSuite
  71. }
  72. }
  73. _, err := io.ReadFull(config.rand(), hello.random)
  74. if err != nil {
  75. return nil, errors.New("tls: short read from Rand: " + err.Error())
  76. }
  77. if hello.vers >= VersionTLS12 {
  78. hello.signatureAndHashes = supportedSignatureAlgorithms
  79. }
  80. return hello, nil
  81. }
  82. // c.out.Mutex <= L; c.handshakeMutex <= L.
  83. func (c *Conn) clientHandshake() error {
  84. if c.config == nil {
  85. c.config = defaultConfig()
  86. }
  87. // This may be a renegotiation handshake, in which case some fields
  88. // need to be reset.
  89. c.didResume = false
  90. hello, err := makeClientHello(c.config)
  91. if err != nil {
  92. return err
  93. }
  94. if c.handshakes > 0 {
  95. hello.secureRenegotiation = c.clientFinished[:]
  96. }
  97. var session *ClientSessionState
  98. var cacheKey string
  99. sessionCache := c.config.ClientSessionCache
  100. if c.config.SessionTicketsDisabled {
  101. sessionCache = nil
  102. }
  103. if sessionCache != nil {
  104. hello.ticketSupported = true
  105. }
  106. // Session resumption is not allowed if renegotiating because
  107. // renegotiation is primarily used to allow a client to send a client
  108. // certificate, which would be skipped if session resumption occurred.
  109. if sessionCache != nil && c.handshakes == 0 {
  110. // Try to resume a previously negotiated TLS session, if
  111. // available.
  112. cacheKey = clientSessionCacheKey(c.conn.RemoteAddr(), c.config)
  113. candidateSession, ok := sessionCache.Get(cacheKey)
  114. if ok {
  115. // Check that the ciphersuite/version used for the
  116. // previous session are still valid.
  117. cipherSuiteOk := false
  118. for _, id := range hello.cipherSuites {
  119. if id == candidateSession.cipherSuite {
  120. cipherSuiteOk = true
  121. break
  122. }
  123. }
  124. versOk := candidateSession.vers >= c.config.minVersion() &&
  125. candidateSession.vers <= c.config.maxVersion()
  126. if versOk && cipherSuiteOk {
  127. session = candidateSession
  128. }
  129. }
  130. }
  131. if session != nil {
  132. hello.sessionTicket = session.sessionTicket
  133. // A random session ID is used to detect when the
  134. // server accepted the ticket and is resuming a session
  135. // (see RFC 5077).
  136. hello.sessionId = make([]byte, 16)
  137. if _, err := io.ReadFull(c.config.rand(), hello.sessionId); err != nil {
  138. return errors.New("tls: short read from Rand: " + err.Error())
  139. }
  140. }
  141. hs := &clientHandshakeState{
  142. c: c,
  143. hello: hello,
  144. session: session,
  145. }
  146. if err = hs.handshake(); err != nil {
  147. return err
  148. }
  149. // If we had a successful handshake and hs.session is different from
  150. // the one already cached - cache a new one
  151. if sessionCache != nil && hs.session != nil && session != hs.session {
  152. sessionCache.Put(cacheKey, hs.session)
  153. }
  154. return nil
  155. }
  156. // Does the handshake, either a full one or resumes old session.
  157. // Requires hs.c, hs.hello, and, optionally, hs.session to be set.
  158. func (hs *clientHandshakeState) handshake() error {
  159. c := hs.c
  160. // send ClientHello
  161. if _, err := c.writeRecord(recordTypeHandshake, hs.hello.marshal()); err != nil {
  162. return err
  163. }
  164. msg, err := c.readHandshake()
  165. if err != nil {
  166. return err
  167. }
  168. var ok bool
  169. if hs.serverHello, ok = msg.(*serverHelloMsg); !ok {
  170. c.sendAlert(alertUnexpectedMessage)
  171. return unexpectedMessageError(hs.serverHello, msg)
  172. }
  173. if err = hs.pickTLSVersion(); err != nil {
  174. return err
  175. }
  176. if err = hs.pickCipherSuite(); err != nil {
  177. return err
  178. }
  179. isResume, err := hs.processServerHello()
  180. if err != nil {
  181. return err
  182. }
  183. hs.finishedHash = newFinishedHash(c.vers, hs.suite)
  184. // No signatures of the handshake are needed in a resumption.
  185. // Otherwise, in a full handshake, if we don't have any certificates
  186. // configured then we will never send a CertificateVerify message and
  187. // thus no signatures are needed in that case either.
  188. if isResume || (len(c.config.Certificates) == 0 && c.config.GetClientCertificate == nil) {
  189. hs.finishedHash.discardHandshakeBuffer()
  190. }
  191. hs.finishedHash.Write(hs.hello.marshal())
  192. hs.finishedHash.Write(hs.serverHello.marshal())
  193. c.buffering = true
  194. if isResume {
  195. if err := hs.establishKeys(); err != nil {
  196. return err
  197. }
  198. if err := hs.readSessionTicket(); err != nil {
  199. return err
  200. }
  201. if err := hs.readFinished(c.serverFinished[:]); err != nil {
  202. return err
  203. }
  204. c.clientFinishedIsFirst = false
  205. if err := hs.sendFinished(c.clientFinished[:]); err != nil {
  206. return err
  207. }
  208. if _, err := c.flush(); err != nil {
  209. return err
  210. }
  211. } else {
  212. if err := hs.doFullHandshake(); err != nil {
  213. return err
  214. }
  215. if err := hs.establishKeys(); err != nil {
  216. return err
  217. }
  218. if err := hs.sendFinished(c.clientFinished[:]); err != nil {
  219. return err
  220. }
  221. if _, err := c.flush(); err != nil {
  222. return err
  223. }
  224. c.clientFinishedIsFirst = true
  225. if err := hs.readSessionTicket(); err != nil {
  226. return err
  227. }
  228. if err := hs.readFinished(c.serverFinished[:]); err != nil {
  229. return err
  230. }
  231. }
  232. c.didResume = isResume
  233. c.handshakeComplete = true
  234. return nil
  235. }
  236. func (hs *clientHandshakeState) pickTLSVersion() error {
  237. vers, ok := hs.c.config.mutualVersion(hs.serverHello.vers)
  238. if !ok || vers < VersionTLS10 {
  239. // TLS 1.0 is the minimum version supported as a client.
  240. hs.c.sendAlert(alertProtocolVersion)
  241. return fmt.Errorf("tls: server selected unsupported protocol version %x", hs.serverHello.vers)
  242. }
  243. hs.c.vers = vers
  244. hs.c.haveVers = true
  245. return nil
  246. }
  247. func (hs *clientHandshakeState) pickCipherSuite() error {
  248. if hs.suite = mutualCipherSuite(hs.hello.cipherSuites, hs.serverHello.cipherSuite); hs.suite == nil {
  249. hs.c.sendAlert(alertHandshakeFailure)
  250. return errors.New("tls: server chose an unconfigured cipher suite")
  251. }
  252. hs.c.cipherSuite = hs.suite.id
  253. return nil
  254. }
  255. func (hs *clientHandshakeState) doFullHandshake() error {
  256. c := hs.c
  257. msg, err := c.readHandshake()
  258. if err != nil {
  259. return err
  260. }
  261. certMsg, ok := msg.(*certificateMsg)
  262. if !ok || len(certMsg.certificates) == 0 {
  263. c.sendAlert(alertUnexpectedMessage)
  264. return unexpectedMessageError(certMsg, msg)
  265. }
  266. hs.finishedHash.Write(certMsg.marshal())
  267. if c.handshakes == 0 {
  268. // If this is the first handshake on a connection, process and
  269. // (optionally) verify the server's certificates.
  270. certs := make([]*x509.Certificate, len(certMsg.certificates))
  271. for i, asn1Data := range certMsg.certificates {
  272. cert, err := x509.ParseCertificate(asn1Data)
  273. if err != nil {
  274. c.sendAlert(alertBadCertificate)
  275. return errors.New("tls: failed to parse certificate from server: " + err.Error())
  276. }
  277. certs[i] = cert
  278. }
  279. if !c.config.InsecureSkipVerify {
  280. opts := x509.VerifyOptions{
  281. Roots: c.config.RootCAs,
  282. CurrentTime: c.config.time(),
  283. DNSName: c.config.ServerName,
  284. Intermediates: x509.NewCertPool(),
  285. }
  286. for i, cert := range certs {
  287. if i == 0 {
  288. continue
  289. }
  290. opts.Intermediates.AddCert(cert)
  291. }
  292. c.verifiedChains, err = certs[0].Verify(opts)
  293. if err != nil {
  294. c.sendAlert(alertBadCertificate)
  295. return err
  296. }
  297. }
  298. if c.config.VerifyPeerCertificate != nil {
  299. if err := c.config.VerifyPeerCertificate(certMsg.certificates, c.verifiedChains); err != nil {
  300. c.sendAlert(alertBadCertificate)
  301. return err
  302. }
  303. }
  304. switch certs[0].PublicKey.(type) {
  305. case *rsa.PublicKey, *ecdsa.PublicKey:
  306. break
  307. default:
  308. c.sendAlert(alertUnsupportedCertificate)
  309. return fmt.Errorf("tls: server's certificate contains an unsupported type of public key: %T", certs[0].PublicKey)
  310. }
  311. c.peerCertificates = certs
  312. } else {
  313. // This is a renegotiation handshake. We require that the
  314. // server's identity (i.e. leaf certificate) is unchanged and
  315. // thus any previous trust decision is still valid.
  316. //
  317. // See https://mitls.org/pages/attacks/3SHAKE for the
  318. // motivation behind this requirement.
  319. if !bytes.Equal(c.peerCertificates[0].Raw, certMsg.certificates[0]) {
  320. c.sendAlert(alertBadCertificate)
  321. return errors.New("tls: server's identity changed during renegotiation")
  322. }
  323. }
  324. if hs.serverHello.ocspStapling {
  325. msg, err = c.readHandshake()
  326. if err != nil {
  327. return err
  328. }
  329. cs, ok := msg.(*certificateStatusMsg)
  330. if !ok {
  331. c.sendAlert(alertUnexpectedMessage)
  332. return unexpectedMessageError(cs, msg)
  333. }
  334. hs.finishedHash.Write(cs.marshal())
  335. if cs.statusType == statusTypeOCSP {
  336. c.ocspResponse = cs.response
  337. }
  338. }
  339. msg, err = c.readHandshake()
  340. if err != nil {
  341. return err
  342. }
  343. keyAgreement := hs.suite.ka(c.vers)
  344. skx, ok := msg.(*serverKeyExchangeMsg)
  345. if ok {
  346. hs.finishedHash.Write(skx.marshal())
  347. err = keyAgreement.processServerKeyExchange(c.config, hs.hello, hs.serverHello, c.peerCertificates[0], skx)
  348. if err != nil {
  349. c.sendAlert(alertUnexpectedMessage)
  350. return err
  351. }
  352. msg, err = c.readHandshake()
  353. if err != nil {
  354. return err
  355. }
  356. }
  357. var chainToSend *Certificate
  358. var certRequested bool
  359. certReq, ok := msg.(*certificateRequestMsg)
  360. if ok {
  361. certRequested = true
  362. hs.finishedHash.Write(certReq.marshal())
  363. if chainToSend, err = hs.getCertificate(certReq); err != nil {
  364. c.sendAlert(alertInternalError)
  365. return err
  366. }
  367. msg, err = c.readHandshake()
  368. if err != nil {
  369. return err
  370. }
  371. }
  372. shd, ok := msg.(*serverHelloDoneMsg)
  373. if !ok {
  374. c.sendAlert(alertUnexpectedMessage)
  375. return unexpectedMessageError(shd, msg)
  376. }
  377. hs.finishedHash.Write(shd.marshal())
  378. // If the server requested a certificate then we have to send a
  379. // Certificate message, even if it's empty because we don't have a
  380. // certificate to send.
  381. if certRequested {
  382. certMsg = new(certificateMsg)
  383. certMsg.certificates = chainToSend.Certificate
  384. hs.finishedHash.Write(certMsg.marshal())
  385. if _, err := c.writeRecord(recordTypeHandshake, certMsg.marshal()); err != nil {
  386. return err
  387. }
  388. }
  389. preMasterSecret, ckx, err := keyAgreement.generateClientKeyExchange(c.config, hs.hello, c.peerCertificates[0])
  390. if err != nil {
  391. c.sendAlert(alertInternalError)
  392. return err
  393. }
  394. if ckx != nil {
  395. hs.finishedHash.Write(ckx.marshal())
  396. if _, err := c.writeRecord(recordTypeHandshake, ckx.marshal()); err != nil {
  397. return err
  398. }
  399. }
  400. if chainToSend != nil && len(chainToSend.Certificate) > 0 {
  401. certVerify := &certificateVerifyMsg{
  402. hasSignatureAndHash: c.vers >= VersionTLS12,
  403. }
  404. key, ok := chainToSend.PrivateKey.(crypto.Signer)
  405. if !ok {
  406. c.sendAlert(alertInternalError)
  407. return fmt.Errorf("tls: client certificate private key of type %T does not implement crypto.Signer", chainToSend.PrivateKey)
  408. }
  409. var signatureType uint8
  410. switch key.Public().(type) {
  411. case *ecdsa.PublicKey:
  412. signatureType = signatureECDSA
  413. case *rsa.PublicKey:
  414. signatureType = signatureRSA
  415. default:
  416. c.sendAlert(alertInternalError)
  417. return fmt.Errorf("tls: failed to sign handshake with client certificate: unknown client certificate key type: %T", key)
  418. }
  419. certVerify.signatureAndHash, err = hs.finishedHash.selectClientCertSignatureAlgorithm(certReq.signatureAndHashes, signatureType)
  420. if err != nil {
  421. c.sendAlert(alertInternalError)
  422. return err
  423. }
  424. digest, hashFunc, err := hs.finishedHash.hashForClientCertificate(certVerify.signatureAndHash, hs.masterSecret)
  425. if err != nil {
  426. c.sendAlert(alertInternalError)
  427. return err
  428. }
  429. certVerify.signature, err = key.Sign(c.config.rand(), digest, hashFunc)
  430. if err != nil {
  431. c.sendAlert(alertInternalError)
  432. return err
  433. }
  434. hs.finishedHash.Write(certVerify.marshal())
  435. if _, err := c.writeRecord(recordTypeHandshake, certVerify.marshal()); err != nil {
  436. return err
  437. }
  438. }
  439. if hs.hello.ems && hs.serverHello.ems {
  440. hs.masterSecret = extendedMasterFromPreMasterSecret(c.vers, hs.suite, preMasterSecret, hs.finishedHash)
  441. } else {
  442. hs.masterSecret = masterFromPreMasterSecret(c.vers, hs.suite, preMasterSecret, hs.hello.random, hs.serverHello.random)
  443. }
  444. if err := c.config.writeKeyLog(hs.hello.random, hs.masterSecret); err != nil {
  445. c.sendAlert(alertInternalError)
  446. return errors.New("tls: failed to write to key log: " + err.Error())
  447. }
  448. hs.finishedHash.discardHandshakeBuffer()
  449. return nil
  450. }
  451. func (hs *clientHandshakeState) establishKeys() error {
  452. c := hs.c
  453. clientMAC, serverMAC, clientKey, serverKey, clientIV, serverIV :=
  454. keysFromMasterSecret(c.vers, hs.suite, hs.masterSecret, hs.hello.random, hs.serverHello.random, hs.suite.macLen, hs.suite.keyLen, hs.suite.ivLen)
  455. var clientCipher, serverCipher interface{}
  456. var clientHash, serverHash macFunction
  457. if hs.suite.cipher != nil {
  458. clientCipher = hs.suite.cipher(clientKey, clientIV, false /* not for reading */)
  459. clientHash = hs.suite.mac(c.vers, clientMAC)
  460. serverCipher = hs.suite.cipher(serverKey, serverIV, true /* for reading */)
  461. serverHash = hs.suite.mac(c.vers, serverMAC)
  462. } else {
  463. clientCipher = hs.suite.aead(clientKey, clientIV)
  464. serverCipher = hs.suite.aead(serverKey, serverIV)
  465. }
  466. c.in.prepareCipherSpec(c.vers, serverCipher, serverHash)
  467. c.out.prepareCipherSpec(c.vers, clientCipher, clientHash)
  468. return nil
  469. }
  470. func (hs *clientHandshakeState) serverResumedSession() bool {
  471. // If the server responded with the same sessionId then it means the
  472. // sessionTicket is being used to resume a TLS session.
  473. return hs.session != nil && hs.hello.sessionId != nil &&
  474. bytes.Equal(hs.serverHello.sessionId, hs.hello.sessionId)
  475. }
  476. func (hs *clientHandshakeState) processServerHello() (bool, error) {
  477. c := hs.c
  478. if hs.serverHello.compressionMethod != compressionNone {
  479. c.sendAlert(alertUnexpectedMessage)
  480. return false, errors.New("tls: server selected unsupported compression format")
  481. }
  482. if c.handshakes == 0 && hs.serverHello.secureRenegotiationSupported {
  483. c.secureRenegotiation = true
  484. if len(hs.serverHello.secureRenegotiation) != 0 {
  485. c.sendAlert(alertHandshakeFailure)
  486. return false, errors.New("tls: initial handshake had non-empty renegotiation extension")
  487. }
  488. }
  489. if c.handshakes > 0 && c.secureRenegotiation {
  490. var expectedSecureRenegotiation [24]byte
  491. copy(expectedSecureRenegotiation[:], c.clientFinished[:])
  492. copy(expectedSecureRenegotiation[12:], c.serverFinished[:])
  493. if !bytes.Equal(hs.serverHello.secureRenegotiation, expectedSecureRenegotiation[:]) {
  494. c.sendAlert(alertHandshakeFailure)
  495. return false, errors.New("tls: incorrect renegotiation extension contents")
  496. }
  497. }
  498. clientDidNPN := hs.hello.nextProtoNeg
  499. clientDidALPN := len(hs.hello.alpnProtocols) > 0
  500. serverHasNPN := hs.serverHello.nextProtoNeg
  501. serverHasALPN := len(hs.serverHello.alpnProtocol) > 0
  502. if !clientDidNPN && serverHasNPN {
  503. c.sendAlert(alertHandshakeFailure)
  504. return false, errors.New("tls: server advertised unrequested NPN extension")
  505. }
  506. if !clientDidALPN && serverHasALPN {
  507. c.sendAlert(alertHandshakeFailure)
  508. return false, errors.New("tls: server advertised unrequested ALPN extension")
  509. }
  510. if serverHasNPN && serverHasALPN {
  511. c.sendAlert(alertHandshakeFailure)
  512. return false, errors.New("tls: server advertised both NPN and ALPN extensions")
  513. }
  514. if serverHasALPN {
  515. c.clientProtocol = hs.serverHello.alpnProtocol
  516. c.clientProtocolFallback = false
  517. }
  518. c.scts = hs.serverHello.scts
  519. if !hs.serverResumedSession() {
  520. return false, nil
  521. }
  522. if hs.session.vers != c.vers {
  523. c.sendAlert(alertHandshakeFailure)
  524. return false, errors.New("tls: server resumed a session with a different version")
  525. }
  526. if hs.session.cipherSuite != hs.suite.id {
  527. c.sendAlert(alertHandshakeFailure)
  528. return false, errors.New("tls: server resumed a session with a different cipher suite")
  529. }
  530. // Restore masterSecret and peerCerts from previous state
  531. hs.masterSecret = hs.session.masterSecret
  532. c.peerCertificates = hs.session.serverCertificates
  533. c.verifiedChains = hs.session.verifiedChains
  534. return true, nil
  535. }
  536. func (hs *clientHandshakeState) readFinished(out []byte) error {
  537. c := hs.c
  538. c.readRecord(recordTypeChangeCipherSpec)
  539. if c.in.err != nil {
  540. return c.in.err
  541. }
  542. msg, err := c.readHandshake()
  543. if err != nil {
  544. return err
  545. }
  546. serverFinished, ok := msg.(*finishedMsg)
  547. if !ok {
  548. c.sendAlert(alertUnexpectedMessage)
  549. return unexpectedMessageError(serverFinished, msg)
  550. }
  551. verify := hs.finishedHash.serverSum(hs.masterSecret)
  552. if len(verify) != len(serverFinished.verifyData) ||
  553. subtle.ConstantTimeCompare(verify, serverFinished.verifyData) != 1 {
  554. c.sendAlert(alertHandshakeFailure)
  555. return errors.New("tls: server's Finished message was incorrect")
  556. }
  557. hs.finishedHash.Write(serverFinished.marshal())
  558. copy(out, verify)
  559. return nil
  560. }
  561. func (hs *clientHandshakeState) readSessionTicket() error {
  562. if !hs.serverHello.ticketSupported {
  563. return nil
  564. }
  565. c := hs.c
  566. msg, err := c.readHandshake()
  567. if err != nil {
  568. return err
  569. }
  570. sessionTicketMsg, ok := msg.(*newSessionTicketMsg)
  571. if !ok {
  572. c.sendAlert(alertUnexpectedMessage)
  573. return unexpectedMessageError(sessionTicketMsg, msg)
  574. }
  575. hs.finishedHash.Write(sessionTicketMsg.marshal())
  576. hs.session = &ClientSessionState{
  577. sessionTicket: sessionTicketMsg.ticket,
  578. vers: c.vers,
  579. cipherSuite: hs.suite.id,
  580. masterSecret: hs.masterSecret,
  581. serverCertificates: c.peerCertificates,
  582. verifiedChains: c.verifiedChains,
  583. }
  584. return nil
  585. }
  586. func (hs *clientHandshakeState) sendFinished(out []byte) error {
  587. c := hs.c
  588. if _, err := c.writeRecord(recordTypeChangeCipherSpec, []byte{1}); err != nil {
  589. return err
  590. }
  591. if hs.serverHello.nextProtoNeg {
  592. nextProto := new(nextProtoMsg)
  593. proto, fallback := mutualProtocol(c.config.NextProtos, hs.serverHello.nextProtos)
  594. nextProto.proto = proto
  595. c.clientProtocol = proto
  596. c.clientProtocolFallback = fallback
  597. hs.finishedHash.Write(nextProto.marshal())
  598. if _, err := c.writeRecord(recordTypeHandshake, nextProto.marshal()); err != nil {
  599. return err
  600. }
  601. }
  602. finished := new(finishedMsg)
  603. finished.verifyData = hs.finishedHash.clientSum(hs.masterSecret)
  604. hs.finishedHash.Write(finished.marshal())
  605. if _, err := c.writeRecord(recordTypeHandshake, finished.marshal()); err != nil {
  606. return err
  607. }
  608. copy(out, finished.verifyData)
  609. return nil
  610. }
  611. // tls11SignatureSchemes contains the signature schemes that we synthesise for
  612. // a TLS <= 1.1 connection, based on the supported certificate types.
  613. var tls11SignatureSchemes = []SignatureScheme{ECDSAWithP256AndSHA256, ECDSAWithP384AndSHA384, ECDSAWithP521AndSHA512, PKCS1WithSHA256, PKCS1WithSHA384, PKCS1WithSHA512, PKCS1WithSHA1}
  614. const (
  615. // tls11SignatureSchemesNumECDSA is the number of initial elements of
  616. // tls11SignatureSchemes that use ECDSA.
  617. tls11SignatureSchemesNumECDSA = 3
  618. // tls11SignatureSchemesNumRSA is the number of trailing elements of
  619. // tls11SignatureSchemes that use RSA.
  620. tls11SignatureSchemesNumRSA = 4
  621. )
  622. func (hs *clientHandshakeState) getCertificate(certReq *certificateRequestMsg) (*Certificate, error) {
  623. c := hs.c
  624. var rsaAvail, ecdsaAvail bool
  625. for _, certType := range certReq.certificateTypes {
  626. switch certType {
  627. case certTypeRSASign:
  628. rsaAvail = true
  629. case certTypeECDSASign:
  630. ecdsaAvail = true
  631. }
  632. }
  633. if c.config.GetClientCertificate != nil {
  634. var signatureSchemes []SignatureScheme
  635. if !certReq.hasSignatureAndHash {
  636. // Prior to TLS 1.2, the signature schemes were not
  637. // included in the certificate request message. In this
  638. // case we use a plausible list based on the acceptable
  639. // certificate types.
  640. signatureSchemes = tls11SignatureSchemes
  641. if !ecdsaAvail {
  642. signatureSchemes = signatureSchemes[tls11SignatureSchemesNumECDSA:]
  643. }
  644. if !rsaAvail {
  645. signatureSchemes = signatureSchemes[:len(signatureSchemes)-tls11SignatureSchemesNumRSA]
  646. }
  647. } else {
  648. signatureSchemes = make([]SignatureScheme, 0, len(certReq.signatureAndHashes))
  649. for _, sah := range certReq.signatureAndHashes {
  650. signatureSchemes = append(signatureSchemes, SignatureScheme(sah.hash)<<8+SignatureScheme(sah.signature))
  651. }
  652. }
  653. return c.config.GetClientCertificate(&CertificateRequestInfo{
  654. AcceptableCAs: certReq.certificateAuthorities,
  655. SignatureSchemes: signatureSchemes,
  656. })
  657. }
  658. // RFC 4346 on the certificateAuthorities field: A list of the
  659. // distinguished names of acceptable certificate authorities.
  660. // These distinguished names may specify a desired
  661. // distinguished name for a root CA or for a subordinate CA;
  662. // thus, this message can be used to describe both known roots
  663. // and a desired authorization space. If the
  664. // certificate_authorities list is empty then the client MAY
  665. // send any certificate of the appropriate
  666. // ClientCertificateType, unless there is some external
  667. // arrangement to the contrary.
  668. // We need to search our list of client certs for one
  669. // where SignatureAlgorithm is acceptable to the server and the
  670. // Issuer is in certReq.certificateAuthorities
  671. findCert:
  672. for i, chain := range c.config.Certificates {
  673. if !rsaAvail && !ecdsaAvail {
  674. continue
  675. }
  676. for j, cert := range chain.Certificate {
  677. x509Cert := chain.Leaf
  678. // parse the certificate if this isn't the leaf
  679. // node, or if chain.Leaf was nil
  680. if j != 0 || x509Cert == nil {
  681. var err error
  682. if x509Cert, err = x509.ParseCertificate(cert); err != nil {
  683. c.sendAlert(alertInternalError)
  684. return nil, errors.New("tls: failed to parse client certificate #" + strconv.Itoa(i) + ": " + err.Error())
  685. }
  686. }
  687. switch {
  688. case rsaAvail && x509Cert.PublicKeyAlgorithm == x509.RSA:
  689. case ecdsaAvail && x509Cert.PublicKeyAlgorithm == x509.ECDSA:
  690. default:
  691. continue findCert
  692. }
  693. if len(certReq.certificateAuthorities) == 0 {
  694. // they gave us an empty list, so just take the
  695. // first cert from c.config.Certificates
  696. return &chain, nil
  697. }
  698. for _, ca := range certReq.certificateAuthorities {
  699. if bytes.Equal(x509Cert.RawIssuer, ca) {
  700. return &chain, nil
  701. }
  702. }
  703. }
  704. }
  705. // No acceptable certificate found. Don't send a certificate.
  706. return new(Certificate), nil
  707. }
  708. // clientSessionCacheKey returns a key used to cache sessionTickets that could
  709. // be used to resume previously negotiated TLS sessions with a server.
  710. func clientSessionCacheKey(serverAddr net.Addr, config *Config) string {
  711. if len(config.ServerName) > 0 {
  712. return config.ServerName
  713. }
  714. // [Psiphon]
  715. //
  716. // In certain error conditions, serverAddr may be nil. In this case, since
  717. // ServerName is blank, there is no valid session cache key. Calling code
  718. // assumes clientSessionCacheKey always succeeds. To minimize changes to
  719. // this tls fork, we return "" and no error.
  720. //
  721. // We assume the cache key won't be used for setting the cache, as the
  722. // existing error condition in the conn should result in handshake
  723. // failure. In the unlikely case of success and caching a session, the
  724. // outcome could include future failure to renegotiate, although in the
  725. // case of Psiphon, each connection has its own cache.
  726. if serverAddr == nil {
  727. return ""
  728. }
  729. return serverAddr.String()
  730. }
  731. // mutualProtocol finds the mutual Next Protocol Negotiation or ALPN protocol
  732. // given list of possible protocols and a list of the preference order. The
  733. // first list must not be empty. It returns the resulting protocol and flag
  734. // indicating if the fallback case was reached.
  735. func mutualProtocol(protos, preferenceProtos []string) (string, bool) {
  736. for _, s := range preferenceProtos {
  737. for _, c := range protos {
  738. if s == c {
  739. return s, false
  740. }
  741. }
  742. }
  743. return protos[0], true
  744. }
  745. // hostnameInSNI converts name into an approriate hostname for SNI.
  746. // Literal IP addresses and absolute FQDNs are not permitted as SNI values.
  747. // See https://tools.ietf.org/html/rfc6066#section-3.
  748. func hostnameInSNI(name string) string {
  749. host := name
  750. if len(host) > 0 && host[0] == '[' && host[len(host)-1] == ']' {
  751. host = host[1 : len(host)-1]
  752. }
  753. if i := strings.LastIndex(host, "%"); i > 0 {
  754. host = host[:i]
  755. }
  756. if net.ParseIP(host) != nil {
  757. return ""
  758. }
  759. for len(name) > 0 && name[len(name)-1] == '.' {
  760. name = name[:len(name)-1]
  761. }
  762. return name
  763. }