2049 lines
58 KiB
Go
2049 lines
58 KiB
Go
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// Copyright 2010 The Go Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file.
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// TLS low level connection and record layer
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package runner
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import (
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"bytes"
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"crypto/cipher"
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"crypto/ecdsa"
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"crypto/subtle"
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"crypto/x509"
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"encoding/binary"
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"errors"
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"fmt"
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"io"
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"net"
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"sync"
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"time"
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)
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var errNoCertificateAlert = errors.New("tls: no certificate alert")
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var errEndOfEarlyDataAlert = errors.New("tls: end of early data alert")
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// A Conn represents a secured connection.
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// It implements the net.Conn interface.
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type Conn struct {
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// constant
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conn net.Conn
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isDTLS bool
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isClient bool
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// constant after handshake; protected by handshakeMutex
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handshakeMutex sync.Mutex // handshakeMutex < in.Mutex, out.Mutex, errMutex
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handshakeErr error // error resulting from handshake
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wireVersion uint16 // TLS wire version
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vers uint16 // TLS version
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haveVers bool // version has been negotiated
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config *Config // configuration passed to constructor
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handshakeComplete bool
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skipEarlyData bool // On a server, indicates that the client is sending early data that must be skipped over.
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didResume bool // whether this connection was a session resumption
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extendedMasterSecret bool // whether this session used an extended master secret
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cipherSuite *cipherSuite
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earlyCipherSuite *cipherSuite
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ocspResponse []byte // stapled OCSP response
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sctList []byte // signed certificate timestamp list
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peerCertificates []*x509.Certificate
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// verifiedChains contains the certificate chains that we built, as
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// opposed to the ones presented by the server.
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verifiedChains [][]*x509.Certificate
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// serverName contains the server name indicated by the client, if any.
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serverName string
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// firstFinished contains the first Finished hash sent during the
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// handshake. This is the "tls-unique" channel binding value.
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firstFinished [12]byte
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// peerSignatureAlgorithm contains the signature algorithm that was used
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// by the peer in the handshake, or zero if not applicable.
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peerSignatureAlgorithm signatureAlgorithm
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// curveID contains the curve that was used in the handshake, or zero if
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// not applicable.
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curveID CurveID
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// quicTransportParams contains the QUIC transport params received
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// by the peer.
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quicTransportParams []byte
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clientRandom, serverRandom [32]byte
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earlyExporterSecret []byte
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exporterSecret []byte
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resumptionSecret []byte
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clientProtocol string
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clientProtocolFallback bool
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usedALPN bool
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// verify_data values for the renegotiation extension.
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clientVerify []byte
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serverVerify []byte
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channelID *ecdsa.PublicKey
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tokenBindingNegotiated bool
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tokenBindingParam uint8
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srtpProtectionProfile uint16
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clientVersion uint16
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// input/output
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in, out halfConn // in.Mutex < out.Mutex
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rawInput *block // raw input, right off the wire
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input *block // application record waiting to be read
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hand bytes.Buffer // handshake record waiting to be read
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// pendingFlight, if PackHandshakeFlight is enabled, is the buffer of
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// handshake data to be split into records at the end of the flight.
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pendingFlight bytes.Buffer
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// DTLS state
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sendHandshakeSeq uint16
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recvHandshakeSeq uint16
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handMsg []byte // pending assembled handshake message
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handMsgLen int // handshake message length, not including the header
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pendingFragments [][]byte // pending outgoing handshake fragments.
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pendingPacket []byte // pending outgoing packet.
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keyUpdateSeen bool
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keyUpdateRequested bool
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seenOneByteRecord bool
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expectTLS13ChangeCipherSpec bool
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// seenHandshakePackEnd is whether the most recent handshake record was
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// not full for ExpectPackedEncryptedHandshake. If true, no more
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// handshake data may be received until the next flight or epoch change.
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seenHandshakePackEnd bool
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tmp [16]byte
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}
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func (c *Conn) init() {
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c.in.isDTLS = c.isDTLS
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c.out.isDTLS = c.isDTLS
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c.in.config = c.config
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c.out.config = c.config
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c.out.updateOutSeq()
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}
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// Access to net.Conn methods.
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// Cannot just embed net.Conn because that would
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// export the struct field too.
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// LocalAddr returns the local network address.
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func (c *Conn) LocalAddr() net.Addr {
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return c.conn.LocalAddr()
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}
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// RemoteAddr returns the remote network address.
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func (c *Conn) RemoteAddr() net.Addr {
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return c.conn.RemoteAddr()
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}
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// SetDeadline sets the read and write deadlines associated with the connection.
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// A zero value for t means Read and Write will not time out.
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// After a Write has timed out, the TLS state is corrupt and all future writes will return the same error.
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func (c *Conn) SetDeadline(t time.Time) error {
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return c.conn.SetDeadline(t)
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}
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// SetReadDeadline sets the read deadline on the underlying connection.
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// A zero value for t means Read will not time out.
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func (c *Conn) SetReadDeadline(t time.Time) error {
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return c.conn.SetReadDeadline(t)
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}
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// SetWriteDeadline sets the write deadline on the underlying conneciton.
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// A zero value for t means Write will not time out.
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// After a Write has timed out, the TLS state is corrupt and all future writes will return the same error.
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func (c *Conn) SetWriteDeadline(t time.Time) error {
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return c.conn.SetWriteDeadline(t)
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}
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// A halfConn represents one direction of the record layer
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// connection, either sending or receiving.
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type halfConn struct {
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sync.Mutex
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err error // first permanent error
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version uint16 // protocol version
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wireVersion uint16 // wire version
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isDTLS bool
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cipher interface{} // cipher algorithm
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mac macFunction
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seq [8]byte // 64-bit sequence number
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outSeq [8]byte // Mapped sequence number
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bfree *block // list of free blocks
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nextCipher interface{} // next encryption state
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nextMac macFunction // next MAC algorithm
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nextSeq [6]byte // next epoch's starting sequence number in DTLS
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// used to save allocating a new buffer for each MAC.
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inDigestBuf, outDigestBuf []byte
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trafficSecret []byte
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config *Config
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}
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func (hc *halfConn) setErrorLocked(err error) error {
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hc.err = err
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return err
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}
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func (hc *halfConn) error() error {
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// This should be locked, but I've removed it for the renegotiation
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// tests since we don't concurrently read and write the same tls.Conn
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// in any case during testing.
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err := hc.err
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return err
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}
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// prepareCipherSpec sets the encryption and MAC states
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// that a subsequent changeCipherSpec will use.
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func (hc *halfConn) prepareCipherSpec(version uint16, cipher interface{}, mac macFunction) {
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hc.wireVersion = version
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protocolVersion, ok := wireToVersion(version, hc.isDTLS)
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if !ok {
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panic("TLS: unknown version")
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}
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hc.version = protocolVersion
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hc.nextCipher = cipher
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hc.nextMac = mac
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}
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// changeCipherSpec changes the encryption and MAC states
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// to the ones previously passed to prepareCipherSpec.
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func (hc *halfConn) changeCipherSpec(config *Config) error {
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if hc.nextCipher == nil {
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return alertInternalError
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}
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hc.cipher = hc.nextCipher
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hc.mac = hc.nextMac
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hc.nextCipher = nil
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hc.nextMac = nil
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hc.config = config
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hc.incEpoch()
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if config.Bugs.NullAllCiphers {
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hc.cipher = nullCipher{}
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hc.mac = nil
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}
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return nil
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}
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// useTrafficSecret sets the current cipher state for TLS 1.3.
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func (hc *halfConn) useTrafficSecret(version uint16, suite *cipherSuite, secret []byte, side trafficDirection) {
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hc.wireVersion = version
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protocolVersion, ok := wireToVersion(version, hc.isDTLS)
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if !ok {
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panic("TLS: unknown version")
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}
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hc.version = protocolVersion
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hc.cipher = deriveTrafficAEAD(version, suite, secret, side)
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if hc.config.Bugs.NullAllCiphers {
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hc.cipher = nullCipher{}
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}
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hc.trafficSecret = secret
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hc.incEpoch()
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}
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// resetCipher changes the cipher state back to no encryption to be able
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// to send an unencrypted ClientHello in response to HelloRetryRequest
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// after 0-RTT data was rejected.
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func (hc *halfConn) resetCipher() {
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hc.cipher = nil
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hc.incEpoch()
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}
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// incSeq increments the sequence number.
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func (hc *halfConn) incSeq(isOutgoing bool) {
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limit := 0
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increment := uint64(1)
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if hc.isDTLS {
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// Increment up to the epoch in DTLS.
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limit = 2
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}
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for i := 7; i >= limit; i-- {
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increment += uint64(hc.seq[i])
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hc.seq[i] = byte(increment)
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increment >>= 8
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}
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// Not allowed to let sequence number wrap.
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// Instead, must renegotiate before it does.
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// Not likely enough to bother.
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if increment != 0 {
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panic("TLS: sequence number wraparound")
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}
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hc.updateOutSeq()
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}
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// incNextSeq increments the starting sequence number for the next epoch.
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func (hc *halfConn) incNextSeq() {
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for i := len(hc.nextSeq) - 1; i >= 0; i-- {
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hc.nextSeq[i]++
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if hc.nextSeq[i] != 0 {
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return
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}
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}
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panic("TLS: sequence number wraparound")
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}
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// incEpoch resets the sequence number. In DTLS, it also increments the epoch
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// half of the sequence number.
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func (hc *halfConn) incEpoch() {
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if hc.isDTLS {
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for i := 1; i >= 0; i-- {
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hc.seq[i]++
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if hc.seq[i] != 0 {
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break
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}
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if i == 0 {
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panic("TLS: epoch number wraparound")
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}
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}
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copy(hc.seq[2:], hc.nextSeq[:])
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for i := range hc.nextSeq {
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hc.nextSeq[i] = 0
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}
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} else {
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for i := range hc.seq {
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hc.seq[i] = 0
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}
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}
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hc.updateOutSeq()
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}
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func (hc *halfConn) updateOutSeq() {
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if hc.config.Bugs.SequenceNumberMapping != nil {
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seqU64 := binary.BigEndian.Uint64(hc.seq[:])
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seqU64 = hc.config.Bugs.SequenceNumberMapping(seqU64)
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binary.BigEndian.PutUint64(hc.outSeq[:], seqU64)
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// The DTLS epoch cannot be changed.
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copy(hc.outSeq[:2], hc.seq[:2])
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return
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}
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copy(hc.outSeq[:], hc.seq[:])
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}
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func (hc *halfConn) recordHeaderLen() int {
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if hc.isDTLS {
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return dtlsRecordHeaderLen
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}
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return tlsRecordHeaderLen
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}
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// removePadding returns an unpadded slice, in constant time, which is a prefix
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// of the input. It also returns a byte which is equal to 255 if the padding
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// was valid and 0 otherwise. See RFC 2246, section 6.2.3.2
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func removePadding(payload []byte) ([]byte, byte) {
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if len(payload) < 1 {
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return payload, 0
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}
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paddingLen := payload[len(payload)-1]
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t := uint(len(payload)-1) - uint(paddingLen)
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// if len(payload) >= (paddingLen - 1) then the MSB of t is zero
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good := byte(int32(^t) >> 31)
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toCheck := 255 // the maximum possible padding length
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// The length of the padded data is public, so we can use an if here
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if toCheck+1 > len(payload) {
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toCheck = len(payload) - 1
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}
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for i := 0; i < toCheck; i++ {
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t := uint(paddingLen) - uint(i)
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// if i <= paddingLen then the MSB of t is zero
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mask := byte(int32(^t) >> 31)
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b := payload[len(payload)-1-i]
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good &^= mask&paddingLen ^ mask&b
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}
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// We AND together the bits of good and replicate the result across
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// all the bits.
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good &= good << 4
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good &= good << 2
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good &= good << 1
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good = uint8(int8(good) >> 7)
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toRemove := good&paddingLen + 1
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return payload[:len(payload)-int(toRemove)], good
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}
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// removePaddingSSL30 is a replacement for removePadding in the case that the
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// protocol version is SSLv3. In this version, the contents of the padding
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// are random and cannot be checked.
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func removePaddingSSL30(payload []byte) ([]byte, byte) {
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if len(payload) < 1 {
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return payload, 0
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}
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paddingLen := int(payload[len(payload)-1]) + 1
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if paddingLen > len(payload) {
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return payload, 0
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}
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return payload[:len(payload)-paddingLen], 255
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}
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func roundUp(a, b int) int {
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return a + (b-a%b)%b
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}
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// cbcMode is an interface for block ciphers using cipher block chaining.
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type cbcMode interface {
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cipher.BlockMode
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SetIV([]byte)
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}
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// decrypt checks and strips the mac and decrypts the data in b. Returns a
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// success boolean, the number of bytes to skip from the start of the record in
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// order to get the application payload, the encrypted record type (or 0
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// if there is none), and an optional alert value.
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func (hc *halfConn) decrypt(b *block) (ok bool, prefixLen int, contentType recordType, alertValue alert) {
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recordHeaderLen := hc.recordHeaderLen()
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// pull out payload
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payload := b.data[recordHeaderLen:]
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macSize := 0
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if hc.mac != nil {
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macSize = hc.mac.Size()
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}
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paddingGood := byte(255)
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explicitIVLen := 0
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seq := hc.seq[:]
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if hc.isDTLS {
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// DTLS sequence numbers are explicit.
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seq = b.data[3:11]
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}
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// decrypt
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if hc.cipher != nil {
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switch c := hc.cipher.(type) {
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case cipher.Stream:
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c.XORKeyStream(payload, payload)
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case *tlsAead:
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nonce := seq
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if c.explicitNonce {
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explicitIVLen = 8
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if len(payload) < explicitIVLen {
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return false, 0, 0, alertBadRecordMAC
|
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}
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nonce = payload[:8]
|
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payload = payload[8:]
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}
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var additionalData []byte
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||
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if hc.version < VersionTLS13 {
|
||
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additionalData = make([]byte, 13)
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copy(additionalData, seq)
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copy(additionalData[8:], b.data[:3])
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||
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n := len(payload) - c.Overhead()
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||
|
additionalData[11] = byte(n >> 8)
|
||
|
additionalData[12] = byte(n)
|
||
|
} else {
|
||
|
additionalData = b.data[:recordHeaderLen]
|
||
|
}
|
||
|
var err error
|
||
|
payload, err = c.Open(payload[:0], nonce, payload, additionalData)
|
||
|
if err != nil {
|
||
|
return false, 0, 0, alertBadRecordMAC
|
||
|
}
|
||
|
b.resize(recordHeaderLen + explicitIVLen + len(payload))
|
||
|
case cbcMode:
|
||
|
blockSize := c.BlockSize()
|
||
|
if hc.version >= VersionTLS11 || hc.isDTLS {
|
||
|
explicitIVLen = blockSize
|
||
|
}
|
||
|
|
||
|
if len(payload)%blockSize != 0 || len(payload) < roundUp(explicitIVLen+macSize+1, blockSize) {
|
||
|
return false, 0, 0, alertBadRecordMAC
|
||
|
}
|
||
|
|
||
|
if explicitIVLen > 0 {
|
||
|
c.SetIV(payload[:explicitIVLen])
|
||
|
payload = payload[explicitIVLen:]
|
||
|
}
|
||
|
c.CryptBlocks(payload, payload)
|
||
|
if hc.version == VersionSSL30 {
|
||
|
payload, paddingGood = removePaddingSSL30(payload)
|
||
|
} else {
|
||
|
payload, paddingGood = removePadding(payload)
|
||
|
}
|
||
|
b.resize(recordHeaderLen + explicitIVLen + len(payload))
|
||
|
|
||
|
// note that we still have a timing side-channel in the
|
||
|
// MAC check, below. An attacker can align the record
|
||
|
// so that a correct padding will cause one less hash
|
||
|
// block to be calculated. Then they can iteratively
|
||
|
// decrypt a record by breaking each byte. See
|
||
|
// "Password Interception in a SSL/TLS Channel", Brice
|
||
|
// Canvel et al.
|
||
|
//
|
||
|
// However, our behavior matches OpenSSL, so we leak
|
||
|
// only as much as they do.
|
||
|
case nullCipher:
|
||
|
break
|
||
|
default:
|
||
|
panic("unknown cipher type")
|
||
|
}
|
||
|
|
||
|
if hc.version >= VersionTLS13 {
|
||
|
i := len(payload)
|
||
|
for i > 0 && payload[i-1] == 0 {
|
||
|
i--
|
||
|
}
|
||
|
payload = payload[:i]
|
||
|
if len(payload) == 0 {
|
||
|
return false, 0, 0, alertUnexpectedMessage
|
||
|
}
|
||
|
contentType = recordType(payload[len(payload)-1])
|
||
|
payload = payload[:len(payload)-1]
|
||
|
b.resize(recordHeaderLen + len(payload))
|
||
|
}
|
||
|
}
|
||
|
|
||
|
// check, strip mac
|
||
|
if hc.mac != nil {
|
||
|
if len(payload) < macSize {
|
||
|
return false, 0, 0, alertBadRecordMAC
|
||
|
}
|
||
|
|
||
|
// strip mac off payload, b.data
|
||
|
n := len(payload) - macSize
|
||
|
b.data[recordHeaderLen-2] = byte(n >> 8)
|
||
|
b.data[recordHeaderLen-1] = byte(n)
|
||
|
b.resize(recordHeaderLen + explicitIVLen + n)
|
||
|
remoteMAC := payload[n:]
|
||
|
localMAC := hc.mac.MAC(hc.inDigestBuf, seq, b.data[:3], b.data[recordHeaderLen-2:recordHeaderLen], payload[:n])
|
||
|
|
||
|
if subtle.ConstantTimeCompare(localMAC, remoteMAC) != 1 || paddingGood != 255 {
|
||
|
return false, 0, 0, alertBadRecordMAC
|
||
|
}
|
||
|
hc.inDigestBuf = localMAC
|
||
|
}
|
||
|
hc.incSeq(false)
|
||
|
|
||
|
return true, recordHeaderLen + explicitIVLen, contentType, 0
|
||
|
}
|
||
|
|
||
|
// padToBlockSize calculates the needed padding block, if any, for a payload.
|
||
|
// On exit, prefix aliases payload and extends to the end of the last full
|
||
|
// block of payload. finalBlock is a fresh slice which contains the contents of
|
||
|
// any suffix of payload as well as the needed padding to make finalBlock a
|
||
|
// full block.
|
||
|
func padToBlockSize(payload []byte, blockSize int, config *Config) (prefix, finalBlock []byte) {
|
||
|
overrun := len(payload) % blockSize
|
||
|
prefix = payload[:len(payload)-overrun]
|
||
|
|
||
|
paddingLen := blockSize - overrun
|
||
|
finalSize := blockSize
|
||
|
if config.Bugs.MaxPadding {
|
||
|
for paddingLen+blockSize <= 256 {
|
||
|
paddingLen += blockSize
|
||
|
}
|
||
|
finalSize = 256
|
||
|
}
|
||
|
finalBlock = make([]byte, finalSize)
|
||
|
for i := range finalBlock {
|
||
|
finalBlock[i] = byte(paddingLen - 1)
|
||
|
}
|
||
|
if config.Bugs.PaddingFirstByteBad || config.Bugs.PaddingFirstByteBadIf255 && paddingLen == 256 {
|
||
|
finalBlock[overrun] ^= 0xff
|
||
|
}
|
||
|
copy(finalBlock, payload[len(payload)-overrun:])
|
||
|
return
|
||
|
}
|
||
|
|
||
|
// encrypt encrypts and macs the data in b.
|
||
|
func (hc *halfConn) encrypt(b *block, explicitIVLen int, typ recordType) (bool, alert) {
|
||
|
recordHeaderLen := hc.recordHeaderLen()
|
||
|
|
||
|
// mac
|
||
|
if hc.mac != nil {
|
||
|
mac := hc.mac.MAC(hc.outDigestBuf, hc.outSeq[0:], b.data[:3], b.data[recordHeaderLen-2:recordHeaderLen], b.data[recordHeaderLen+explicitIVLen:])
|
||
|
|
||
|
n := len(b.data)
|
||
|
b.resize(n + len(mac))
|
||
|
copy(b.data[n:], mac)
|
||
|
hc.outDigestBuf = mac
|
||
|
}
|
||
|
|
||
|
payload := b.data[recordHeaderLen:]
|
||
|
|
||
|
// encrypt
|
||
|
if hc.cipher != nil {
|
||
|
// Add TLS 1.3 padding.
|
||
|
if hc.version >= VersionTLS13 {
|
||
|
paddingLen := hc.config.Bugs.RecordPadding
|
||
|
if hc.config.Bugs.OmitRecordContents {
|
||
|
b.resize(recordHeaderLen + paddingLen)
|
||
|
} else {
|
||
|
b.resize(len(b.data) + 1 + paddingLen)
|
||
|
b.data[len(b.data)-paddingLen-1] = byte(typ)
|
||
|
}
|
||
|
for i := 0; i < paddingLen; i++ {
|
||
|
b.data[len(b.data)-paddingLen+i] = 0
|
||
|
}
|
||
|
}
|
||
|
|
||
|
switch c := hc.cipher.(type) {
|
||
|
case cipher.Stream:
|
||
|
c.XORKeyStream(payload, payload)
|
||
|
case *tlsAead:
|
||
|
payloadLen := len(b.data) - recordHeaderLen - explicitIVLen
|
||
|
b.resize(len(b.data) + c.Overhead())
|
||
|
nonce := hc.outSeq[:]
|
||
|
if c.explicitNonce {
|
||
|
nonce = b.data[recordHeaderLen : recordHeaderLen+explicitIVLen]
|
||
|
}
|
||
|
payload := b.data[recordHeaderLen+explicitIVLen:]
|
||
|
payload = payload[:payloadLen]
|
||
|
|
||
|
var additionalData []byte
|
||
|
if hc.version < VersionTLS13 {
|
||
|
additionalData = make([]byte, 13)
|
||
|
copy(additionalData, hc.outSeq[:])
|
||
|
copy(additionalData[8:], b.data[:3])
|
||
|
additionalData[11] = byte(payloadLen >> 8)
|
||
|
additionalData[12] = byte(payloadLen)
|
||
|
} else {
|
||
|
additionalData = make([]byte, 5)
|
||
|
copy(additionalData, b.data[:3])
|
||
|
n := len(b.data) - recordHeaderLen
|
||
|
additionalData[3] = byte(n >> 8)
|
||
|
additionalData[4] = byte(n)
|
||
|
}
|
||
|
|
||
|
c.Seal(payload[:0], nonce, payload, additionalData)
|
||
|
case cbcMode:
|
||
|
blockSize := c.BlockSize()
|
||
|
if explicitIVLen > 0 {
|
||
|
c.SetIV(payload[:explicitIVLen])
|
||
|
payload = payload[explicitIVLen:]
|
||
|
}
|
||
|
prefix, finalBlock := padToBlockSize(payload, blockSize, hc.config)
|
||
|
b.resize(recordHeaderLen + explicitIVLen + len(prefix) + len(finalBlock))
|
||
|
c.CryptBlocks(b.data[recordHeaderLen+explicitIVLen:], prefix)
|
||
|
c.CryptBlocks(b.data[recordHeaderLen+explicitIVLen+len(prefix):], finalBlock)
|
||
|
case nullCipher:
|
||
|
break
|
||
|
default:
|
||
|
panic("unknown cipher type")
|
||
|
}
|
||
|
}
|
||
|
|
||
|
// update length to include MAC and any block padding needed.
|
||
|
n := len(b.data) - recordHeaderLen
|
||
|
b.data[recordHeaderLen-2] = byte(n >> 8)
|
||
|
b.data[recordHeaderLen-1] = byte(n)
|
||
|
hc.incSeq(true)
|
||
|
|
||
|
return true, 0
|
||
|
}
|
||
|
|
||
|
// A block is a simple data buffer.
|
||
|
type block struct {
|
||
|
data []byte
|
||
|
off int // index for Read
|
||
|
link *block
|
||
|
}
|
||
|
|
||
|
// resize resizes block to be n bytes, growing if necessary.
|
||
|
func (b *block) resize(n int) {
|
||
|
if n > cap(b.data) {
|
||
|
b.reserve(n)
|
||
|
}
|
||
|
b.data = b.data[0:n]
|
||
|
}
|
||
|
|
||
|
// reserve makes sure that block contains a capacity of at least n bytes.
|
||
|
func (b *block) reserve(n int) {
|
||
|
if cap(b.data) >= n {
|
||
|
return
|
||
|
}
|
||
|
m := cap(b.data)
|
||
|
if m == 0 {
|
||
|
m = 1024
|
||
|
}
|
||
|
for m < n {
|
||
|
m *= 2
|
||
|
}
|
||
|
data := make([]byte, len(b.data), m)
|
||
|
copy(data, b.data)
|
||
|
b.data = data
|
||
|
}
|
||
|
|
||
|
// readFromUntil reads from r into b until b contains at least n bytes
|
||
|
// or else returns an error.
|
||
|
func (b *block) readFromUntil(r io.Reader, n int) error {
|
||
|
// quick case
|
||
|
if len(b.data) >= n {
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
// read until have enough.
|
||
|
b.reserve(n)
|
||
|
for {
|
||
|
m, err := r.Read(b.data[len(b.data):cap(b.data)])
|
||
|
b.data = b.data[0 : len(b.data)+m]
|
||
|
if len(b.data) >= n {
|
||
|
// TODO(bradfitz,agl): slightly suspicious
|
||
|
// that we're throwing away r.Read's err here.
|
||
|
break
|
||
|
}
|
||
|
if err != nil {
|
||
|
return err
|
||
|
}
|
||
|
}
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
func (b *block) Read(p []byte) (n int, err error) {
|
||
|
n = copy(p, b.data[b.off:])
|
||
|
b.off += n
|
||
|
return
|
||
|
}
|
||
|
|
||
|
// newBlock allocates a new block, from hc's free list if possible.
|
||
|
func (hc *halfConn) newBlock() *block {
|
||
|
b := hc.bfree
|
||
|
if b == nil {
|
||
|
return new(block)
|
||
|
}
|
||
|
hc.bfree = b.link
|
||
|
b.link = nil
|
||
|
b.resize(0)
|
||
|
return b
|
||
|
}
|
||
|
|
||
|
// freeBlock returns a block to hc's free list.
|
||
|
// The protocol is such that each side only has a block or two on
|
||
|
// its free list at a time, so there's no need to worry about
|
||
|
// trimming the list, etc.
|
||
|
func (hc *halfConn) freeBlock(b *block) {
|
||
|
b.link = hc.bfree
|
||
|
hc.bfree = b
|
||
|
}
|
||
|
|
||
|
// splitBlock splits a block after the first n bytes,
|
||
|
// returning a block with those n bytes and a
|
||
|
// block with the remainder. the latter may be nil.
|
||
|
func (hc *halfConn) splitBlock(b *block, n int) (*block, *block) {
|
||
|
if len(b.data) <= n {
|
||
|
return b, nil
|
||
|
}
|
||
|
bb := hc.newBlock()
|
||
|
bb.resize(len(b.data) - n)
|
||
|
copy(bb.data, b.data[n:])
|
||
|
b.data = b.data[0:n]
|
||
|
return b, bb
|
||
|
}
|
||
|
|
||
|
func (c *Conn) useInTrafficSecret(version uint16, suite *cipherSuite, secret []byte) error {
|
||
|
if c.hand.Len() != 0 {
|
||
|
return c.in.setErrorLocked(errors.New("tls: buffered handshake messages on cipher change"))
|
||
|
}
|
||
|
side := serverWrite
|
||
|
if !c.isClient {
|
||
|
side = clientWrite
|
||
|
}
|
||
|
c.in.useTrafficSecret(version, suite, secret, side)
|
||
|
c.seenHandshakePackEnd = false
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
func (c *Conn) useOutTrafficSecret(version uint16, suite *cipherSuite, secret []byte) {
|
||
|
side := serverWrite
|
||
|
if c.isClient {
|
||
|
side = clientWrite
|
||
|
}
|
||
|
c.out.useTrafficSecret(version, suite, secret, side)
|
||
|
}
|
||
|
|
||
|
func (c *Conn) doReadRecord(want recordType) (recordType, *block, error) {
|
||
|
RestartReadRecord:
|
||
|
if c.isDTLS {
|
||
|
return c.dtlsDoReadRecord(want)
|
||
|
}
|
||
|
|
||
|
recordHeaderLen := c.in.recordHeaderLen()
|
||
|
|
||
|
if c.rawInput == nil {
|
||
|
c.rawInput = c.in.newBlock()
|
||
|
}
|
||
|
b := c.rawInput
|
||
|
|
||
|
// Read header, payload.
|
||
|
if err := b.readFromUntil(c.conn, recordHeaderLen); err != nil {
|
||
|
// RFC suggests that EOF without an alertCloseNotify is
|
||
|
// an error, but popular web sites seem to do this,
|
||
|
// so we can't make it an error, outside of tests.
|
||
|
if err == io.EOF && c.config.Bugs.ExpectCloseNotify {
|
||
|
err = io.ErrUnexpectedEOF
|
||
|
}
|
||
|
if e, ok := err.(net.Error); !ok || !e.Temporary() {
|
||
|
c.in.setErrorLocked(err)
|
||
|
}
|
||
|
return 0, nil, err
|
||
|
}
|
||
|
|
||
|
typ := recordType(b.data[0])
|
||
|
|
||
|
// No valid TLS record has a type of 0x80, however SSLv2 handshakes
|
||
|
// start with a uint16 length where the MSB is set and the first record
|
||
|
// is always < 256 bytes long. Therefore typ == 0x80 strongly suggests
|
||
|
// an SSLv2 client.
|
||
|
if want == recordTypeHandshake && typ == 0x80 {
|
||
|
c.sendAlert(alertProtocolVersion)
|
||
|
return 0, nil, c.in.setErrorLocked(errors.New("tls: unsupported SSLv2 handshake received"))
|
||
|
}
|
||
|
|
||
|
vers := uint16(b.data[1])<<8 | uint16(b.data[2])
|
||
|
n := int(b.data[3])<<8 | int(b.data[4])
|
||
|
|
||
|
// Alerts sent near version negotiation do not have a well-defined
|
||
|
// record-layer version prior to TLS 1.3. (In TLS 1.3, the record-layer
|
||
|
// version is irrelevant.)
|
||
|
if typ != recordTypeAlert {
|
||
|
var expect uint16
|
||
|
if c.haveVers {
|
||
|
expect = c.vers
|
||
|
if c.vers >= VersionTLS13 {
|
||
|
expect = VersionTLS12
|
||
|
}
|
||
|
} else {
|
||
|
expect = c.config.Bugs.ExpectInitialRecordVersion
|
||
|
}
|
||
|
if expect != 0 && vers != expect {
|
||
|
c.sendAlert(alertProtocolVersion)
|
||
|
return 0, nil, c.in.setErrorLocked(fmt.Errorf("tls: received record with version %x when expecting version %x", vers, expect))
|
||
|
}
|
||
|
}
|
||
|
if n > maxCiphertext {
|
||
|
c.sendAlert(alertRecordOverflow)
|
||
|
return 0, nil, c.in.setErrorLocked(fmt.Errorf("tls: oversized record received with length %d", n))
|
||
|
}
|
||
|
if !c.haveVers {
|
||
|
// First message, be extra suspicious:
|
||
|
// this might not be a TLS client.
|
||
|
// Bail out before reading a full 'body', if possible.
|
||
|
// The current max version is 3.1.
|
||
|
// If the version is >= 16.0, it's probably not real.
|
||
|
// Similarly, a clientHello message encodes in
|
||
|
// well under a kilobyte. If the length is >= 12 kB,
|
||
|
// it's probably not real.
|
||
|
if (typ != recordTypeAlert && typ != want) || vers >= 0x1000 || n >= 0x3000 {
|
||
|
c.sendAlert(alertUnexpectedMessage)
|
||
|
return 0, nil, c.in.setErrorLocked(fmt.Errorf("tls: first record does not look like a TLS handshake"))
|
||
|
}
|
||
|
}
|
||
|
if err := b.readFromUntil(c.conn, recordHeaderLen+n); err != nil {
|
||
|
if err == io.EOF {
|
||
|
err = io.ErrUnexpectedEOF
|
||
|
}
|
||
|
if e, ok := err.(net.Error); !ok || !e.Temporary() {
|
||
|
c.in.setErrorLocked(err)
|
||
|
}
|
||
|
return 0, nil, err
|
||
|
}
|
||
|
|
||
|
// Process message.
|
||
|
b, c.rawInput = c.in.splitBlock(b, recordHeaderLen+n)
|
||
|
ok, off, encTyp, alertValue := c.in.decrypt(b)
|
||
|
|
||
|
// Handle skipping over early data.
|
||
|
if !ok && c.skipEarlyData {
|
||
|
goto RestartReadRecord
|
||
|
}
|
||
|
|
||
|
// If the server is expecting a second ClientHello (in response to
|
||
|
// a HelloRetryRequest) and the client sends early data, there
|
||
|
// won't be a decryption failure but it still needs to be skipped.
|
||
|
if c.in.cipher == nil && typ == recordTypeApplicationData && c.skipEarlyData {
|
||
|
goto RestartReadRecord
|
||
|
}
|
||
|
|
||
|
if !ok {
|
||
|
return 0, nil, c.in.setErrorLocked(c.sendAlert(alertValue))
|
||
|
}
|
||
|
b.off = off
|
||
|
c.skipEarlyData = false
|
||
|
|
||
|
if c.vers >= VersionTLS13 && c.in.cipher != nil {
|
||
|
if typ != recordTypeApplicationData {
|
||
|
return 0, nil, c.in.setErrorLocked(fmt.Errorf("tls: outer record type is not application data"))
|
||
|
}
|
||
|
typ = encTyp
|
||
|
}
|
||
|
|
||
|
length := len(b.data[b.off:])
|
||
|
if c.config.Bugs.ExpectRecordSplitting && typ == recordTypeApplicationData && length != 1 && !c.seenOneByteRecord {
|
||
|
return 0, nil, c.in.setErrorLocked(fmt.Errorf("tls: application data records were not split"))
|
||
|
}
|
||
|
|
||
|
c.seenOneByteRecord = typ == recordTypeApplicationData && length == 1
|
||
|
return typ, b, nil
|
||
|
}
|
||
|
|
||
|
func (c *Conn) readTLS13ChangeCipherSpec() error {
|
||
|
if !c.expectTLS13ChangeCipherSpec {
|
||
|
panic("c.expectTLS13ChangeCipherSpec not set")
|
||
|
}
|
||
|
|
||
|
// Read the ChangeCipherSpec.
|
||
|
if c.rawInput == nil {
|
||
|
c.rawInput = c.in.newBlock()
|
||
|
}
|
||
|
b := c.rawInput
|
||
|
if err := b.readFromUntil(c.conn, 1); err != nil {
|
||
|
return c.in.setErrorLocked(fmt.Errorf("tls: error reading TLS 1.3 ChangeCipherSpec: %s", err))
|
||
|
}
|
||
|
if recordType(b.data[0]) == recordTypeAlert {
|
||
|
// If the client is sending an alert, allow the ChangeCipherSpec
|
||
|
// to be skipped. It may be rejecting a sufficiently malformed
|
||
|
// ServerHello that it can't parse out the version.
|
||
|
c.expectTLS13ChangeCipherSpec = false
|
||
|
return nil
|
||
|
}
|
||
|
if err := b.readFromUntil(c.conn, 6); err != nil {
|
||
|
return c.in.setErrorLocked(fmt.Errorf("tls: error reading TLS 1.3 ChangeCipherSpec: %s", err))
|
||
|
}
|
||
|
|
||
|
// Check they match that we expect.
|
||
|
expected := [6]byte{byte(recordTypeChangeCipherSpec), 3, 1, 0, 1, 1}
|
||
|
if c.vers >= VersionTLS13 {
|
||
|
expected[2] = 3
|
||
|
}
|
||
|
if !bytes.Equal(b.data[:6], expected[:]) {
|
||
|
return c.in.setErrorLocked(fmt.Errorf("tls: error invalid TLS 1.3 ChangeCipherSpec: %x", b.data[:6]))
|
||
|
}
|
||
|
|
||
|
// Discard the data.
|
||
|
b, c.rawInput = c.in.splitBlock(b, 6)
|
||
|
c.in.freeBlock(b)
|
||
|
|
||
|
c.expectTLS13ChangeCipherSpec = false
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
// readRecord reads the next TLS record from the connection
|
||
|
// and updates the record layer state.
|
||
|
// c.in.Mutex <= L; c.input == nil.
|
||
|
func (c *Conn) readRecord(want recordType) error {
|
||
|
// Caller must be in sync with connection:
|
||
|
// handshake data if handshake not yet completed,
|
||
|
// else application data.
|
||
|
switch want {
|
||
|
default:
|
||
|
c.sendAlert(alertInternalError)
|
||
|
return c.in.setErrorLocked(errors.New("tls: unknown record type requested"))
|
||
|
case recordTypeChangeCipherSpec:
|
||
|
if c.handshakeComplete {
|
||
|
c.sendAlert(alertInternalError)
|
||
|
return c.in.setErrorLocked(errors.New("tls: ChangeCipherSpec requested after handshake complete"))
|
||
|
}
|
||
|
case recordTypeApplicationData, recordTypeAlert, recordTypeHandshake:
|
||
|
break
|
||
|
}
|
||
|
|
||
|
if c.expectTLS13ChangeCipherSpec {
|
||
|
if err := c.readTLS13ChangeCipherSpec(); err != nil {
|
||
|
return err
|
||
|
}
|
||
|
}
|
||
|
|
||
|
Again:
|
||
|
typ, b, err := c.doReadRecord(want)
|
||
|
if err != nil {
|
||
|
return err
|
||
|
}
|
||
|
data := b.data[b.off:]
|
||
|
max := maxPlaintext
|
||
|
if c.config.Bugs.MaxReceivePlaintext != 0 {
|
||
|
max = c.config.Bugs.MaxReceivePlaintext
|
||
|
}
|
||
|
if len(data) > max {
|
||
|
err := c.sendAlert(alertRecordOverflow)
|
||
|
c.in.freeBlock(b)
|
||
|
return c.in.setErrorLocked(err)
|
||
|
}
|
||
|
|
||
|
if typ != recordTypeHandshake {
|
||
|
c.seenHandshakePackEnd = false
|
||
|
} else if c.seenHandshakePackEnd {
|
||
|
c.in.freeBlock(b)
|
||
|
return c.in.setErrorLocked(errors.New("tls: peer violated ExpectPackedEncryptedHandshake"))
|
||
|
}
|
||
|
|
||
|
switch typ {
|
||
|
default:
|
||
|
c.in.setErrorLocked(c.sendAlert(alertUnexpectedMessage))
|
||
|
|
||
|
case recordTypeAlert:
|
||
|
if len(data) != 2 {
|
||
|
c.in.setErrorLocked(c.sendAlert(alertUnexpectedMessage))
|
||
|
break
|
||
|
}
|
||
|
if alert(data[1]) == alertCloseNotify {
|
||
|
c.in.setErrorLocked(io.EOF)
|
||
|
break
|
||
|
}
|
||
|
switch data[0] {
|
||
|
case alertLevelWarning:
|
||
|
if alert(data[1]) == alertNoCertificate {
|
||
|
c.in.freeBlock(b)
|
||
|
return errNoCertificateAlert
|
||
|
}
|
||
|
if alert(data[1]) == alertEndOfEarlyData {
|
||
|
c.in.freeBlock(b)
|
||
|
return errEndOfEarlyDataAlert
|
||
|
}
|
||
|
|
||
|
// drop on the floor
|
||
|
c.in.freeBlock(b)
|
||
|
goto Again
|
||
|
case alertLevelError:
|
||
|
c.in.setErrorLocked(&net.OpError{Op: "remote error", Err: alert(data[1])})
|
||
|
default:
|
||
|
c.in.setErrorLocked(c.sendAlert(alertUnexpectedMessage))
|
||
|
}
|
||
|
|
||
|
case recordTypeChangeCipherSpec:
|
||
|
if typ != want || len(data) != 1 || data[0] != 1 {
|
||
|
c.in.setErrorLocked(c.sendAlert(alertUnexpectedMessage))
|
||
|
break
|
||
|
}
|
||
|
if c.hand.Len() != 0 {
|
||
|
c.in.setErrorLocked(errors.New("tls: buffered handshake messages on cipher change"))
|
||
|
break
|
||
|
}
|
||
|
if err := c.in.changeCipherSpec(c.config); err != nil {
|
||
|
c.in.setErrorLocked(c.sendAlert(err.(alert)))
|
||
|
}
|
||
|
|
||
|
case recordTypeApplicationData:
|
||
|
if typ != want {
|
||
|
c.in.setErrorLocked(c.sendAlert(alertUnexpectedMessage))
|
||
|
break
|
||
|
}
|
||
|
c.input = b
|
||
|
b = nil
|
||
|
|
||
|
case recordTypeHandshake:
|
||
|
// Allow handshake data while reading application data to
|
||
|
// trigger post-handshake messages.
|
||
|
// TODO(rsc): Should at least pick off connection close.
|
||
|
if typ != want && want != recordTypeApplicationData {
|
||
|
return c.in.setErrorLocked(c.sendAlert(alertNoRenegotiation))
|
||
|
}
|
||
|
c.hand.Write(data)
|
||
|
if pack := c.config.Bugs.ExpectPackedEncryptedHandshake; pack > 0 && len(data) < pack && c.out.cipher != nil {
|
||
|
c.seenHandshakePackEnd = true
|
||
|
}
|
||
|
}
|
||
|
|
||
|
if b != nil {
|
||
|
c.in.freeBlock(b)
|
||
|
}
|
||
|
return c.in.err
|
||
|
}
|
||
|
|
||
|
// sendAlert sends a TLS alert message.
|
||
|
// c.out.Mutex <= L.
|
||
|
func (c *Conn) sendAlertLocked(level byte, err alert) error {
|
||
|
c.tmp[0] = level
|
||
|
c.tmp[1] = byte(err)
|
||
|
if c.config.Bugs.FragmentAlert {
|
||
|
c.writeRecord(recordTypeAlert, c.tmp[0:1])
|
||
|
c.writeRecord(recordTypeAlert, c.tmp[1:2])
|
||
|
} else if c.config.Bugs.DoubleAlert {
|
||
|
copy(c.tmp[2:4], c.tmp[0:2])
|
||
|
c.writeRecord(recordTypeAlert, c.tmp[0:4])
|
||
|
} else {
|
||
|
c.writeRecord(recordTypeAlert, c.tmp[0:2])
|
||
|
}
|
||
|
// Error alerts are fatal to the connection.
|
||
|
if level == alertLevelError {
|
||
|
return c.out.setErrorLocked(&net.OpError{Op: "local error", Err: err})
|
||
|
}
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
// sendAlert sends a TLS alert message.
|
||
|
// L < c.out.Mutex.
|
||
|
func (c *Conn) sendAlert(err alert) error {
|
||
|
level := byte(alertLevelError)
|
||
|
if err == alertNoRenegotiation || err == alertCloseNotify || err == alertNoCertificate || err == alertEndOfEarlyData {
|
||
|
level = alertLevelWarning
|
||
|
}
|
||
|
return c.SendAlert(level, err)
|
||
|
}
|
||
|
|
||
|
func (c *Conn) SendAlert(level byte, err alert) error {
|
||
|
c.out.Lock()
|
||
|
defer c.out.Unlock()
|
||
|
return c.sendAlertLocked(level, err)
|
||
|
}
|
||
|
|
||
|
// writeV2Record writes a record for a V2ClientHello.
|
||
|
func (c *Conn) writeV2Record(data []byte) (n int, err error) {
|
||
|
record := make([]byte, 2+len(data))
|
||
|
record[0] = uint8(len(data)>>8) | 0x80
|
||
|
record[1] = uint8(len(data))
|
||
|
copy(record[2:], data)
|
||
|
return c.conn.Write(record)
|
||
|
}
|
||
|
|
||
|
// writeRecord writes a TLS record with the given type and payload
|
||
|
// to the connection and updates the record layer state.
|
||
|
// c.out.Mutex <= L.
|
||
|
func (c *Conn) writeRecord(typ recordType, data []byte) (n int, err error) {
|
||
|
c.seenHandshakePackEnd = false
|
||
|
if typ == recordTypeHandshake {
|
||
|
msgType := data[0]
|
||
|
if c.config.Bugs.SendWrongMessageType != 0 && msgType == c.config.Bugs.SendWrongMessageType {
|
||
|
msgType += 42
|
||
|
} else if msgType == typeServerHello && c.config.Bugs.SendServerHelloAsHelloRetryRequest {
|
||
|
msgType = typeHelloRetryRequest
|
||
|
}
|
||
|
if msgType != data[0] {
|
||
|
newData := make([]byte, len(data))
|
||
|
copy(newData, data)
|
||
|
newData[0] = msgType
|
||
|
data = newData
|
||
|
}
|
||
|
|
||
|
if c.config.Bugs.SendTrailingMessageData != 0 && msgType == c.config.Bugs.SendTrailingMessageData {
|
||
|
newData := make([]byte, len(data))
|
||
|
copy(newData, data)
|
||
|
|
||
|
// Add a 0 to the body.
|
||
|
newData = append(newData, 0)
|
||
|
// Fix the header.
|
||
|
newLen := len(newData) - 4
|
||
|
newData[1] = byte(newLen >> 16)
|
||
|
newData[2] = byte(newLen >> 8)
|
||
|
newData[3] = byte(newLen)
|
||
|
|
||
|
data = newData
|
||
|
}
|
||
|
}
|
||
|
|
||
|
if c.isDTLS {
|
||
|
return c.dtlsWriteRecord(typ, data)
|
||
|
}
|
||
|
|
||
|
if typ == recordTypeHandshake {
|
||
|
if c.config.Bugs.SendHelloRequestBeforeEveryHandshakeMessage {
|
||
|
newData := make([]byte, 0, 4+len(data))
|
||
|
newData = append(newData, typeHelloRequest, 0, 0, 0)
|
||
|
newData = append(newData, data...)
|
||
|
data = newData
|
||
|
}
|
||
|
|
||
|
if c.config.Bugs.PackHandshakeFlight {
|
||
|
c.pendingFlight.Write(data)
|
||
|
return len(data), nil
|
||
|
}
|
||
|
}
|
||
|
|
||
|
// Flush buffered data before writing anything.
|
||
|
if err := c.flushHandshake(); err != nil {
|
||
|
return 0, err
|
||
|
}
|
||
|
|
||
|
if typ == recordTypeApplicationData && c.config.Bugs.SendPostHandshakeChangeCipherSpec {
|
||
|
if _, err := c.doWriteRecord(recordTypeChangeCipherSpec, []byte{1}); err != nil {
|
||
|
return 0, err
|
||
|
}
|
||
|
}
|
||
|
|
||
|
return c.doWriteRecord(typ, data)
|
||
|
}
|
||
|
|
||
|
func (c *Conn) doWriteRecord(typ recordType, data []byte) (n int, err error) {
|
||
|
recordHeaderLen := c.out.recordHeaderLen()
|
||
|
b := c.out.newBlock()
|
||
|
first := true
|
||
|
isClientHello := typ == recordTypeHandshake && len(data) > 0 && data[0] == typeClientHello
|
||
|
for len(data) > 0 || first {
|
||
|
m := len(data)
|
||
|
if m > maxPlaintext && !c.config.Bugs.SendLargeRecords {
|
||
|
m = maxPlaintext
|
||
|
}
|
||
|
if typ == recordTypeHandshake && c.config.Bugs.MaxHandshakeRecordLength > 0 && m > c.config.Bugs.MaxHandshakeRecordLength {
|
||
|
m = c.config.Bugs.MaxHandshakeRecordLength
|
||
|
// By default, do not fragment the client_version or
|
||
|
// server_version, which are located in the first 6
|
||
|
// bytes.
|
||
|
if first && isClientHello && !c.config.Bugs.FragmentClientVersion && m < 6 {
|
||
|
m = 6
|
||
|
}
|
||
|
}
|
||
|
explicitIVLen := 0
|
||
|
explicitIVIsSeq := false
|
||
|
first = false
|
||
|
|
||
|
var cbc cbcMode
|
||
|
if c.out.version >= VersionTLS11 {
|
||
|
var ok bool
|
||
|
if cbc, ok = c.out.cipher.(cbcMode); ok {
|
||
|
explicitIVLen = cbc.BlockSize()
|
||
|
}
|
||
|
}
|
||
|
if explicitIVLen == 0 {
|
||
|
if aead, ok := c.out.cipher.(*tlsAead); ok && aead.explicitNonce {
|
||
|
explicitIVLen = 8
|
||
|
// The AES-GCM construction in TLS has an
|
||
|
// explicit nonce so that the nonce can be
|
||
|
// random. However, the nonce is only 8 bytes
|
||
|
// which is too small for a secure, random
|
||
|
// nonce. Therefore we use the sequence number
|
||
|
// as the nonce.
|
||
|
explicitIVIsSeq = true
|
||
|
}
|
||
|
}
|
||
|
b.resize(recordHeaderLen + explicitIVLen + m)
|
||
|
b.data[0] = byte(typ)
|
||
|
if c.vers >= VersionTLS13 && c.out.cipher != nil {
|
||
|
b.data[0] = byte(recordTypeApplicationData)
|
||
|
if outerType := c.config.Bugs.OuterRecordType; outerType != 0 {
|
||
|
b.data[0] = byte(outerType)
|
||
|
}
|
||
|
}
|
||
|
vers := c.vers
|
||
|
if vers == 0 {
|
||
|
// Some TLS servers fail if the record version is
|
||
|
// greater than TLS 1.0 for the initial ClientHello.
|
||
|
//
|
||
|
// TLS 1.3 fixes the version number in the record
|
||
|
// layer to {3, 1}.
|
||
|
vers = VersionTLS10
|
||
|
}
|
||
|
if c.vers >= VersionTLS13 || c.out.version >= VersionTLS13 {
|
||
|
vers = VersionTLS12
|
||
|
}
|
||
|
|
||
|
if c.config.Bugs.SendRecordVersion != 0 {
|
||
|
vers = c.config.Bugs.SendRecordVersion
|
||
|
}
|
||
|
if c.vers == 0 && c.config.Bugs.SendInitialRecordVersion != 0 {
|
||
|
vers = c.config.Bugs.SendInitialRecordVersion
|
||
|
}
|
||
|
b.data[1] = byte(vers >> 8)
|
||
|
b.data[2] = byte(vers)
|
||
|
b.data[3] = byte(m >> 8)
|
||
|
b.data[4] = byte(m)
|
||
|
if explicitIVLen > 0 {
|
||
|
explicitIV := b.data[recordHeaderLen : recordHeaderLen+explicitIVLen]
|
||
|
if explicitIVIsSeq {
|
||
|
copy(explicitIV, c.out.seq[:])
|
||
|
} else {
|
||
|
if _, err = io.ReadFull(c.config.rand(), explicitIV); err != nil {
|
||
|
break
|
||
|
}
|
||
|
}
|
||
|
}
|
||
|
copy(b.data[recordHeaderLen+explicitIVLen:], data)
|
||
|
c.out.encrypt(b, explicitIVLen, typ)
|
||
|
_, err = c.conn.Write(b.data)
|
||
|
if err != nil {
|
||
|
break
|
||
|
}
|
||
|
n += m
|
||
|
data = data[m:]
|
||
|
}
|
||
|
c.out.freeBlock(b)
|
||
|
|
||
|
if typ == recordTypeChangeCipherSpec && c.vers < VersionTLS13 {
|
||
|
err = c.out.changeCipherSpec(c.config)
|
||
|
if err != nil {
|
||
|
return n, c.sendAlertLocked(alertLevelError, err.(alert))
|
||
|
}
|
||
|
}
|
||
|
return
|
||
|
}
|
||
|
|
||
|
func (c *Conn) flushHandshake() error {
|
||
|
if c.isDTLS {
|
||
|
return c.dtlsFlushHandshake()
|
||
|
}
|
||
|
|
||
|
for c.pendingFlight.Len() > 0 {
|
||
|
var buf [maxPlaintext]byte
|
||
|
n, _ := c.pendingFlight.Read(buf[:])
|
||
|
if _, err := c.doWriteRecord(recordTypeHandshake, buf[:n]); err != nil {
|
||
|
return err
|
||
|
}
|
||
|
}
|
||
|
|
||
|
c.pendingFlight.Reset()
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
func (c *Conn) doReadHandshake() ([]byte, error) {
|
||
|
if c.isDTLS {
|
||
|
return c.dtlsDoReadHandshake()
|
||
|
}
|
||
|
|
||
|
for c.hand.Len() < 4 {
|
||
|
if err := c.in.err; err != nil {
|
||
|
return nil, err
|
||
|
}
|
||
|
if err := c.readRecord(recordTypeHandshake); err != nil {
|
||
|
return nil, err
|
||
|
}
|
||
|
}
|
||
|
|
||
|
data := c.hand.Bytes()
|
||
|
n := int(data[1])<<16 | int(data[2])<<8 | int(data[3])
|
||
|
if n > maxHandshake {
|
||
|
return nil, c.in.setErrorLocked(c.sendAlert(alertInternalError))
|
||
|
}
|
||
|
for c.hand.Len() < 4+n {
|
||
|
if err := c.in.err; err != nil {
|
||
|
return nil, err
|
||
|
}
|
||
|
if err := c.readRecord(recordTypeHandshake); err != nil {
|
||
|
return nil, err
|
||
|
}
|
||
|
}
|
||
|
return c.hand.Next(4 + n), nil
|
||
|
}
|
||
|
|
||
|
// readHandshake reads the next handshake message from
|
||
|
// the record layer.
|
||
|
// c.in.Mutex < L; c.out.Mutex < L.
|
||
|
func (c *Conn) readHandshake() (interface{}, error) {
|
||
|
data, err := c.doReadHandshake()
|
||
|
if err == errNoCertificateAlert {
|
||
|
if c.hand.Len() != 0 {
|
||
|
// The warning alert may not interleave with a handshake message.
|
||
|
return nil, c.in.setErrorLocked(c.sendAlert(alertUnexpectedMessage))
|
||
|
}
|
||
|
return new(ssl3NoCertificateMsg), nil
|
||
|
}
|
||
|
if err != nil {
|
||
|
return nil, err
|
||
|
}
|
||
|
|
||
|
var m handshakeMessage
|
||
|
switch data[0] {
|
||
|
case typeHelloRequest:
|
||
|
m = new(helloRequestMsg)
|
||
|
case typeClientHello:
|
||
|
m = &clientHelloMsg{
|
||
|
isDTLS: c.isDTLS,
|
||
|
}
|
||
|
case typeServerHello:
|
||
|
m = &serverHelloMsg{
|
||
|
isDTLS: c.isDTLS,
|
||
|
}
|
||
|
case typeHelloRetryRequest:
|
||
|
m = new(helloRetryRequestMsg)
|
||
|
case typeNewSessionTicket:
|
||
|
m = &newSessionTicketMsg{
|
||
|
vers: c.wireVersion,
|
||
|
isDTLS: c.isDTLS,
|
||
|
}
|
||
|
case typeEncryptedExtensions:
|
||
|
m = new(encryptedExtensionsMsg)
|
||
|
case typeCertificate:
|
||
|
m = &certificateMsg{
|
||
|
hasRequestContext: c.vers >= VersionTLS13,
|
||
|
}
|
||
|
case typeCompressedCertificate:
|
||
|
m = new(compressedCertificateMsg)
|
||
|
case typeCertificateRequest:
|
||
|
m = &certificateRequestMsg{
|
||
|
vers: c.wireVersion,
|
||
|
hasSignatureAlgorithm: c.vers >= VersionTLS12,
|
||
|
hasRequestContext: c.vers >= VersionTLS13,
|
||
|
}
|
||
|
case typeCertificateStatus:
|
||
|
m = new(certificateStatusMsg)
|
||
|
case typeServerKeyExchange:
|
||
|
m = new(serverKeyExchangeMsg)
|
||
|
case typeServerHelloDone:
|
||
|
m = new(serverHelloDoneMsg)
|
||
|
case typeClientKeyExchange:
|
||
|
m = new(clientKeyExchangeMsg)
|
||
|
case typeCertificateVerify:
|
||
|
m = &certificateVerifyMsg{
|
||
|
hasSignatureAlgorithm: c.vers >= VersionTLS12,
|
||
|
}
|
||
|
case typeNextProtocol:
|
||
|
m = new(nextProtoMsg)
|
||
|
case typeFinished:
|
||
|
m = new(finishedMsg)
|
||
|
case typeHelloVerifyRequest:
|
||
|
m = new(helloVerifyRequestMsg)
|
||
|
case typeChannelID:
|
||
|
m = new(channelIDMsg)
|
||
|
case typeKeyUpdate:
|
||
|
m = new(keyUpdateMsg)
|
||
|
case typeEndOfEarlyData:
|
||
|
m = new(endOfEarlyDataMsg)
|
||
|
default:
|
||
|
return nil, c.in.setErrorLocked(c.sendAlert(alertUnexpectedMessage))
|
||
|
}
|
||
|
|
||
|
// The handshake message unmarshallers
|
||
|
// expect to be able to keep references to data,
|
||
|
// so pass in a fresh copy that won't be overwritten.
|
||
|
data = append([]byte(nil), data...)
|
||
|
|
||
|
if data[0] == typeServerHello && len(data) >= 38 {
|
||
|
vers := uint16(data[4])<<8 | uint16(data[5])
|
||
|
if vers == VersionTLS12 && bytes.Equal(data[6:38], tls13HelloRetryRequest) {
|
||
|
m = new(helloRetryRequestMsg)
|
||
|
m.(*helloRetryRequestMsg).isServerHello = true
|
||
|
}
|
||
|
}
|
||
|
|
||
|
if !m.unmarshal(data) {
|
||
|
return nil, c.in.setErrorLocked(c.sendAlert(alertDecodeError))
|
||
|
}
|
||
|
return m, nil
|
||
|
}
|
||
|
|
||
|
// skipPacket processes all the DTLS records in packet. It updates
|
||
|
// sequence number expectations but otherwise ignores them.
|
||
|
func (c *Conn) skipPacket(packet []byte) error {
|
||
|
for len(packet) > 0 {
|
||
|
if len(packet) < 13 {
|
||
|
return errors.New("tls: bad packet")
|
||
|
}
|
||
|
// Dropped packets are completely ignored save to update
|
||
|
// expected sequence numbers for this and the next epoch. (We
|
||
|
// don't assert on the contents of the packets both for
|
||
|
// simplicity and because a previous test with one shorter
|
||
|
// timeout schedule would have done so.)
|
||
|
epoch := packet[3:5]
|
||
|
seq := packet[5:11]
|
||
|
length := uint16(packet[11])<<8 | uint16(packet[12])
|
||
|
if bytes.Equal(c.in.seq[:2], epoch) {
|
||
|
if bytes.Compare(seq, c.in.seq[2:]) < 0 {
|
||
|
return errors.New("tls: sequence mismatch")
|
||
|
}
|
||
|
copy(c.in.seq[2:], seq)
|
||
|
c.in.incSeq(false)
|
||
|
} else {
|
||
|
if bytes.Compare(seq, c.in.nextSeq[:]) < 0 {
|
||
|
return errors.New("tls: sequence mismatch")
|
||
|
}
|
||
|
copy(c.in.nextSeq[:], seq)
|
||
|
c.in.incNextSeq()
|
||
|
}
|
||
|
if len(packet) < 13+int(length) {
|
||
|
return errors.New("tls: bad packet")
|
||
|
}
|
||
|
packet = packet[13+length:]
|
||
|
}
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
// simulatePacketLoss simulates the loss of a handshake leg from the
|
||
|
// peer based on the schedule in c.config.Bugs. If resendFunc is
|
||
|
// non-nil, it is called after each simulated timeout to retransmit
|
||
|
// handshake messages from the local end. This is used in cases where
|
||
|
// the peer retransmits on a stale Finished rather than a timeout.
|
||
|
func (c *Conn) simulatePacketLoss(resendFunc func()) error {
|
||
|
if len(c.config.Bugs.TimeoutSchedule) == 0 {
|
||
|
return nil
|
||
|
}
|
||
|
if !c.isDTLS {
|
||
|
return errors.New("tls: TimeoutSchedule may only be set in DTLS")
|
||
|
}
|
||
|
if c.config.Bugs.PacketAdaptor == nil {
|
||
|
return errors.New("tls: TimeoutSchedule set without PacketAdapter")
|
||
|
}
|
||
|
for _, timeout := range c.config.Bugs.TimeoutSchedule {
|
||
|
// Simulate a timeout.
|
||
|
packets, err := c.config.Bugs.PacketAdaptor.SendReadTimeout(timeout)
|
||
|
if err != nil {
|
||
|
return err
|
||
|
}
|
||
|
for _, packet := range packets {
|
||
|
if err := c.skipPacket(packet); err != nil {
|
||
|
return err
|
||
|
}
|
||
|
}
|
||
|
if resendFunc != nil {
|
||
|
resendFunc()
|
||
|
}
|
||
|
}
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
func (c *Conn) SendHalfHelloRequest() error {
|
||
|
if err := c.Handshake(); err != nil {
|
||
|
return err
|
||
|
}
|
||
|
|
||
|
c.out.Lock()
|
||
|
defer c.out.Unlock()
|
||
|
|
||
|
if _, err := c.writeRecord(recordTypeHandshake, []byte{typeHelloRequest, 0}); err != nil {
|
||
|
return err
|
||
|
}
|
||
|
return c.flushHandshake()
|
||
|
}
|
||
|
|
||
|
// Write writes data to the connection.
|
||
|
func (c *Conn) Write(b []byte) (int, error) {
|
||
|
if err := c.Handshake(); err != nil {
|
||
|
return 0, err
|
||
|
}
|
||
|
|
||
|
c.out.Lock()
|
||
|
defer c.out.Unlock()
|
||
|
|
||
|
if err := c.out.err; err != nil {
|
||
|
return 0, err
|
||
|
}
|
||
|
|
||
|
if !c.handshakeComplete {
|
||
|
return 0, alertInternalError
|
||
|
}
|
||
|
|
||
|
if c.keyUpdateRequested {
|
||
|
if err := c.sendKeyUpdateLocked(keyUpdateNotRequested); err != nil {
|
||
|
return 0, err
|
||
|
}
|
||
|
c.keyUpdateRequested = false
|
||
|
}
|
||
|
|
||
|
if c.config.Bugs.SendSpuriousAlert != 0 {
|
||
|
c.sendAlertLocked(alertLevelError, c.config.Bugs.SendSpuriousAlert)
|
||
|
}
|
||
|
|
||
|
if c.config.Bugs.SendHelloRequestBeforeEveryAppDataRecord {
|
||
|
c.writeRecord(recordTypeHandshake, []byte{typeHelloRequest, 0, 0, 0})
|
||
|
c.flushHandshake()
|
||
|
}
|
||
|
|
||
|
// SSL 3.0 and TLS 1.0 are susceptible to a chosen-plaintext
|
||
|
// attack when using block mode ciphers due to predictable IVs.
|
||
|
// This can be prevented by splitting each Application Data
|
||
|
// record into two records, effectively randomizing the IV.
|
||
|
//
|
||
|
// http://www.openssl.org/~bodo/tls-cbc.txt
|
||
|
// https://bugzilla.mozilla.org/show_bug.cgi?id=665814
|
||
|
// http://www.imperialviolet.org/2012/01/15/beastfollowup.html
|
||
|
|
||
|
var m int
|
||
|
if len(b) > 1 && c.vers <= VersionTLS10 && !c.isDTLS {
|
||
|
if _, ok := c.out.cipher.(cipher.BlockMode); ok {
|
||
|
n, err := c.writeRecord(recordTypeApplicationData, b[:1])
|
||
|
if err != nil {
|
||
|
return n, c.out.setErrorLocked(err)
|
||
|
}
|
||
|
m, b = 1, b[1:]
|
||
|
}
|
||
|
}
|
||
|
|
||
|
n, err := c.writeRecord(recordTypeApplicationData, b)
|
||
|
return n + m, c.out.setErrorLocked(err)
|
||
|
}
|
||
|
|
||
|
func (c *Conn) processTLS13NewSessionTicket(newSessionTicket *newSessionTicketMsg, cipherSuite *cipherSuite) error {
|
||
|
if c.config.Bugs.ExpectGREASE && !newSessionTicket.hasGREASEExtension {
|
||
|
return errors.New("tls: no GREASE ticket extension found")
|
||
|
}
|
||
|
|
||
|
if c.config.Bugs.ExpectTicketEarlyData && newSessionTicket.maxEarlyDataSize == 0 {
|
||
|
return errors.New("tls: no early_data ticket extension found")
|
||
|
}
|
||
|
|
||
|
if c.config.Bugs.ExpectNoNewSessionTicket {
|
||
|
return errors.New("tls: received unexpected NewSessionTicket")
|
||
|
}
|
||
|
|
||
|
if c.config.ClientSessionCache == nil || newSessionTicket.ticketLifetime == 0 {
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
session := &ClientSessionState{
|
||
|
sessionTicket: newSessionTicket.ticket,
|
||
|
vers: c.vers,
|
||
|
wireVersion: c.wireVersion,
|
||
|
cipherSuite: cipherSuite.id,
|
||
|
masterSecret: c.resumptionSecret,
|
||
|
serverCertificates: c.peerCertificates,
|
||
|
sctList: c.sctList,
|
||
|
ocspResponse: c.ocspResponse,
|
||
|
ticketCreationTime: c.config.time(),
|
||
|
ticketExpiration: c.config.time().Add(time.Duration(newSessionTicket.ticketLifetime) * time.Second),
|
||
|
ticketAgeAdd: newSessionTicket.ticketAgeAdd,
|
||
|
maxEarlyDataSize: newSessionTicket.maxEarlyDataSize,
|
||
|
earlyALPN: c.clientProtocol,
|
||
|
}
|
||
|
|
||
|
session.masterSecret = deriveSessionPSK(cipherSuite, c.wireVersion, c.resumptionSecret, newSessionTicket.ticketNonce)
|
||
|
|
||
|
cacheKey := clientSessionCacheKey(c.conn.RemoteAddr(), c.config)
|
||
|
_, ok := c.config.ClientSessionCache.Get(cacheKey)
|
||
|
if !ok || !c.config.Bugs.UseFirstSessionTicket {
|
||
|
c.config.ClientSessionCache.Put(cacheKey, session)
|
||
|
}
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
func (c *Conn) handlePostHandshakeMessage() error {
|
||
|
msg, err := c.readHandshake()
|
||
|
if err != nil {
|
||
|
return err
|
||
|
}
|
||
|
|
||
|
if c.vers < VersionTLS13 {
|
||
|
if !c.isClient {
|
||
|
c.sendAlert(alertUnexpectedMessage)
|
||
|
return errors.New("tls: unexpected post-handshake message")
|
||
|
}
|
||
|
|
||
|
_, ok := msg.(*helloRequestMsg)
|
||
|
if !ok {
|
||
|
c.sendAlert(alertUnexpectedMessage)
|
||
|
return alertUnexpectedMessage
|
||
|
}
|
||
|
|
||
|
c.handshakeComplete = false
|
||
|
return c.Handshake()
|
||
|
}
|
||
|
|
||
|
if c.isClient {
|
||
|
if newSessionTicket, ok := msg.(*newSessionTicketMsg); ok {
|
||
|
return c.processTLS13NewSessionTicket(newSessionTicket, c.cipherSuite)
|
||
|
}
|
||
|
}
|
||
|
|
||
|
if keyUpdate, ok := msg.(*keyUpdateMsg); ok {
|
||
|
c.keyUpdateSeen = true
|
||
|
|
||
|
if c.config.Bugs.RejectUnsolicitedKeyUpdate {
|
||
|
return errors.New("tls: unexpected KeyUpdate message")
|
||
|
}
|
||
|
if err := c.useInTrafficSecret(c.in.wireVersion, c.cipherSuite, updateTrafficSecret(c.cipherSuite.hash(), c.wireVersion, c.in.trafficSecret)); err != nil {
|
||
|
return err
|
||
|
}
|
||
|
if keyUpdate.keyUpdateRequest == keyUpdateRequested {
|
||
|
c.keyUpdateRequested = true
|
||
|
}
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
c.sendAlert(alertUnexpectedMessage)
|
||
|
return errors.New("tls: unexpected post-handshake message")
|
||
|
}
|
||
|
|
||
|
// Reads a KeyUpdate acknowledgment from the peer. There may not be any
|
||
|
// application data records before the message.
|
||
|
func (c *Conn) ReadKeyUpdateACK() error {
|
||
|
c.in.Lock()
|
||
|
defer c.in.Unlock()
|
||
|
|
||
|
msg, err := c.readHandshake()
|
||
|
if err != nil {
|
||
|
return err
|
||
|
}
|
||
|
|
||
|
keyUpdate, ok := msg.(*keyUpdateMsg)
|
||
|
if !ok {
|
||
|
c.sendAlert(alertUnexpectedMessage)
|
||
|
return fmt.Errorf("tls: unexpected message (%T) when reading KeyUpdate", msg)
|
||
|
}
|
||
|
|
||
|
if keyUpdate.keyUpdateRequest != keyUpdateNotRequested {
|
||
|
return errors.New("tls: received invalid KeyUpdate message")
|
||
|
}
|
||
|
|
||
|
return c.useInTrafficSecret(c.in.wireVersion, c.cipherSuite, updateTrafficSecret(c.cipherSuite.hash(), c.wireVersion, c.in.trafficSecret))
|
||
|
}
|
||
|
|
||
|
func (c *Conn) Renegotiate() error {
|
||
|
if !c.isClient {
|
||
|
helloReq := new(helloRequestMsg).marshal()
|
||
|
if c.config.Bugs.BadHelloRequest != nil {
|
||
|
helloReq = c.config.Bugs.BadHelloRequest
|
||
|
}
|
||
|
c.writeRecord(recordTypeHandshake, helloReq)
|
||
|
c.flushHandshake()
|
||
|
}
|
||
|
|
||
|
c.handshakeComplete = false
|
||
|
return c.Handshake()
|
||
|
}
|
||
|
|
||
|
// Read can be made to time out and return a net.Error with Timeout() == true
|
||
|
// after a fixed time limit; see SetDeadline and SetReadDeadline.
|
||
|
func (c *Conn) Read(b []byte) (n int, err error) {
|
||
|
if err = c.Handshake(); err != nil {
|
||
|
return
|
||
|
}
|
||
|
|
||
|
c.in.Lock()
|
||
|
defer c.in.Unlock()
|
||
|
|
||
|
// Some OpenSSL servers send empty records in order to randomize the
|
||
|
// CBC IV. So this loop ignores a limited number of empty records.
|
||
|
const maxConsecutiveEmptyRecords = 100
|
||
|
for emptyRecordCount := 0; emptyRecordCount <= maxConsecutiveEmptyRecords; emptyRecordCount++ {
|
||
|
for c.input == nil && c.in.err == nil {
|
||
|
if err := c.readRecord(recordTypeApplicationData); err != nil {
|
||
|
// Soft error, like EAGAIN
|
||
|
return 0, err
|
||
|
}
|
||
|
for c.hand.Len() > 0 {
|
||
|
// We received handshake bytes, indicating a
|
||
|
// post-handshake message.
|
||
|
if err := c.handlePostHandshakeMessage(); err != nil {
|
||
|
return 0, err
|
||
|
}
|
||
|
}
|
||
|
}
|
||
|
if err := c.in.err; err != nil {
|
||
|
return 0, err
|
||
|
}
|
||
|
|
||
|
n, err = c.input.Read(b)
|
||
|
if c.input.off >= len(c.input.data) || c.isDTLS {
|
||
|
c.in.freeBlock(c.input)
|
||
|
c.input = nil
|
||
|
}
|
||
|
|
||
|
// If a close-notify alert is waiting, read it so that
|
||
|
// we can return (n, EOF) instead of (n, nil), to signal
|
||
|
// to the HTTP response reading goroutine that the
|
||
|
// connection is now closed. This eliminates a race
|
||
|
// where the HTTP response reading goroutine would
|
||
|
// otherwise not observe the EOF until its next read,
|
||
|
// by which time a client goroutine might have already
|
||
|
// tried to reuse the HTTP connection for a new
|
||
|
// request.
|
||
|
// See https://codereview.appspot.com/76400046
|
||
|
// and http://golang.org/issue/3514
|
||
|
if ri := c.rawInput; ri != nil &&
|
||
|
n != 0 && err == nil &&
|
||
|
c.input == nil && len(ri.data) > 0 && recordType(ri.data[0]) == recordTypeAlert {
|
||
|
if recErr := c.readRecord(recordTypeApplicationData); recErr != nil {
|
||
|
err = recErr // will be io.EOF on closeNotify
|
||
|
}
|
||
|
}
|
||
|
|
||
|
if n != 0 || err != nil {
|
||
|
return n, err
|
||
|
}
|
||
|
}
|
||
|
|
||
|
return 0, io.ErrNoProgress
|
||
|
}
|
||
|
|
||
|
// Close closes the connection.
|
||
|
func (c *Conn) Close() error {
|
||
|
var alertErr error
|
||
|
|
||
|
c.handshakeMutex.Lock()
|
||
|
defer c.handshakeMutex.Unlock()
|
||
|
if c.handshakeComplete && !c.config.Bugs.NoCloseNotify {
|
||
|
alert := alertCloseNotify
|
||
|
if c.config.Bugs.SendAlertOnShutdown != 0 {
|
||
|
alert = c.config.Bugs.SendAlertOnShutdown
|
||
|
}
|
||
|
alertErr = c.sendAlert(alert)
|
||
|
// Clear local alerts when sending alerts so we continue to wait
|
||
|
// for the peer rather than closing the socket early.
|
||
|
if opErr, ok := alertErr.(*net.OpError); ok && opErr.Op == "local error" {
|
||
|
alertErr = nil
|
||
|
}
|
||
|
}
|
||
|
|
||
|
// Consume a close_notify from the peer if one hasn't been received
|
||
|
// already. This avoids the peer from failing |SSL_shutdown| due to a
|
||
|
// write failing.
|
||
|
if c.handshakeComplete && alertErr == nil && c.config.Bugs.ExpectCloseNotify {
|
||
|
for c.in.error() == nil {
|
||
|
c.readRecord(recordTypeAlert)
|
||
|
}
|
||
|
if c.in.error() != io.EOF {
|
||
|
alertErr = c.in.error()
|
||
|
}
|
||
|
}
|
||
|
|
||
|
if err := c.conn.Close(); err != nil {
|
||
|
return err
|
||
|
}
|
||
|
return alertErr
|
||
|
}
|
||
|
|
||
|
// Handshake runs the client or server handshake
|
||
|
// protocol if it has not yet been run.
|
||
|
// Most uses of this package need not call Handshake
|
||
|
// explicitly: the first Read or Write will call it automatically.
|
||
|
func (c *Conn) Handshake() error {
|
||
|
c.handshakeMutex.Lock()
|
||
|
defer c.handshakeMutex.Unlock()
|
||
|
if err := c.handshakeErr; err != nil {
|
||
|
return err
|
||
|
}
|
||
|
if c.handshakeComplete {
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
if c.isDTLS && c.config.Bugs.SendSplitAlert {
|
||
|
c.conn.Write([]byte{
|
||
|
byte(recordTypeAlert), // type
|
||
|
0xfe, 0xff, // version
|
||
|
0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, // sequence
|
||
|
0x0, 0x2, // length
|
||
|
})
|
||
|
c.conn.Write([]byte{alertLevelError, byte(alertInternalError)})
|
||
|
}
|
||
|
if data := c.config.Bugs.AppDataBeforeHandshake; data != nil {
|
||
|
c.writeRecord(recordTypeApplicationData, data)
|
||
|
}
|
||
|
if c.isClient {
|
||
|
c.handshakeErr = c.clientHandshake()
|
||
|
} else {
|
||
|
c.handshakeErr = c.serverHandshake()
|
||
|
}
|
||
|
if c.handshakeErr == nil && c.config.Bugs.SendInvalidRecordType {
|
||
|
c.writeRecord(recordType(42), []byte("invalid record"))
|
||
|
}
|
||
|
return c.handshakeErr
|
||
|
}
|
||
|
|
||
|
// ConnectionState returns basic TLS details about the connection.
|
||
|
func (c *Conn) ConnectionState() ConnectionState {
|
||
|
c.handshakeMutex.Lock()
|
||
|
defer c.handshakeMutex.Unlock()
|
||
|
|
||
|
var state ConnectionState
|
||
|
state.HandshakeComplete = c.handshakeComplete
|
||
|
if c.handshakeComplete {
|
||
|
state.Version = c.vers
|
||
|
state.NegotiatedProtocol = c.clientProtocol
|
||
|
state.DidResume = c.didResume
|
||
|
state.NegotiatedProtocolIsMutual = !c.clientProtocolFallback
|
||
|
state.NegotiatedProtocolFromALPN = c.usedALPN
|
||
|
state.CipherSuite = c.cipherSuite.id
|
||
|
state.PeerCertificates = c.peerCertificates
|
||
|
state.VerifiedChains = c.verifiedChains
|
||
|
state.ServerName = c.serverName
|
||
|
state.ChannelID = c.channelID
|
||
|
state.TokenBindingNegotiated = c.tokenBindingNegotiated
|
||
|
state.TokenBindingParam = c.tokenBindingParam
|
||
|
state.SRTPProtectionProfile = c.srtpProtectionProfile
|
||
|
state.TLSUnique = c.firstFinished[:]
|
||
|
state.SCTList = c.sctList
|
||
|
state.PeerSignatureAlgorithm = c.peerSignatureAlgorithm
|
||
|
state.CurveID = c.curveID
|
||
|
state.QUICTransportParams = c.quicTransportParams
|
||
|
}
|
||
|
|
||
|
return state
|
||
|
}
|
||
|
|
||
|
// OCSPResponse returns the stapled OCSP response from the TLS server, if
|
||
|
// any. (Only valid for client connections.)
|
||
|
func (c *Conn) OCSPResponse() []byte {
|
||
|
c.handshakeMutex.Lock()
|
||
|
defer c.handshakeMutex.Unlock()
|
||
|
|
||
|
return c.ocspResponse
|
||
|
}
|
||
|
|
||
|
// VerifyHostname checks that the peer certificate chain is valid for
|
||
|
// connecting to host. If so, it returns nil; if not, it returns an error
|
||
|
// describing the problem.
|
||
|
func (c *Conn) VerifyHostname(host string) error {
|
||
|
c.handshakeMutex.Lock()
|
||
|
defer c.handshakeMutex.Unlock()
|
||
|
if !c.isClient {
|
||
|
return errors.New("tls: VerifyHostname called on TLS server connection")
|
||
|
}
|
||
|
if !c.handshakeComplete {
|
||
|
return errors.New("tls: handshake has not yet been performed")
|
||
|
}
|
||
|
return c.peerCertificates[0].VerifyHostname(host)
|
||
|
}
|
||
|
|
||
|
func (c *Conn) exportKeyingMaterialTLS13(length int, secret, label, context []byte) []byte {
|
||
|
cipherSuite := c.cipherSuite
|
||
|
if cipherSuite == nil {
|
||
|
cipherSuite = c.earlyCipherSuite
|
||
|
}
|
||
|
hash := cipherSuite.hash()
|
||
|
exporterKeyingLabel := []byte("exporter")
|
||
|
contextHash := hash.New()
|
||
|
contextHash.Write(context)
|
||
|
exporterContext := hash.New().Sum(nil)
|
||
|
derivedSecret := hkdfExpandLabel(cipherSuite.hash(), secret, label, exporterContext, hash.Size())
|
||
|
return hkdfExpandLabel(cipherSuite.hash(), derivedSecret, exporterKeyingLabel, contextHash.Sum(nil), length)
|
||
|
}
|
||
|
|
||
|
// ExportKeyingMaterial exports keying material from the current connection
|
||
|
// state, as per RFC 5705.
|
||
|
func (c *Conn) ExportKeyingMaterial(length int, label, context []byte, useContext bool) ([]byte, error) {
|
||
|
c.handshakeMutex.Lock()
|
||
|
defer c.handshakeMutex.Unlock()
|
||
|
if !c.handshakeComplete {
|
||
|
return nil, errors.New("tls: handshake has not yet been performed")
|
||
|
}
|
||
|
|
||
|
if c.vers >= VersionTLS13 {
|
||
|
return c.exportKeyingMaterialTLS13(length, c.exporterSecret, label, context), nil
|
||
|
}
|
||
|
|
||
|
seedLen := len(c.clientRandom) + len(c.serverRandom)
|
||
|
if useContext {
|
||
|
seedLen += 2 + len(context)
|
||
|
}
|
||
|
seed := make([]byte, 0, seedLen)
|
||
|
seed = append(seed, c.clientRandom[:]...)
|
||
|
seed = append(seed, c.serverRandom[:]...)
|
||
|
if useContext {
|
||
|
seed = append(seed, byte(len(context)>>8), byte(len(context)))
|
||
|
seed = append(seed, context...)
|
||
|
}
|
||
|
result := make([]byte, length)
|
||
|
prfForVersion(c.vers, c.cipherSuite)(result, c.exporterSecret, label, seed)
|
||
|
return result, nil
|
||
|
}
|
||
|
|
||
|
func (c *Conn) ExportEarlyKeyingMaterial(length int, label, context []byte) ([]byte, error) {
|
||
|
if c.vers < VersionTLS13 {
|
||
|
return nil, errors.New("tls: early exporters not defined before TLS 1.3")
|
||
|
}
|
||
|
|
||
|
if c.earlyExporterSecret == nil {
|
||
|
return nil, errors.New("tls: no early exporter secret")
|
||
|
}
|
||
|
|
||
|
return c.exportKeyingMaterialTLS13(length, c.earlyExporterSecret, label, context), nil
|
||
|
}
|
||
|
|
||
|
// noRenegotiationInfo returns true if the renegotiation info extension
|
||
|
// should be supported in the current handshake.
|
||
|
func (c *Conn) noRenegotiationInfo() bool {
|
||
|
if c.config.Bugs.NoRenegotiationInfo {
|
||
|
return true
|
||
|
}
|
||
|
if c.cipherSuite == nil && c.config.Bugs.NoRenegotiationInfoInInitial {
|
||
|
return true
|
||
|
}
|
||
|
if c.cipherSuite != nil && c.config.Bugs.NoRenegotiationInfoAfterInitial {
|
||
|
return true
|
||
|
}
|
||
|
return false
|
||
|
}
|
||
|
|
||
|
func (c *Conn) SendNewSessionTicket(nonce []byte) error {
|
||
|
if c.isClient || c.vers < VersionTLS13 {
|
||
|
return errors.New("tls: cannot send post-handshake NewSessionTicket")
|
||
|
}
|
||
|
|
||
|
var peerCertificatesRaw [][]byte
|
||
|
for _, cert := range c.peerCertificates {
|
||
|
peerCertificatesRaw = append(peerCertificatesRaw, cert.Raw)
|
||
|
}
|
||
|
|
||
|
addBuffer := make([]byte, 4)
|
||
|
_, err := io.ReadFull(c.config.rand(), addBuffer)
|
||
|
if err != nil {
|
||
|
c.sendAlert(alertInternalError)
|
||
|
return errors.New("tls: short read from Rand: " + err.Error())
|
||
|
}
|
||
|
ticketAgeAdd := uint32(addBuffer[3])<<24 | uint32(addBuffer[2])<<16 | uint32(addBuffer[1])<<8 | uint32(addBuffer[0])
|
||
|
|
||
|
// TODO(davidben): Allow configuring these values.
|
||
|
m := &newSessionTicketMsg{
|
||
|
vers: c.wireVersion,
|
||
|
isDTLS: c.isDTLS,
|
||
|
ticketLifetime: uint32(24 * time.Hour / time.Second),
|
||
|
duplicateEarlyDataExtension: c.config.Bugs.DuplicateTicketEarlyData,
|
||
|
customExtension: c.config.Bugs.CustomTicketExtension,
|
||
|
ticketAgeAdd: ticketAgeAdd,
|
||
|
ticketNonce: nonce,
|
||
|
maxEarlyDataSize: c.config.MaxEarlyDataSize,
|
||
|
}
|
||
|
|
||
|
if c.config.Bugs.SendTicketLifetime != 0 {
|
||
|
m.ticketLifetime = uint32(c.config.Bugs.SendTicketLifetime / time.Second)
|
||
|
}
|
||
|
|
||
|
state := sessionState{
|
||
|
vers: c.vers,
|
||
|
cipherSuite: c.cipherSuite.id,
|
||
|
masterSecret: deriveSessionPSK(c.cipherSuite, c.wireVersion, c.resumptionSecret, nonce),
|
||
|
certificates: peerCertificatesRaw,
|
||
|
ticketCreationTime: c.config.time(),
|
||
|
ticketExpiration: c.config.time().Add(time.Duration(m.ticketLifetime) * time.Second),
|
||
|
ticketAgeAdd: uint32(addBuffer[3])<<24 | uint32(addBuffer[2])<<16 | uint32(addBuffer[1])<<8 | uint32(addBuffer[0]),
|
||
|
earlyALPN: []byte(c.clientProtocol),
|
||
|
}
|
||
|
|
||
|
if !c.config.Bugs.SendEmptySessionTicket {
|
||
|
var err error
|
||
|
m.ticket, err = c.encryptTicket(&state)
|
||
|
if err != nil {
|
||
|
return err
|
||
|
}
|
||
|
}
|
||
|
c.out.Lock()
|
||
|
defer c.out.Unlock()
|
||
|
_, err = c.writeRecord(recordTypeHandshake, m.marshal())
|
||
|
return err
|
||
|
}
|
||
|
|
||
|
func (c *Conn) SendKeyUpdate(keyUpdateRequest byte) error {
|
||
|
c.out.Lock()
|
||
|
defer c.out.Unlock()
|
||
|
return c.sendKeyUpdateLocked(keyUpdateRequest)
|
||
|
}
|
||
|
|
||
|
func (c *Conn) sendKeyUpdateLocked(keyUpdateRequest byte) error {
|
||
|
if c.vers < VersionTLS13 {
|
||
|
return errors.New("tls: attempted to send KeyUpdate before TLS 1.3")
|
||
|
}
|
||
|
|
||
|
m := keyUpdateMsg{
|
||
|
keyUpdateRequest: keyUpdateRequest,
|
||
|
}
|
||
|
if _, err := c.writeRecord(recordTypeHandshake, m.marshal()); err != nil {
|
||
|
return err
|
||
|
}
|
||
|
if err := c.flushHandshake(); err != nil {
|
||
|
return err
|
||
|
}
|
||
|
c.useOutTrafficSecret(c.out.wireVersion, c.cipherSuite, updateTrafficSecret(c.cipherSuite.hash(), c.wireVersion, c.out.trafficSecret))
|
||
|
return nil
|
||
|
}
|
||
|
|
||
|
func (c *Conn) sendFakeEarlyData(len int) error {
|
||
|
// Assemble a fake early data record. This does not use writeRecord
|
||
|
// because the record layer may be using different keys at this point.
|
||
|
payload := make([]byte, 5+len)
|
||
|
payload[0] = byte(recordTypeApplicationData)
|
||
|
payload[1] = 3
|
||
|
payload[2] = 3
|
||
|
payload[3] = byte(len >> 8)
|
||
|
payload[4] = byte(len)
|
||
|
_, err := c.conn.Write(payload)
|
||
|
return err
|
||
|
}
|