github.com/rakyll/go@v0.0.0-20170216000551-64c02460d703/src/crypto/tls/common.go (about) 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 5 package tls 6 7 import ( 8 "container/list" 9 "crypto" 10 "crypto/internal/cipherhw" 11 "crypto/rand" 12 "crypto/sha512" 13 "crypto/x509" 14 "errors" 15 "fmt" 16 "io" 17 "math/big" 18 "net" 19 "strings" 20 "sync" 21 "time" 22 ) 23 24 const ( 25 VersionSSL30 = 0x0300 26 VersionTLS10 = 0x0301 27 VersionTLS11 = 0x0302 28 VersionTLS12 = 0x0303 29 ) 30 31 const ( 32 maxPlaintext = 16384 // maximum plaintext payload length 33 maxCiphertext = 16384 + 2048 // maximum ciphertext payload length 34 recordHeaderLen = 5 // record header length 35 maxHandshake = 65536 // maximum handshake we support (protocol max is 16 MB) 36 37 minVersion = VersionTLS10 38 maxVersion = VersionTLS12 39 ) 40 41 // TLS record types. 42 type recordType uint8 43 44 const ( 45 recordTypeChangeCipherSpec recordType = 20 46 recordTypeAlert recordType = 21 47 recordTypeHandshake recordType = 22 48 recordTypeApplicationData recordType = 23 49 ) 50 51 // TLS handshake message types. 52 const ( 53 typeHelloRequest uint8 = 0 54 typeClientHello uint8 = 1 55 typeServerHello uint8 = 2 56 typeNewSessionTicket uint8 = 4 57 typeCertificate uint8 = 11 58 typeServerKeyExchange uint8 = 12 59 typeCertificateRequest uint8 = 13 60 typeServerHelloDone uint8 = 14 61 typeCertificateVerify uint8 = 15 62 typeClientKeyExchange uint8 = 16 63 typeFinished uint8 = 20 64 typeCertificateStatus uint8 = 22 65 typeNextProtocol uint8 = 67 // Not IANA assigned 66 ) 67 68 // TLS compression types. 69 const ( 70 compressionNone uint8 = 0 71 ) 72 73 // TLS extension numbers 74 const ( 75 extensionServerName uint16 = 0 76 extensionStatusRequest uint16 = 5 77 extensionSupportedCurves uint16 = 10 78 extensionSupportedPoints uint16 = 11 79 extensionSignatureAlgorithms uint16 = 13 80 extensionALPN uint16 = 16 81 extensionSCT uint16 = 18 // https://tools.ietf.org/html/rfc6962#section-6 82 extensionSessionTicket uint16 = 35 83 extensionNextProtoNeg uint16 = 13172 // not IANA assigned 84 extensionRenegotiationInfo uint16 = 0xff01 85 ) 86 87 // TLS signaling cipher suite values 88 const ( 89 scsvRenegotiation uint16 = 0x00ff 90 ) 91 92 // CurveID is the type of a TLS identifier for an elliptic curve. See 93 // http://www.iana.org/assignments/tls-parameters/tls-parameters.xml#tls-parameters-8 94 type CurveID uint16 95 96 const ( 97 CurveP256 CurveID = 23 98 CurveP384 CurveID = 24 99 CurveP521 CurveID = 25 100 X25519 CurveID = 29 101 ) 102 103 // TLS Elliptic Curve Point Formats 104 // http://www.iana.org/assignments/tls-parameters/tls-parameters.xml#tls-parameters-9 105 const ( 106 pointFormatUncompressed uint8 = 0 107 ) 108 109 // TLS CertificateStatusType (RFC 3546) 110 const ( 111 statusTypeOCSP uint8 = 1 112 ) 113 114 // Certificate types (for certificateRequestMsg) 115 const ( 116 certTypeRSASign = 1 // A certificate containing an RSA key 117 certTypeDSSSign = 2 // A certificate containing a DSA key 118 certTypeRSAFixedDH = 3 // A certificate containing a static DH key 119 certTypeDSSFixedDH = 4 // A certificate containing a static DH key 120 121 // See RFC 4492 sections 3 and 5.5. 122 certTypeECDSASign = 64 // A certificate containing an ECDSA-capable public key, signed with ECDSA. 123 certTypeRSAFixedECDH = 65 // A certificate containing an ECDH-capable public key, signed with RSA. 124 certTypeECDSAFixedECDH = 66 // A certificate containing an ECDH-capable public key, signed with ECDSA. 125 126 // Rest of these are reserved by the TLS spec 127 ) 128 129 // Hash functions for TLS 1.2 (See RFC 5246, section A.4.1) 130 const ( 131 hashSHA1 uint8 = 2 132 hashSHA256 uint8 = 4 133 hashSHA384 uint8 = 5 134 ) 135 136 // Signature algorithms for TLS 1.2 (See RFC 5246, section A.4.1) 137 const ( 138 signatureRSA uint8 = 1 139 signatureECDSA uint8 = 3 140 ) 141 142 // signatureAndHash mirrors the TLS 1.2, SignatureAndHashAlgorithm struct. See 143 // RFC 5246, section A.4.1. 144 type signatureAndHash struct { 145 hash, signature uint8 146 } 147 148 // supportedSignatureAlgorithms contains the signature and hash algorithms that 149 // the code advertises as supported in a TLS 1.2 ClientHello and in a TLS 1.2 150 // CertificateRequest. 151 var supportedSignatureAlgorithms = []signatureAndHash{ 152 {hashSHA256, signatureRSA}, 153 {hashSHA256, signatureECDSA}, 154 {hashSHA384, signatureRSA}, 155 {hashSHA384, signatureECDSA}, 156 {hashSHA1, signatureRSA}, 157 {hashSHA1, signatureECDSA}, 158 } 159 160 // ConnectionState records basic TLS details about the connection. 161 type ConnectionState struct { 162 Version uint16 // TLS version used by the connection (e.g. VersionTLS12) 163 HandshakeComplete bool // TLS handshake is complete 164 DidResume bool // connection resumes a previous TLS connection 165 CipherSuite uint16 // cipher suite in use (TLS_RSA_WITH_RC4_128_SHA, ...) 166 NegotiatedProtocol string // negotiated next protocol (not guaranteed to be from Config.NextProtos) 167 NegotiatedProtocolIsMutual bool // negotiated protocol was advertised by server (client side only) 168 ServerName string // server name requested by client, if any (server side only) 169 PeerCertificates []*x509.Certificate // certificate chain presented by remote peer 170 VerifiedChains [][]*x509.Certificate // verified chains built from PeerCertificates 171 SignedCertificateTimestamps [][]byte // SCTs from the server, if any 172 OCSPResponse []byte // stapled OCSP response from server, if any 173 174 // TLSUnique contains the "tls-unique" channel binding value (see RFC 175 // 5929, section 3). For resumed sessions this value will be nil 176 // because resumption does not include enough context (see 177 // https://mitls.org/pages/attacks/3SHAKE#channelbindings). This will 178 // change in future versions of Go once the TLS master-secret fix has 179 // been standardized and implemented. 180 TLSUnique []byte 181 } 182 183 // ClientAuthType declares the policy the server will follow for 184 // TLS Client Authentication. 185 type ClientAuthType int 186 187 const ( 188 NoClientCert ClientAuthType = iota 189 RequestClientCert 190 RequireAnyClientCert 191 VerifyClientCertIfGiven 192 RequireAndVerifyClientCert 193 ) 194 195 // ClientSessionState contains the state needed by clients to resume TLS 196 // sessions. 197 type ClientSessionState struct { 198 sessionTicket []uint8 // Encrypted ticket used for session resumption with server 199 vers uint16 // SSL/TLS version negotiated for the session 200 cipherSuite uint16 // Ciphersuite negotiated for the session 201 masterSecret []byte // MasterSecret generated by client on a full handshake 202 serverCertificates []*x509.Certificate // Certificate chain presented by the server 203 verifiedChains [][]*x509.Certificate // Certificate chains we built for verification 204 } 205 206 // ClientSessionCache is a cache of ClientSessionState objects that can be used 207 // by a client to resume a TLS session with a given server. ClientSessionCache 208 // implementations should expect to be called concurrently from different 209 // goroutines. Only ticket-based resumption is supported, not SessionID-based 210 // resumption. 211 type ClientSessionCache interface { 212 // Get searches for a ClientSessionState associated with the given key. 213 // On return, ok is true if one was found. 214 Get(sessionKey string) (session *ClientSessionState, ok bool) 215 216 // Put adds the ClientSessionState to the cache with the given key. 217 Put(sessionKey string, cs *ClientSessionState) 218 } 219 220 // SignatureScheme identifies a signature algorithm supported by TLS. See 221 // https://tools.ietf.org/html/draft-ietf-tls-tls13-18#section-4.2.3. 222 type SignatureScheme uint16 223 224 const ( 225 PKCS1WithSHA1 SignatureScheme = 0x0201 226 PKCS1WithSHA256 SignatureScheme = 0x0401 227 PKCS1WithSHA384 SignatureScheme = 0x0501 228 PKCS1WithSHA512 SignatureScheme = 0x0601 229 230 PSSWithSHA256 SignatureScheme = 0x0804 231 PSSWithSHA384 SignatureScheme = 0x0805 232 PSSWithSHA512 SignatureScheme = 0x0806 233 234 ECDSAWithP256AndSHA256 SignatureScheme = 0x0403 235 ECDSAWithP384AndSHA384 SignatureScheme = 0x0503 236 ECDSAWithP521AndSHA512 SignatureScheme = 0x0603 237 ) 238 239 // ClientHelloInfo contains information from a ClientHello message in order to 240 // guide certificate selection in the GetCertificate callback. 241 type ClientHelloInfo struct { 242 // CipherSuites lists the CipherSuites supported by the client (e.g. 243 // TLS_RSA_WITH_RC4_128_SHA). 244 CipherSuites []uint16 245 246 // ServerName indicates the name of the server requested by the client 247 // in order to support virtual hosting. ServerName is only set if the 248 // client is using SNI (see 249 // http://tools.ietf.org/html/rfc4366#section-3.1). 250 ServerName string 251 252 // SupportedCurves lists the elliptic curves supported by the client. 253 // SupportedCurves is set only if the Supported Elliptic Curves 254 // Extension is being used (see 255 // http://tools.ietf.org/html/rfc4492#section-5.1.1). 256 SupportedCurves []CurveID 257 258 // SupportedPoints lists the point formats supported by the client. 259 // SupportedPoints is set only if the Supported Point Formats Extension 260 // is being used (see 261 // http://tools.ietf.org/html/rfc4492#section-5.1.2). 262 SupportedPoints []uint8 263 264 // SignatureSchemes lists the signature and hash schemes that the client 265 // is willing to verify. SignatureSchemes is set only if the Signature 266 // Algorithms Extension is being used (see 267 // https://tools.ietf.org/html/rfc5246#section-7.4.1.4.1). 268 SignatureSchemes []SignatureScheme 269 270 // SupportedProtos lists the application protocols supported by the client. 271 // SupportedProtos is set only if the Application-Layer Protocol 272 // Negotiation Extension is being used (see 273 // https://tools.ietf.org/html/rfc7301#section-3.1). 274 // 275 // Servers can select a protocol by setting Config.NextProtos in a 276 // GetConfigForClient return value. 277 SupportedProtos []string 278 279 // SupportedVersions lists the TLS versions supported by the client. 280 // For TLS versions less than 1.3, this is extrapolated from the max 281 // version advertised by the client, so values other than the greatest 282 // might be rejected if used. 283 SupportedVersions []uint16 284 285 // Conn is the underlying net.Conn for the connection. Do not read 286 // from, or write to, this connection; that will cause the TLS 287 // connection to fail. 288 Conn net.Conn 289 } 290 291 // CertificateRequestInfo contains information from a server's 292 // CertificateRequest message, which is used to demand a certificate and proof 293 // of control from a client. 294 type CertificateRequestInfo struct { 295 // AcceptableCAs contains zero or more, DER-encoded, X.501 296 // Distinguished Names. These are the names of root or intermediate CAs 297 // that the server wishes the returned certificate to be signed by. An 298 // empty slice indicates that the server has no preference. 299 AcceptableCAs [][]byte 300 301 // SignatureSchemes lists the signature schemes that the server is 302 // willing to verify. 303 SignatureSchemes []SignatureScheme 304 } 305 306 // RenegotiationSupport enumerates the different levels of support for TLS 307 // renegotiation. TLS renegotiation is the act of performing subsequent 308 // handshakes on a connection after the first. This significantly complicates 309 // the state machine and has been the source of numerous, subtle security 310 // issues. Initiating a renegotiation is not supported, but support for 311 // accepting renegotiation requests may be enabled. 312 // 313 // Even when enabled, the server may not change its identity between handshakes 314 // (i.e. the leaf certificate must be the same). Additionally, concurrent 315 // handshake and application data flow is not permitted so renegotiation can 316 // only be used with protocols that synchronise with the renegotiation, such as 317 // HTTPS. 318 type RenegotiationSupport int 319 320 const ( 321 // RenegotiateNever disables renegotiation. 322 RenegotiateNever RenegotiationSupport = iota 323 324 // RenegotiateOnceAsClient allows a remote server to request 325 // renegotiation once per connection. 326 RenegotiateOnceAsClient 327 328 // RenegotiateFreelyAsClient allows a remote server to repeatedly 329 // request renegotiation. 330 RenegotiateFreelyAsClient 331 ) 332 333 // A Config structure is used to configure a TLS client or server. 334 // After one has been passed to a TLS function it must not be 335 // modified. A Config may be reused; the tls package will also not 336 // modify it. 337 type Config struct { 338 // Rand provides the source of entropy for nonces and RSA blinding. 339 // If Rand is nil, TLS uses the cryptographic random reader in package 340 // crypto/rand. 341 // The Reader must be safe for use by multiple goroutines. 342 Rand io.Reader 343 344 // Time returns the current time as the number of seconds since the epoch. 345 // If Time is nil, TLS uses time.Now. 346 Time func() time.Time 347 348 // Certificates contains one or more certificate chains to present to 349 // the other side of the connection. Server configurations must include 350 // at least one certificate or else set GetCertificate. Clients doing 351 // client-authentication may set either Certificates or 352 // GetClientCertificate. 353 Certificates []Certificate 354 355 // NameToCertificate maps from a certificate name to an element of 356 // Certificates. Note that a certificate name can be of the form 357 // '*.example.com' and so doesn't have to be a domain name as such. 358 // See Config.BuildNameToCertificate 359 // The nil value causes the first element of Certificates to be used 360 // for all connections. 361 NameToCertificate map[string]*Certificate 362 363 // GetCertificate returns a Certificate based on the given 364 // ClientHelloInfo. It will only be called if the client supplies SNI 365 // information or if Certificates is empty. 366 // 367 // If GetCertificate is nil or returns nil, then the certificate is 368 // retrieved from NameToCertificate. If NameToCertificate is nil, the 369 // first element of Certificates will be used. 370 GetCertificate func(*ClientHelloInfo) (*Certificate, error) 371 372 // GetClientCertificate, if not nil, is called when a server requests a 373 // certificate from a client. If set, the contents of Certificates will 374 // be ignored. 375 // 376 // If GetClientCertificate returns an error, the handshake will be 377 // aborted and that error will be returned. Otherwise 378 // GetClientCertificate must return a non-nil Certificate. If 379 // Certificate.Certificate is empty then no certificate will be sent to 380 // the server. If this is unacceptable to the server then it may abort 381 // the handshake. 382 // 383 // GetClientCertificate may be called multiple times for the same 384 // connection if renegotiation occurs or if TLS 1.3 is in use. 385 GetClientCertificate func(*CertificateRequestInfo) (*Certificate, error) 386 387 // GetConfigForClient, if not nil, is called after a ClientHello is 388 // received from a client. It may return a non-nil Config in order to 389 // change the Config that will be used to handle this connection. If 390 // the returned Config is nil, the original Config will be used. The 391 // Config returned by this callback may not be subsequently modified. 392 // 393 // If GetConfigForClient is nil, the Config passed to Server() will be 394 // used for all connections. 395 // 396 // Uniquely for the fields in the returned Config, session ticket keys 397 // will be duplicated from the original Config if not set. 398 // Specifically, if SetSessionTicketKeys was called on the original 399 // config but not on the returned config then the ticket keys from the 400 // original config will be copied into the new config before use. 401 // Otherwise, if SessionTicketKey was set in the original config but 402 // not in the returned config then it will be copied into the returned 403 // config before use. If neither of those cases applies then the key 404 // material from the returned config will be used for session tickets. 405 GetConfigForClient func(*ClientHelloInfo) (*Config, error) 406 407 // VerifyPeerCertificate, if not nil, is called after normal 408 // certificate verification by either a TLS client or server. It 409 // receives the raw ASN.1 certificates provided by the peer and also 410 // any verified chains that normal processing found. If it returns a 411 // non-nil error, the handshake is aborted and that error results. 412 // 413 // If normal verification fails then the handshake will abort before 414 // considering this callback. If normal verification is disabled by 415 // setting InsecureSkipVerify then this callback will be considered but 416 // the verifiedChains argument will always be nil. 417 VerifyPeerCertificate func(rawCerts [][]byte, verifiedChains [][]*x509.Certificate) error 418 419 // RootCAs defines the set of root certificate authorities 420 // that clients use when verifying server certificates. 421 // If RootCAs is nil, TLS uses the host's root CA set. 422 RootCAs *x509.CertPool 423 424 // NextProtos is a list of supported, application level protocols. 425 NextProtos []string 426 427 // ServerName is used to verify the hostname on the returned 428 // certificates unless InsecureSkipVerify is given. It is also included 429 // in the client's handshake to support virtual hosting unless it is 430 // an IP address. 431 ServerName string 432 433 // ClientAuth determines the server's policy for 434 // TLS Client Authentication. The default is NoClientCert. 435 ClientAuth ClientAuthType 436 437 // ClientCAs defines the set of root certificate authorities 438 // that servers use if required to verify a client certificate 439 // by the policy in ClientAuth. 440 ClientCAs *x509.CertPool 441 442 // InsecureSkipVerify controls whether a client verifies the 443 // server's certificate chain and host name. 444 // If InsecureSkipVerify is true, TLS accepts any certificate 445 // presented by the server and any host name in that certificate. 446 // In this mode, TLS is susceptible to man-in-the-middle attacks. 447 // This should be used only for testing. 448 InsecureSkipVerify bool 449 450 // CipherSuites is a list of supported cipher suites. If CipherSuites 451 // is nil, TLS uses a list of suites supported by the implementation. 452 CipherSuites []uint16 453 454 // PreferServerCipherSuites controls whether the server selects the 455 // client's most preferred ciphersuite, or the server's most preferred 456 // ciphersuite. If true then the server's preference, as expressed in 457 // the order of elements in CipherSuites, is used. 458 PreferServerCipherSuites bool 459 460 // SessionTicketsDisabled may be set to true to disable session ticket 461 // (resumption) support. 462 SessionTicketsDisabled bool 463 464 // SessionTicketKey is used by TLS servers to provide session 465 // resumption. See RFC 5077. If zero, it will be filled with 466 // random data before the first server handshake. 467 // 468 // If multiple servers are terminating connections for the same host 469 // they should all have the same SessionTicketKey. If the 470 // SessionTicketKey leaks, previously recorded and future TLS 471 // connections using that key are compromised. 472 SessionTicketKey [32]byte 473 474 // SessionCache is a cache of ClientSessionState entries for TLS session 475 // resumption. 476 ClientSessionCache ClientSessionCache 477 478 // MinVersion contains the minimum SSL/TLS version that is acceptable. 479 // If zero, then TLS 1.0 is taken as the minimum. 480 MinVersion uint16 481 482 // MaxVersion contains the maximum SSL/TLS version that is acceptable. 483 // If zero, then the maximum version supported by this package is used, 484 // which is currently TLS 1.2. 485 MaxVersion uint16 486 487 // CurvePreferences contains the elliptic curves that will be used in 488 // an ECDHE handshake, in preference order. If empty, the default will 489 // be used. 490 CurvePreferences []CurveID 491 492 // DynamicRecordSizingDisabled disables adaptive sizing of TLS records. 493 // When true, the largest possible TLS record size is always used. When 494 // false, the size of TLS records may be adjusted in an attempt to 495 // improve latency. 496 DynamicRecordSizingDisabled bool 497 498 // Renegotiation controls what types of renegotiation are supported. 499 // The default, none, is correct for the vast majority of applications. 500 Renegotiation RenegotiationSupport 501 502 // KeyLogWriter optionally specifies a destination for TLS master secrets 503 // in NSS key log format that can be used to allow external programs 504 // such as Wireshark to decrypt TLS connections. 505 // See https://developer.mozilla.org/en-US/docs/Mozilla/Projects/NSS/Key_Log_Format. 506 // Use of KeyLogWriter compromises security and should only be 507 // used for debugging. 508 KeyLogWriter io.Writer 509 510 serverInitOnce sync.Once // guards calling (*Config).serverInit 511 512 // mutex protects sessionTicketKeys and originalConfig. 513 mutex sync.RWMutex 514 // sessionTicketKeys contains zero or more ticket keys. If the length 515 // is zero, SessionTicketsDisabled must be true. The first key is used 516 // for new tickets and any subsequent keys can be used to decrypt old 517 // tickets. 518 sessionTicketKeys []ticketKey 519 // originalConfig is set to the Config that was passed to Server if 520 // this Config is returned by a GetConfigForClient callback. It's used 521 // by serverInit in order to copy session ticket keys if needed. 522 originalConfig *Config 523 } 524 525 // ticketKeyNameLen is the number of bytes of identifier that is prepended to 526 // an encrypted session ticket in order to identify the key used to encrypt it. 527 const ticketKeyNameLen = 16 528 529 // ticketKey is the internal representation of a session ticket key. 530 type ticketKey struct { 531 // keyName is an opaque byte string that serves to identify the session 532 // ticket key. It's exposed as plaintext in every session ticket. 533 keyName [ticketKeyNameLen]byte 534 aesKey [16]byte 535 hmacKey [16]byte 536 } 537 538 // ticketKeyFromBytes converts from the external representation of a session 539 // ticket key to a ticketKey. Externally, session ticket keys are 32 random 540 // bytes and this function expands that into sufficient name and key material. 541 func ticketKeyFromBytes(b [32]byte) (key ticketKey) { 542 hashed := sha512.Sum512(b[:]) 543 copy(key.keyName[:], hashed[:ticketKeyNameLen]) 544 copy(key.aesKey[:], hashed[ticketKeyNameLen:ticketKeyNameLen+16]) 545 copy(key.hmacKey[:], hashed[ticketKeyNameLen+16:ticketKeyNameLen+32]) 546 return key 547 } 548 549 // Clone returns a shallow clone of c. It is safe to clone a Config that is 550 // being used concurrently by a TLS client or server. 551 func (c *Config) Clone() *Config { 552 // Running serverInit ensures that it's safe to read 553 // SessionTicketsDisabled. 554 c.serverInitOnce.Do(c.serverInit) 555 556 var sessionTicketKeys []ticketKey 557 c.mutex.RLock() 558 sessionTicketKeys = c.sessionTicketKeys 559 c.mutex.RUnlock() 560 561 return &Config{ 562 Rand: c.Rand, 563 Time: c.Time, 564 Certificates: c.Certificates, 565 NameToCertificate: c.NameToCertificate, 566 GetCertificate: c.GetCertificate, 567 GetConfigForClient: c.GetConfigForClient, 568 VerifyPeerCertificate: c.VerifyPeerCertificate, 569 RootCAs: c.RootCAs, 570 NextProtos: c.NextProtos, 571 ServerName: c.ServerName, 572 ClientAuth: c.ClientAuth, 573 ClientCAs: c.ClientCAs, 574 InsecureSkipVerify: c.InsecureSkipVerify, 575 CipherSuites: c.CipherSuites, 576 PreferServerCipherSuites: c.PreferServerCipherSuites, 577 SessionTicketsDisabled: c.SessionTicketsDisabled, 578 SessionTicketKey: c.SessionTicketKey, 579 ClientSessionCache: c.ClientSessionCache, 580 MinVersion: c.MinVersion, 581 MaxVersion: c.MaxVersion, 582 CurvePreferences: c.CurvePreferences, 583 DynamicRecordSizingDisabled: c.DynamicRecordSizingDisabled, 584 Renegotiation: c.Renegotiation, 585 KeyLogWriter: c.KeyLogWriter, 586 sessionTicketKeys: sessionTicketKeys, 587 // originalConfig is deliberately not duplicated. 588 } 589 } 590 591 func (c *Config) serverInit() { 592 if c.SessionTicketsDisabled || len(c.ticketKeys()) != 0 { 593 return 594 } 595 596 var originalConfig *Config 597 c.mutex.Lock() 598 originalConfig, c.originalConfig = c.originalConfig, nil 599 c.mutex.Unlock() 600 601 alreadySet := false 602 for _, b := range c.SessionTicketKey { 603 if b != 0 { 604 alreadySet = true 605 break 606 } 607 } 608 609 if !alreadySet { 610 if originalConfig != nil { 611 copy(c.SessionTicketKey[:], originalConfig.SessionTicketKey[:]) 612 } else if _, err := io.ReadFull(c.rand(), c.SessionTicketKey[:]); err != nil { 613 c.SessionTicketsDisabled = true 614 return 615 } 616 } 617 618 if originalConfig != nil { 619 originalConfig.mutex.RLock() 620 c.sessionTicketKeys = originalConfig.sessionTicketKeys 621 originalConfig.mutex.RUnlock() 622 } else { 623 c.sessionTicketKeys = []ticketKey{ticketKeyFromBytes(c.SessionTicketKey)} 624 } 625 } 626 627 func (c *Config) ticketKeys() []ticketKey { 628 c.mutex.RLock() 629 // c.sessionTicketKeys is constant once created. SetSessionTicketKeys 630 // will only update it by replacing it with a new value. 631 ret := c.sessionTicketKeys 632 c.mutex.RUnlock() 633 return ret 634 } 635 636 // SetSessionTicketKeys updates the session ticket keys for a server. The first 637 // key will be used when creating new tickets, while all keys can be used for 638 // decrypting tickets. It is safe to call this function while the server is 639 // running in order to rotate the session ticket keys. The function will panic 640 // if keys is empty. 641 func (c *Config) SetSessionTicketKeys(keys [][32]byte) { 642 if len(keys) == 0 { 643 panic("tls: keys must have at least one key") 644 } 645 646 newKeys := make([]ticketKey, len(keys)) 647 for i, bytes := range keys { 648 newKeys[i] = ticketKeyFromBytes(bytes) 649 } 650 651 c.mutex.Lock() 652 c.sessionTicketKeys = newKeys 653 c.mutex.Unlock() 654 } 655 656 func (c *Config) rand() io.Reader { 657 r := c.Rand 658 if r == nil { 659 return rand.Reader 660 } 661 return r 662 } 663 664 func (c *Config) time() time.Time { 665 t := c.Time 666 if t == nil { 667 t = time.Now 668 } 669 return t() 670 } 671 672 func (c *Config) cipherSuites() []uint16 { 673 s := c.CipherSuites 674 if s == nil { 675 s = defaultCipherSuites() 676 } 677 return s 678 } 679 680 func (c *Config) minVersion() uint16 { 681 if c == nil || c.MinVersion == 0 { 682 return minVersion 683 } 684 return c.MinVersion 685 } 686 687 func (c *Config) maxVersion() uint16 { 688 if c == nil || c.MaxVersion == 0 { 689 return maxVersion 690 } 691 return c.MaxVersion 692 } 693 694 var defaultCurvePreferences = []CurveID{X25519, CurveP256, CurveP384, CurveP521} 695 696 func (c *Config) curvePreferences() []CurveID { 697 if c == nil || len(c.CurvePreferences) == 0 { 698 return defaultCurvePreferences 699 } 700 return c.CurvePreferences 701 } 702 703 // mutualVersion returns the protocol version to use given the advertised 704 // version of the peer. 705 func (c *Config) mutualVersion(vers uint16) (uint16, bool) { 706 minVersion := c.minVersion() 707 maxVersion := c.maxVersion() 708 709 if vers < minVersion { 710 return 0, false 711 } 712 if vers > maxVersion { 713 vers = maxVersion 714 } 715 return vers, true 716 } 717 718 // getCertificate returns the best certificate for the given ClientHelloInfo, 719 // defaulting to the first element of c.Certificates. 720 func (c *Config) getCertificate(clientHello *ClientHelloInfo) (*Certificate, error) { 721 if c.GetCertificate != nil && 722 (len(c.Certificates) == 0 || len(clientHello.ServerName) > 0) { 723 cert, err := c.GetCertificate(clientHello) 724 if cert != nil || err != nil { 725 return cert, err 726 } 727 } 728 729 if len(c.Certificates) == 0 { 730 return nil, errors.New("tls: no certificates configured") 731 } 732 733 if len(c.Certificates) == 1 || c.NameToCertificate == nil { 734 // There's only one choice, so no point doing any work. 735 return &c.Certificates[0], nil 736 } 737 738 name := strings.ToLower(clientHello.ServerName) 739 for len(name) > 0 && name[len(name)-1] == '.' { 740 name = name[:len(name)-1] 741 } 742 743 if cert, ok := c.NameToCertificate[name]; ok { 744 return cert, nil 745 } 746 747 // try replacing labels in the name with wildcards until we get a 748 // match. 749 labels := strings.Split(name, ".") 750 for i := range labels { 751 labels[i] = "*" 752 candidate := strings.Join(labels, ".") 753 if cert, ok := c.NameToCertificate[candidate]; ok { 754 return cert, nil 755 } 756 } 757 758 // If nothing matches, return the first certificate. 759 return &c.Certificates[0], nil 760 } 761 762 // BuildNameToCertificate parses c.Certificates and builds c.NameToCertificate 763 // from the CommonName and SubjectAlternateName fields of each of the leaf 764 // certificates. 765 func (c *Config) BuildNameToCertificate() { 766 c.NameToCertificate = make(map[string]*Certificate) 767 for i := range c.Certificates { 768 cert := &c.Certificates[i] 769 x509Cert, err := x509.ParseCertificate(cert.Certificate[0]) 770 if err != nil { 771 continue 772 } 773 if len(x509Cert.Subject.CommonName) > 0 { 774 c.NameToCertificate[x509Cert.Subject.CommonName] = cert 775 } 776 for _, san := range x509Cert.DNSNames { 777 c.NameToCertificate[san] = cert 778 } 779 } 780 } 781 782 // writeKeyLog logs client random and master secret if logging was enabled by 783 // setting c.KeyLogWriter. 784 func (c *Config) writeKeyLog(clientRandom, masterSecret []byte) error { 785 if c.KeyLogWriter == nil { 786 return nil 787 } 788 789 logLine := []byte(fmt.Sprintf("CLIENT_RANDOM %x %x\n", clientRandom, masterSecret)) 790 791 writerMutex.Lock() 792 _, err := c.KeyLogWriter.Write(logLine) 793 writerMutex.Unlock() 794 795 return err 796 } 797 798 // writerMutex protects all KeyLogWriters globally. It is rarely enabled, 799 // and is only for debugging, so a global mutex saves space. 800 var writerMutex sync.Mutex 801 802 // A Certificate is a chain of one or more certificates, leaf first. 803 type Certificate struct { 804 Certificate [][]byte 805 // PrivateKey contains the private key corresponding to the public key 806 // in Leaf. For a server, this must implement crypto.Signer and/or 807 // crypto.Decrypter, with an RSA or ECDSA PublicKey. For a client 808 // (performing client authentication), this must be a crypto.Signer 809 // with an RSA or ECDSA PublicKey. 810 PrivateKey crypto.PrivateKey 811 // OCSPStaple contains an optional OCSP response which will be served 812 // to clients that request it. 813 OCSPStaple []byte 814 // SignedCertificateTimestamps contains an optional list of Signed 815 // Certificate Timestamps which will be served to clients that request it. 816 SignedCertificateTimestamps [][]byte 817 // Leaf is the parsed form of the leaf certificate, which may be 818 // initialized using x509.ParseCertificate to reduce per-handshake 819 // processing for TLS clients doing client authentication. If nil, the 820 // leaf certificate will be parsed as needed. 821 Leaf *x509.Certificate 822 } 823 824 type handshakeMessage interface { 825 marshal() []byte 826 unmarshal([]byte) bool 827 } 828 829 // lruSessionCache is a ClientSessionCache implementation that uses an LRU 830 // caching strategy. 831 type lruSessionCache struct { 832 sync.Mutex 833 834 m map[string]*list.Element 835 q *list.List 836 capacity int 837 } 838 839 type lruSessionCacheEntry struct { 840 sessionKey string 841 state *ClientSessionState 842 } 843 844 // NewLRUClientSessionCache returns a ClientSessionCache with the given 845 // capacity that uses an LRU strategy. If capacity is < 1, a default capacity 846 // is used instead. 847 func NewLRUClientSessionCache(capacity int) ClientSessionCache { 848 const defaultSessionCacheCapacity = 64 849 850 if capacity < 1 { 851 capacity = defaultSessionCacheCapacity 852 } 853 return &lruSessionCache{ 854 m: make(map[string]*list.Element), 855 q: list.New(), 856 capacity: capacity, 857 } 858 } 859 860 // Put adds the provided (sessionKey, cs) pair to the cache. 861 func (c *lruSessionCache) Put(sessionKey string, cs *ClientSessionState) { 862 c.Lock() 863 defer c.Unlock() 864 865 if elem, ok := c.m[sessionKey]; ok { 866 entry := elem.Value.(*lruSessionCacheEntry) 867 entry.state = cs 868 c.q.MoveToFront(elem) 869 return 870 } 871 872 if c.q.Len() < c.capacity { 873 entry := &lruSessionCacheEntry{sessionKey, cs} 874 c.m[sessionKey] = c.q.PushFront(entry) 875 return 876 } 877 878 elem := c.q.Back() 879 entry := elem.Value.(*lruSessionCacheEntry) 880 delete(c.m, entry.sessionKey) 881 entry.sessionKey = sessionKey 882 entry.state = cs 883 c.q.MoveToFront(elem) 884 c.m[sessionKey] = elem 885 } 886 887 // Get returns the ClientSessionState value associated with a given key. It 888 // returns (nil, false) if no value is found. 889 func (c *lruSessionCache) Get(sessionKey string) (*ClientSessionState, bool) { 890 c.Lock() 891 defer c.Unlock() 892 893 if elem, ok := c.m[sessionKey]; ok { 894 c.q.MoveToFront(elem) 895 return elem.Value.(*lruSessionCacheEntry).state, true 896 } 897 return nil, false 898 } 899 900 // TODO(jsing): Make these available to both crypto/x509 and crypto/tls. 901 type dsaSignature struct { 902 R, S *big.Int 903 } 904 905 type ecdsaSignature dsaSignature 906 907 var emptyConfig Config 908 909 func defaultConfig() *Config { 910 return &emptyConfig 911 } 912 913 var ( 914 once sync.Once 915 varDefaultCipherSuites []uint16 916 ) 917 918 func defaultCipherSuites() []uint16 { 919 once.Do(initDefaultCipherSuites) 920 return varDefaultCipherSuites 921 } 922 923 func initDefaultCipherSuites() { 924 var topCipherSuites []uint16 925 if cipherhw.AESGCMSupport() { 926 // If AES-GCM hardware is provided then prioritise AES-GCM 927 // cipher suites. 928 topCipherSuites = []uint16{ 929 TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256, 930 TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384, 931 TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256, 932 TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384, 933 TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305, 934 TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305, 935 } 936 } else { 937 // Without AES-GCM hardware, we put the ChaCha20-Poly1305 938 // cipher suites first. 939 topCipherSuites = []uint16{ 940 TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305, 941 TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305, 942 TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256, 943 TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384, 944 TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256, 945 TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384, 946 } 947 } 948 949 varDefaultCipherSuites = make([]uint16, 0, len(cipherSuites)) 950 varDefaultCipherSuites = append(varDefaultCipherSuites, topCipherSuites...) 951 952 NextCipherSuite: 953 for _, suite := range cipherSuites { 954 if suite.flags&suiteDefaultOff != 0 { 955 continue 956 } 957 for _, existing := range varDefaultCipherSuites { 958 if existing == suite.id { 959 continue NextCipherSuite 960 } 961 } 962 varDefaultCipherSuites = append(varDefaultCipherSuites, suite.id) 963 } 964 } 965 966 func unexpectedMessageError(wanted, got interface{}) error { 967 return fmt.Errorf("tls: received unexpected handshake message of type %T when waiting for %T", got, wanted) 968 } 969 970 func isSupportedSignatureAndHash(sigHash signatureAndHash, sigHashes []signatureAndHash) bool { 971 for _, s := range sigHashes { 972 if s == sigHash { 973 return true 974 } 975 } 976 return false 977 }