mirror of
https://boringssl.googlesource.com/boringssl
synced 2026-07-21 14:43:51 +00:00
0e8895bd09
This avoids squatting on ::ssl_st::ssl_st() and ::ssl_st::~ssl_st() symbols. All that's left now is SSL_SESSION. Bug: 500444613 Change-Id: Ia415b58cfec41b819d32d2cb876a2b19697f5abb Reviewed-on: https://boringssl-review.googlesource.com/c/boringssl/+/98467 Reviewed-by: Lily Chen <chlily@google.com> Auto-Submit: David Benjamin <davidben@google.com> Commit-Queue: David Benjamin <davidben@google.com>
587 lines
20 KiB
C++
587 lines
20 KiB
C++
// Copyright 2005-2016 The OpenSSL Project Authors. All Rights Reserved.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// https://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#include <openssl/ssl.h>
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#include <assert.h>
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#include <string.h>
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#include <openssl/bytestring.h>
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#include <openssl/err.h>
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#include "../crypto/internal.h"
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#include "internal.h"
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BSSL_NAMESPACE_BEGIN
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bool DTLSReplayBitmap::ShouldDiscard(uint64_t seq_num) const {
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const size_t kWindowSize = map_.size();
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if (seq_num > max_seq_num_) {
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return false;
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}
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uint64_t idx = max_seq_num_ - seq_num;
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return idx >= kWindowSize || map_[idx];
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}
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void DTLSReplayBitmap::Record(uint64_t seq_num) {
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const size_t kWindowSize = map_.size();
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// Shift the window if necessary.
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if (seq_num > max_seq_num_) {
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uint64_t shift = seq_num - max_seq_num_;
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if (shift >= kWindowSize) {
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map_.reset();
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} else {
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map_ <<= shift;
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}
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max_seq_num_ = seq_num;
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}
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uint64_t idx = max_seq_num_ - seq_num;
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if (idx < kWindowSize) {
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map_[idx] = true;
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}
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}
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static uint16_t dtls_record_version(const SSLImpl *ssl) {
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if (ssl->s3->version == 0) {
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// Before the version is determined, outgoing records use dTLS 1.0 for
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// historical compatibility requirements.
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return DTLS1_VERSION;
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}
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// DTLS 1.3 freezes the record version at DTLS 1.2. Previous ones use the
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// version itself.
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return ssl_protocol_version(ssl) >= TLS1_3_VERSION ? DTLS1_2_VERSION
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: ssl->s3->version;
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}
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static uint64_t dtls_aead_sequence(const SSLImpl *ssl, DTLSRecordNumber num) {
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// DTLS 1.3 uses the sequence number with the AEAD, while DTLS 1.2 uses the
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// combined value. If the version is not known, the epoch is unencrypted and
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// the value is ignored.
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return (ssl->s3->version != 0 && ssl_protocol_version(ssl) >= TLS1_3_VERSION)
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? num.sequence()
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: num.combined();
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}
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// reconstruct_epoch finds the largest epoch that ends with the epoch bits from
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// `wire_epoch` that is less than or equal to `current_epoch`, to match the
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// epoch reconstruction algorithm described in RFC 9147 section 4.2.2.
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static uint16_t reconstruct_epoch(uint8_t wire_epoch, uint16_t current_epoch) {
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uint16_t current_epoch_high = current_epoch & 0xfffc;
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uint16_t epoch = (wire_epoch & 0x3) | current_epoch_high;
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if (epoch > current_epoch && current_epoch_high > 0) {
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epoch -= 0x4;
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}
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return epoch;
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}
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uint64_t reconstruct_seqnum(uint16_t wire_seq, uint64_t seq_mask,
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uint64_t max_valid_seqnum) {
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// Although DTLS 1.3 can support sequence numbers up to 2^64-1, we continue to
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// enforce the DTLS 1.2 2^48-1 limit. With a minimal DTLS 1.3 record header (2
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// bytes), no payload, and 16 byte AEAD overhead, sending 2^48 records would
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// require 5 petabytes. This allows us to continue to pack a DTLS record
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// number into an 8-byte structure.
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assert(max_valid_seqnum <= DTLSRecordNumber::kMaxSequence);
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assert(seq_mask == 0xff || seq_mask == 0xffff);
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uint64_t max_seqnum_plus_one = max_valid_seqnum + 1;
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uint64_t diff = (wire_seq - max_seqnum_plus_one) & seq_mask;
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uint64_t step = seq_mask + 1;
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// This addition cannot overflow. It is at most 2^48 + seq_mask. It, however,
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// may exceed 2^48-1.
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uint64_t seqnum = max_seqnum_plus_one + diff;
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bool too_large = seqnum > DTLSRecordNumber::kMaxSequence;
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// If the diff is larger than half the step size, then the closest seqnum
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// to max_seqnum_plus_one (in Z_{2^64}) is seqnum minus step instead of
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// seqnum.
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bool closer_is_less = diff > step / 2;
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// Subtracting step from seqnum will cause underflow if seqnum is too small.
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bool would_underflow = seqnum < step;
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if (too_large || (closer_is_less && !would_underflow)) {
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seqnum -= step;
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}
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assert(seqnum <= DTLSRecordNumber::kMaxSequence);
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return seqnum;
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}
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DTLSReadEpoch *dtls_get_read_epoch(const SSLImpl *ssl, uint16_t epoch) {
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if (epoch == ssl->d1->read_epoch.epoch) {
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return &ssl->d1->read_epoch;
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}
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if (ssl->d1->next_read_epoch != nullptr &&
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epoch == ssl->d1->next_read_epoch->epoch) {
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return ssl->d1->next_read_epoch.get();
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}
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if (ssl->d1->prev_read_epoch != nullptr &&
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epoch == ssl->d1->prev_read_epoch->epoch.epoch) {
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return &ssl->d1->prev_read_epoch->epoch;
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}
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return nullptr;
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}
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DTLSWriteEpoch *dtls_get_write_epoch(const SSLImpl *ssl, uint16_t epoch) {
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if (ssl->d1->write_epoch.epoch() == epoch) {
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return &ssl->d1->write_epoch;
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}
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for (const auto &e : ssl->d1->extra_write_epochs) {
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if (e->epoch() == epoch) {
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return e.get();
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}
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}
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return nullptr;
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}
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static Span<uint8_t> cbs_to_writable_bytes(CBS cbs) {
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return Span(const_cast<uint8_t *>(CBS_data(&cbs)), CBS_len(&cbs));
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}
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struct ParsedDTLSRecord {
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// read_epoch will be null if the record is for an unrecognized epoch. In that
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// case, `number` may be unset.
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DTLSReadEpoch *read_epoch = nullptr;
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DTLSRecordNumber number;
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CBS header, body;
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uint8_t type = 0;
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uint16_t version = 0;
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};
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static bool use_dtls13_record_header(const SSLImpl *ssl, uint16_t epoch) {
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// Plaintext records in DTLS 1.3 also use the DTLSPlaintext structure for
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// backwards compatibility.
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return ssl->s3->version != 0 && ssl_protocol_version(ssl) > TLS1_2_VERSION &&
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epoch > 0;
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}
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static bool parse_dtls13_record(SSLImpl *ssl, CBS *in, ParsedDTLSRecord *out) {
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if (out->type & 0x10) {
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// Connection ID bit set, which we didn't negotiate.
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return false;
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}
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uint16_t max_epoch = ssl->d1->read_epoch.epoch;
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if (ssl->d1->next_read_epoch != nullptr) {
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max_epoch = std::max(max_epoch, ssl->d1->next_read_epoch->epoch);
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}
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uint16_t epoch = reconstruct_epoch(out->type, max_epoch);
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size_t seq_len = (out->type & 0x08) ? 2 : 1;
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CBS seq_bytes;
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if (!CBS_get_bytes(in, &seq_bytes, seq_len)) {
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return false;
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}
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if (out->type & 0x04) {
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// 16-bit length present
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if (!CBS_get_u16_length_prefixed(in, &out->body)) {
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return false;
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}
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} else {
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// No length present - the remaining contents are the whole packet.
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// CBS_get_bytes is used here to advance `in` to the end so that future
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// code that computes the number of consumed bytes functions correctly.
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BSSL_CHECK(CBS_get_bytes(in, &out->body, CBS_len(in)));
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}
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// Drop the previous read epoch if expired.
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if (ssl->d1->prev_read_epoch != nullptr &&
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ssl_ctx_get_current_time(ssl->ctx.get()).tv_sec >
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ssl->d1->prev_read_epoch->expire) {
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ssl->d1->prev_read_epoch = nullptr;
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}
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// Look up the corresponding epoch. This header form only matches encrypted
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// DTLS 1.3 epochs.
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DTLSReadEpoch *read_epoch = dtls_get_read_epoch(ssl, epoch);
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if (read_epoch != nullptr && use_dtls13_record_header(ssl, epoch)) {
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out->read_epoch = read_epoch;
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// Decrypt and reconstruct the sequence number:
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uint8_t mask[2];
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if (!read_epoch->rn_encrypter->GenerateMask(mask, out->body)) {
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// GenerateMask most likely failed because the record body was not long
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// enough.
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return false;
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}
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// Apply the mask to the sequence number in-place. The header (with the
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// decrypted sequence number bytes) is used as the additional data for the
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// AEAD function.
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auto writable_seq = cbs_to_writable_bytes(seq_bytes);
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uint64_t seq = 0;
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for (size_t i = 0; i < writable_seq.size(); i++) {
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writable_seq[i] ^= mask[i];
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seq = (seq << 8) | writable_seq[i];
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}
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uint64_t full_seq = reconstruct_seqnum(seq, (1 << (seq_len * 8)) - 1,
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read_epoch->bitmap.max_seq_num());
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out->number = DTLSRecordNumber(epoch, full_seq);
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}
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return true;
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}
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static bool parse_dtls12_record(SSLImpl *ssl, CBS *in, ParsedDTLSRecord *out) {
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uint64_t epoch_and_seq;
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if (!CBS_get_u16(in, &out->version) || //
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!CBS_get_u64(in, &epoch_and_seq) ||
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!CBS_get_u16_length_prefixed(in, &out->body)) {
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return false;
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}
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out->number = DTLSRecordNumber::FromCombined(epoch_and_seq);
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uint16_t epoch = out->number.epoch();
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bool version_ok;
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if (epoch == 0) {
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// Only check the first byte. Enforcing beyond that can prevent decoding
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// version negotiation failure alerts.
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version_ok = (out->version >> 8) == DTLS1_VERSION_MAJOR;
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} else {
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version_ok = out->version == dtls_record_version(ssl);
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}
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if (!version_ok) {
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return false;
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}
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// Look up the corresponding epoch. In DTLS 1.2, we only need to consider one
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// epoch.
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if (epoch == ssl->d1->read_epoch.epoch &&
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!use_dtls13_record_header(ssl, epoch)) {
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out->read_epoch = &ssl->d1->read_epoch;
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}
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return true;
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}
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static bool parse_dtls_record(SSLImpl *ssl, CBS *cbs, ParsedDTLSRecord *out) {
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CBS copy = *cbs;
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if (!CBS_get_u8(cbs, &out->type)) {
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return false;
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}
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bool ok;
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if ((out->type & 0xe0) == 0x20) {
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ok = parse_dtls13_record(ssl, cbs, out);
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} else {
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ok = parse_dtls12_record(ssl, cbs, out);
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}
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if (!ok) {
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return false;
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}
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if (CBS_len(&out->body) > SSL3_RT_MAX_ENCRYPTED_LENGTH) {
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return false;
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}
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size_t header_len = CBS_data(&out->body) - CBS_data(©);
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BSSL_CHECK(CBS_get_bytes(©, &out->header, header_len));
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return true;
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}
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enum ssl_open_record_t dtls_open_record(SSLImpl *ssl, uint8_t *out_type,
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DTLSRecordNumber *out_number,
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Span<uint8_t> *out,
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size_t *out_consumed,
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uint8_t *out_alert, Span<uint8_t> in) {
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*out_consumed = 0;
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if (ssl->s3->read_shutdown == ssl_shutdown_close_notify) {
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return ssl_open_record_close_notify;
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}
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if (in.empty()) {
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return ssl_open_record_partial;
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}
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CBS cbs(in);
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ParsedDTLSRecord record;
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if (!parse_dtls_record(ssl, &cbs, &record)) {
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// The record header was incomplete or malformed. Drop the entire packet.
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*out_consumed = in.size();
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return ssl_open_record_discard;
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}
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ssl_do_msg_callback(ssl, 0 /* read */, SSL3_RT_HEADER, record.header);
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if (record.read_epoch == nullptr ||
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record.read_epoch->bitmap.ShouldDiscard(record.number.sequence())) {
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// Drop this record. It's from an unknown epoch or is a replay. Note that if
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// the record is from next epoch, it could be buffered for later. For
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// simplicity, drop it and expect retransmit to handle it later; DTLS must
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// handle packet loss anyway.
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*out_consumed = in.size() - CBS_len(&cbs);
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return ssl_open_record_discard;
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}
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// Decrypt the body in-place.
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if (!record.read_epoch->aead->Open(out, record.type, record.version,
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dtls_aead_sequence(ssl, record.number),
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record.header,
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cbs_to_writable_bytes(record.body))) {
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// Bad packets are silently dropped in DTLS. See section 4.2.1 of RFC 6347.
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// Clear the error queue of any errors decryption may have added. Drop the
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// entire packet as it must not have come from the peer.
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//
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// TODO(davidben): This doesn't distinguish malloc failures from encryption
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// failures.
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ERR_clear_error();
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*out_consumed = in.size() - CBS_len(&cbs);
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return ssl_open_record_discard;
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}
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*out_consumed = in.size() - CBS_len(&cbs);
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// DTLS 1.3 hides the record type inside the encrypted data.
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bool has_padding = !record.read_epoch->aead->is_null_cipher() &&
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ssl_protocol_version(ssl) >= TLS1_3_VERSION;
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// Check the plaintext length.
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size_t plaintext_limit = SSL3_RT_MAX_PLAIN_LENGTH + (has_padding ? 1 : 0);
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if (out->size() > plaintext_limit) {
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OPENSSL_PUT_ERROR(SSL, SSL_R_DATA_LENGTH_TOO_LONG);
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*out_alert = SSL_AD_RECORD_OVERFLOW;
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return ssl_open_record_error;
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}
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if (has_padding) {
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do {
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if (out->empty()) {
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OPENSSL_PUT_ERROR(SSL, SSL_R_DECRYPTION_FAILED_OR_BAD_RECORD_MAC);
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*out_alert = SSL_AD_DECRYPT_ERROR;
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return ssl_open_record_error;
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}
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record.type = out->back();
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*out = out->subspan(0, out->size() - 1);
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} while (record.type == 0);
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}
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record.read_epoch->bitmap.Record(record.number.sequence());
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// Once we receive a record from the next epoch in DTLS 1.3, it becomes the
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// current epoch. Also save the previous epoch. This allows us to handle
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// packet reordering on KeyUpdate, as well as ACK retransmissions of the
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// Finished flight.
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if (record.read_epoch == ssl->d1->next_read_epoch.get()) {
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assert(ssl_protocol_version(ssl) >= TLS1_3_VERSION);
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auto prev = MakeUnique<DTLSPrevReadEpoch>();
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if (prev == nullptr) {
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*out_alert = SSL_AD_INTERNAL_ERROR;
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return ssl_open_record_error;
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}
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// Release the epoch after a timeout.
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prev->expire = ssl_ctx_get_current_time(ssl->ctx.get()).tv_sec;
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if (prev->expire >= UINT64_MAX - DTLS_PREV_READ_EPOCH_EXPIRE_SECONDS) {
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prev->expire = UINT64_MAX; // Saturate on overflow.
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} else {
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prev->expire += DTLS_PREV_READ_EPOCH_EXPIRE_SECONDS;
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}
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prev->epoch = std::move(ssl->d1->read_epoch);
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ssl->d1->prev_read_epoch = std::move(prev);
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ssl->d1->read_epoch = std::move(*ssl->d1->next_read_epoch);
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ssl->d1->next_read_epoch = nullptr;
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}
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// TODO(davidben): Limit the number of empty records as in TLS? This is only
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// useful if we also limit discarded packets.
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if (record.type == SSL3_RT_ALERT) {
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return ssl_process_alert(ssl, out_alert, *out);
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}
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// Reject application data in epochs that do not allow it.
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if (record.type == SSL3_RT_APPLICATION_DATA) {
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bool app_data_allowed;
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if (ssl->s3->version != 0 && ssl_protocol_version(ssl) >= TLS1_3_VERSION) {
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// Application data is allowed in 0-RTT (epoch 1) and after the handshake
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// (3 and up).
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app_data_allowed =
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record.number.epoch() == 1 || record.number.epoch() >= 3;
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} else {
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// Application data is allowed starting epoch 1.
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app_data_allowed = record.number.epoch() >= 1;
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}
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if (!app_data_allowed) {
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OPENSSL_PUT_ERROR(SSL, SSL_R_UNEXPECTED_RECORD);
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*out_alert = SSL_AD_UNEXPECTED_MESSAGE;
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return ssl_open_record_error;
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}
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}
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ssl->s3->warning_alert_count = 0;
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*out_type = record.type;
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*out_number = record.number;
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return ssl_open_record_success;
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}
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size_t dtls_record_header_write_len(const SSLImpl *ssl, uint16_t epoch) {
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if (!use_dtls13_record_header(ssl, epoch)) {
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return DTLS_PLAINTEXT_RECORD_HEADER_LENGTH;
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}
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// The DTLS 1.3 has a variable length record header. We never send Connection
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// ID, we always send 16-bit sequence numbers, and we send a length. (Length
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// can be omitted, but only for the last record of a packet. Since we send
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// multiple records in one packet, it's easier to implement always sending the
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// length.)
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return DTLS1_3_RECORD_HEADER_WRITE_LENGTH;
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}
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size_t dtls_max_seal_overhead(const SSLImpl *ssl, uint16_t epoch) {
|
|
DTLSWriteEpoch *write_epoch = dtls_get_write_epoch(ssl, epoch);
|
|
if (write_epoch == nullptr) {
|
|
return 0;
|
|
}
|
|
size_t ret = dtls_record_header_write_len(ssl, epoch) +
|
|
write_epoch->aead->MaxOverhead();
|
|
if (use_dtls13_record_header(ssl, epoch)) {
|
|
// Add 1 byte for the encrypted record type.
|
|
ret++;
|
|
}
|
|
return ret;
|
|
}
|
|
|
|
size_t dtls_seal_prefix_len(const SSLImpl *ssl, uint16_t epoch) {
|
|
DTLSWriteEpoch *write_epoch = dtls_get_write_epoch(ssl, epoch);
|
|
if (write_epoch == nullptr) {
|
|
return 0;
|
|
}
|
|
return dtls_record_header_write_len(ssl, epoch) +
|
|
write_epoch->aead->ExplicitNonceLen();
|
|
}
|
|
|
|
size_t dtls_seal_max_input_len(const SSLImpl *ssl, uint16_t epoch,
|
|
size_t max_out) {
|
|
DTLSWriteEpoch *write_epoch = dtls_get_write_epoch(ssl, epoch);
|
|
if (write_epoch == nullptr) {
|
|
return 0;
|
|
}
|
|
size_t header_len = dtls_record_header_write_len(ssl, epoch);
|
|
if (max_out <= header_len) {
|
|
return 0;
|
|
}
|
|
max_out -= header_len;
|
|
max_out = write_epoch->aead->MaxSealInputLen(max_out);
|
|
if (max_out > 0 && use_dtls13_record_header(ssl, epoch)) {
|
|
// Remove 1 byte for the encrypted record type.
|
|
max_out--;
|
|
}
|
|
return max_out;
|
|
}
|
|
|
|
bool dtls_seal_record(SSLImpl *ssl, DTLSRecordNumber *out_number, uint8_t *out,
|
|
size_t *out_len, size_t max_out, uint8_t type,
|
|
const uint8_t *in, size_t in_len, uint16_t epoch) {
|
|
const size_t prefix = dtls_seal_prefix_len(ssl, epoch);
|
|
if (buffers_alias(in, in_len, out, max_out) &&
|
|
(max_out < prefix || out + prefix != in)) {
|
|
OPENSSL_PUT_ERROR(SSL, SSL_R_OUTPUT_ALIASES_INPUT);
|
|
return false;
|
|
}
|
|
|
|
// Determine the parameters for the current epoch.
|
|
DTLSWriteEpoch *write_epoch = dtls_get_write_epoch(ssl, epoch);
|
|
if (write_epoch == nullptr) {
|
|
OPENSSL_PUT_ERROR(SSL, ERR_R_INTERNAL_ERROR);
|
|
return false;
|
|
}
|
|
|
|
const size_t record_header_len = dtls_record_header_write_len(ssl, epoch);
|
|
|
|
// Ensure the sequence number update does not overflow.
|
|
DTLSRecordNumber record_number = write_epoch->next_record;
|
|
if (!record_number.HasNext()) {
|
|
OPENSSL_PUT_ERROR(SSL, ERR_R_OVERFLOW);
|
|
return false;
|
|
}
|
|
|
|
bool dtls13_header = use_dtls13_record_header(ssl, epoch);
|
|
uint8_t *extra_in = nullptr;
|
|
size_t extra_in_len = 0;
|
|
if (dtls13_header) {
|
|
extra_in = &type;
|
|
extra_in_len = 1;
|
|
}
|
|
|
|
size_t ciphertext_len;
|
|
if (!write_epoch->aead->CiphertextLen(&ciphertext_len, in_len,
|
|
extra_in_len)) {
|
|
OPENSSL_PUT_ERROR(SSL, SSL_R_RECORD_TOO_LARGE);
|
|
return false;
|
|
}
|
|
if (max_out < record_header_len + ciphertext_len) {
|
|
OPENSSL_PUT_ERROR(SSL, SSL_R_BUFFER_TOO_SMALL);
|
|
return false;
|
|
}
|
|
|
|
uint16_t record_version = dtls_record_version(ssl);
|
|
if (dtls13_header) {
|
|
// The first byte of the DTLS 1.3 record header has the following format:
|
|
// 0 1 2 3 4 5 6 7
|
|
// +-+-+-+-+-+-+-+-+
|
|
// |0|0|1|C|S|L|E E|
|
|
// +-+-+-+-+-+-+-+-+
|
|
//
|
|
// We set C=0 (no Connection ID), S=1 (16-bit sequence number), L=1 (length
|
|
// is present), which is a mask of 0x2c. The E E bits are the low-order two
|
|
// bits of the epoch.
|
|
//
|
|
// +-+-+-+-+-+-+-+-+
|
|
// |0|0|1|0|1|1|E E|
|
|
// +-+-+-+-+-+-+-+-+
|
|
out[0] = 0x2c | (epoch & 0x3);
|
|
// We always use a two-byte sequence number. A one-byte sequence number
|
|
// would require coordinating with the application on ACK feedback to know
|
|
// that the peer is not too far behind.
|
|
CRYPTO_store_u16_be(out + 1, write_epoch->next_record.sequence());
|
|
// TODO(crbug.com/383078467): When we know the record is last in the packet,
|
|
// omit the length.
|
|
CRYPTO_store_u16_be(out + 3, ciphertext_len);
|
|
} else {
|
|
out[0] = type;
|
|
CRYPTO_store_u16_be(out + 1, record_version);
|
|
CRYPTO_store_u64_be(out + 3, record_number.combined());
|
|
CRYPTO_store_u16_be(out + 11, ciphertext_len);
|
|
}
|
|
Span<const uint8_t> header(out, record_header_len);
|
|
|
|
if (!write_epoch->aead->SealScatter(
|
|
out + record_header_len, out + prefix, out + prefix + in_len, type,
|
|
record_version, dtls_aead_sequence(ssl, record_number), header, in,
|
|
in_len, extra_in, extra_in_len)) {
|
|
return false;
|
|
}
|
|
|
|
// Perform record number encryption (RFC 9147 section 4.2.3).
|
|
if (dtls13_header) {
|
|
// Record number encryption uses bytes from the ciphertext as a sample to
|
|
// generate the mask used for encryption. For simplicity, pass in the whole
|
|
// ciphertext as the sample - GenerateRecordNumberMask will read only what
|
|
// it needs (and error if `sample` is too short).
|
|
Span<const uint8_t> sample(out + record_header_len, ciphertext_len);
|
|
uint8_t mask[2];
|
|
if (!write_epoch->rn_encrypter->GenerateMask(mask, sample)) {
|
|
return false;
|
|
}
|
|
out[1] ^= mask[0];
|
|
out[2] ^= mask[1];
|
|
}
|
|
|
|
*out_number = record_number;
|
|
write_epoch->next_record = record_number.Next();
|
|
*out_len = record_header_len + ciphertext_len;
|
|
ssl_do_msg_callback(ssl, 1 /* write */, SSL3_RT_HEADER, header);
|
|
return true;
|
|
}
|
|
|
|
BSSL_NAMESPACE_END
|