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Side by Side Diff: media/cast/net/rtcp/rtcp.cc

Issue 1520613004: cast: Split Rtcp into two for sender and receiver (Closed) Base URL: https://chromium.googlesource.com/chromium/src.git@timestamp
Patch Set: Rebased Created 4 years, 11 months ago
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1 // Copyright 2014 The Chromium Authors. All rights reserved.
2 // Use of this source code is governed by a BSD-style license that can be
3 // found in the LICENSE file.
4
5 #include "media/cast/net/rtcp/rtcp.h"
6
7 #include <limits>
8
9 #include "base/time/time.h"
10 #include "media/cast/cast_environment.h"
11 #include "media/cast/constants.h"
12 #include "media/cast/net/cast_transport_config.h"
13 #include "media/cast/net/cast_transport_defines.h"
14 #include "media/cast/net/pacing/paced_sender.h"
15 #include "media/cast/net/rtcp/rtcp_builder.h"
16 #include "media/cast/net/rtcp/rtcp_defines.h"
17 #include "media/cast/net/rtcp/rtcp_utility.h"
18
19 using base::TimeDelta;
20
21 namespace media {
22 namespace cast {
23
24 namespace {
25
26 enum {
27 kStatsHistoryWindowMs = 10000, // 10 seconds.
28
29 // Reject packets that are older than 0.5 seconds older than
30 // the newest packet we've seen so far. This protects internal
31 // states from crazy routers. (Based on RRTR)
32 kOutOfOrderMaxAgeMs = 500,
33
34 // Minimum number of bytes required to make a valid RTCP packet.
35 kMinLengthOfRtcp = 8,
36 };
37
38 // Create a NTP diff from seconds and fractions of seconds; delay_fraction is
39 // fractions of a second where 0x80000000 is half a second.
40 uint32_t ConvertToNtpDiff(uint32_t delay_seconds, uint32_t delay_fraction) {
41 return ((delay_seconds & 0x0000FFFF) << 16) +
42 ((delay_fraction & 0xFFFF0000) >> 16);
43 }
44
45 // Parse a NTP diff value into a base::TimeDelta.
46 base::TimeDelta ConvertFromNtpDiff(uint32_t ntp_delay) {
47 int64_t delay_us =
48 (ntp_delay & 0x0000ffff) * base::Time::kMicrosecondsPerSecond;
49 delay_us >>= 16;
50 delay_us +=
51 ((ntp_delay & 0xffff0000) >> 16) * base::Time::kMicrosecondsPerSecond;
52 return base::TimeDelta::FromMicroseconds(delay_us);
53 }
54
55 // A receiver frame event is identified by frame RTP timestamp, event timestamp
56 // and event type.
57 // A receiver packet event is identified by all of the above plus packet id.
58 // The key format is as follows:
59 // First uint64_t:
60 // bits 0-11: zeroes (unused).
61 // bits 12-15: event type ID.
62 // bits 16-31: packet ID if packet event, 0 otherwise.
63 // bits 32-63: RTP timestamp.
64 // Second uint64_t:
65 // bits 0-63: event TimeTicks internal value.
66 std::pair<uint64_t, uint64_t> GetReceiverEventKey(
67 RtpTimeTicks frame_rtp_timestamp,
68 const base::TimeTicks& event_timestamp,
69 uint8_t event_type,
70 uint16_t packet_id_or_zero) {
71 uint64_t value1 = event_type;
72 value1 <<= 16;
73 value1 |= packet_id_or_zero;
74 value1 <<= 32;
75 value1 |= frame_rtp_timestamp.lower_32_bits();
76 return std::make_pair(
77 value1, static_cast<uint64_t>(event_timestamp.ToInternalValue()));
78 }
79
80 } // namespace
81
82 Rtcp::Rtcp(const RtcpCastMessageCallback& cast_callback,
83 const RtcpRttCallback& rtt_callback,
84 const RtcpLogMessageCallback& log_callback,
85 base::TickClock* clock,
86 PacedPacketSender* packet_sender,
87 uint32_t local_ssrc,
88 uint32_t remote_ssrc)
89 : cast_callback_(cast_callback),
90 rtt_callback_(rtt_callback),
91 log_callback_(log_callback),
92 clock_(clock),
93 rtcp_builder_(local_ssrc),
94 packet_sender_(packet_sender),
95 local_ssrc_(local_ssrc),
96 remote_ssrc_(remote_ssrc),
97 parser_(local_ssrc_, remote_ssrc_),
98 last_report_truncated_ntp_(0),
99 local_clock_ahead_by_(ClockDriftSmoother::GetDefaultTimeConstant()),
100 lip_sync_ntp_timestamp_(0),
101 largest_seen_timestamp_(base::TimeTicks::FromInternalValue(
102 std::numeric_limits<int64_t>::min())),
103 ack_frame_id_wrap_helper_(kFirstFrameId - 1) {}
104
105 Rtcp::~Rtcp() {}
106
107 bool Rtcp::IsRtcpPacket(const uint8_t* packet, size_t length) {
108 if (length < kMinLengthOfRtcp) {
109 LOG(ERROR) << "Invalid RTCP packet received.";
110 return false;
111 }
112
113 uint8_t packet_type = packet[1];
114 return packet_type >= kPacketTypeLow && packet_type <= kPacketTypeHigh;
115 }
116
117 uint32_t Rtcp::GetSsrcOfSender(const uint8_t* rtcp_buffer, size_t length) {
118 if (length < kMinLengthOfRtcp)
119 return 0;
120 uint32_t ssrc_of_sender;
121 base::BigEndianReader big_endian_reader(
122 reinterpret_cast<const char*>(rtcp_buffer), length);
123 big_endian_reader.Skip(4); // Skip header.
124 big_endian_reader.ReadU32(&ssrc_of_sender);
125 return ssrc_of_sender;
126 }
127
128 bool Rtcp::IncomingRtcpPacket(const uint8_t* data, size_t length) {
129 // Check if this is a valid RTCP packet.
130 if (!IsRtcpPacket(data, length)) {
131 VLOG(1) << "Rtcp@" << this << "::IncomingRtcpPacket() -- "
132 << "Received an invalid (non-RTCP?) packet.";
133 return false;
134 }
135
136 // Check if this packet is to us.
137 uint32_t ssrc_of_sender = GetSsrcOfSender(data, length);
138 if (ssrc_of_sender != remote_ssrc_) {
139 return false;
140 }
141
142 // Parse this packet.
143 base::BigEndianReader reader(reinterpret_cast<const char*>(data), length);
144 if (parser_.Parse(&reader)) {
145 if (parser_.has_receiver_reference_time_report()) {
146 base::TimeTicks t = ConvertNtpToTimeTicks(
147 parser_.receiver_reference_time_report().ntp_seconds,
148 parser_.receiver_reference_time_report().ntp_fraction);
149 if (t > largest_seen_timestamp_) {
150 largest_seen_timestamp_ = t;
151 } else if ((largest_seen_timestamp_ - t).InMilliseconds() >
152 kOutOfOrderMaxAgeMs) {
153 // Reject packet, it is too old.
154 VLOG(1) << "Rejecting RTCP packet as it is too old ("
155 << (largest_seen_timestamp_ - t).InMilliseconds()
156 << " ms)";
157 return true;
158 }
159
160 OnReceivedNtp(parser_.receiver_reference_time_report().ntp_seconds,
161 parser_.receiver_reference_time_report().ntp_fraction);
162 }
163 if (parser_.has_sender_report()) {
164 OnReceivedNtp(parser_.sender_report().ntp_seconds,
165 parser_.sender_report().ntp_fraction);
166 OnReceivedLipSyncInfo(parser_.sender_report().rtp_timestamp,
167 parser_.sender_report().ntp_seconds,
168 parser_.sender_report().ntp_fraction);
169 }
170 if (parser_.has_receiver_log()) {
171 if (DedupeReceiverLog(parser_.mutable_receiver_log())) {
172 OnReceivedReceiverLog(parser_.receiver_log());
173 }
174 }
175 if (parser_.has_last_report()) {
176 OnReceivedDelaySinceLastReport(parser_.last_report(),
177 parser_.delay_since_last_report());
178 }
179 if (parser_.has_cast_message()) {
180 parser_.mutable_cast_message()->ack_frame_id =
181 ack_frame_id_wrap_helper_.MapTo32bitsFrameId(
182 parser_.mutable_cast_message()->ack_frame_id);
183 OnReceivedCastFeedback(parser_.cast_message());
184 }
185 }
186 return true;
187 }
188
189 bool Rtcp::DedupeReceiverLog(RtcpReceiverLogMessage* receiver_log) {
190 RtcpReceiverLogMessage::iterator i = receiver_log->begin();
191 while (i != receiver_log->end()) {
192 RtcpReceiverEventLogMessages* messages = &i->event_log_messages_;
193 RtcpReceiverEventLogMessages::iterator j = messages->begin();
194 while (j != messages->end()) {
195 ReceiverEventKey key = GetReceiverEventKey(i->rtp_timestamp_,
196 j->event_timestamp,
197 j->type,
198 j->packet_id);
199 RtcpReceiverEventLogMessages::iterator tmp = j;
200 ++j;
201 if (receiver_event_key_set_.insert(key).second) {
202 receiver_event_key_queue_.push(key);
203 if (receiver_event_key_queue_.size() > kReceiverRtcpEventHistorySize) {
204 receiver_event_key_set_.erase(receiver_event_key_queue_.front());
205 receiver_event_key_queue_.pop();
206 }
207 } else {
208 messages->erase(tmp);
209 }
210 }
211
212 RtcpReceiverLogMessage::iterator tmp = i;
213 ++i;
214 if (messages->empty()) {
215 receiver_log->erase(tmp);
216 }
217 }
218 return !receiver_log->empty();
219 }
220
221 RtcpTimeData Rtcp::ConvertToNTPAndSave(base::TimeTicks now) {
222 RtcpTimeData ret;
223 ret.timestamp = now;
224
225 // Attach our NTP to all RTCP packets; with this information a "smart" sender
226 // can make decisions based on how old the RTCP message is.
227 ConvertTimeTicksToNtp(now, &ret.ntp_seconds, &ret.ntp_fraction);
228 SaveLastSentNtpTime(now, ret.ntp_seconds, ret.ntp_fraction);
229 return ret;
230 }
231
232 void Rtcp::SendRtcpFromRtpReceiver(
233 RtcpTimeData time_data,
234 const RtcpCastMessage* cast_message,
235 base::TimeDelta target_delay,
236 const ReceiverRtcpEventSubscriber::RtcpEvents* rtcp_events,
237 const RtpReceiverStatistics* rtp_receiver_statistics) const {
238 RtcpReportBlock report_block;
239 RtcpReceiverReferenceTimeReport rrtr;
240 rrtr.ntp_seconds = time_data.ntp_seconds;
241 rrtr.ntp_fraction = time_data.ntp_fraction;
242
243 if (rtp_receiver_statistics) {
244 report_block.remote_ssrc = 0; // Not needed to set send side.
245 report_block.media_ssrc = remote_ssrc_; // SSRC of the RTP packet sender.
246 report_block.fraction_lost = rtp_receiver_statistics->fraction_lost;
247 report_block.cumulative_lost = rtp_receiver_statistics->cumulative_lost;
248 report_block.extended_high_sequence_number =
249 rtp_receiver_statistics->extended_high_sequence_number;
250 report_block.jitter = rtp_receiver_statistics->jitter;
251 report_block.last_sr = last_report_truncated_ntp_;
252 if (!time_last_report_received_.is_null()) {
253 uint32_t delay_seconds = 0;
254 uint32_t delay_fraction = 0;
255 base::TimeDelta delta = time_data.timestamp - time_last_report_received_;
256 ConvertTimeToFractions(delta.InMicroseconds(), &delay_seconds,
257 &delay_fraction);
258 report_block.delay_since_last_sr =
259 ConvertToNtpDiff(delay_seconds, delay_fraction);
260 } else {
261 report_block.delay_since_last_sr = 0;
262 }
263 }
264 RtcpBuilder rtcp_builder(local_ssrc_);
265 packet_sender_->SendRtcpPacket(
266 local_ssrc_,
267 rtcp_builder.BuildRtcpFromReceiver(
268 rtp_receiver_statistics ? &report_block : NULL,
269 &rrtr,
270 cast_message,
271 rtcp_events,
272 target_delay));
273 }
274
275 void Rtcp::SendRtcpFromRtpSender(base::TimeTicks current_time,
276 RtpTimeTicks current_time_as_rtp_timestamp,
277 uint32_t send_packet_count,
278 size_t send_octet_count) {
279 uint32_t current_ntp_seconds = 0;
280 uint32_t current_ntp_fractions = 0;
281 ConvertTimeTicksToNtp(current_time, &current_ntp_seconds,
282 &current_ntp_fractions);
283 SaveLastSentNtpTime(current_time, current_ntp_seconds,
284 current_ntp_fractions);
285
286 RtcpSenderInfo sender_info;
287 sender_info.ntp_seconds = current_ntp_seconds;
288 sender_info.ntp_fraction = current_ntp_fractions;
289 sender_info.rtp_timestamp = current_time_as_rtp_timestamp;
290 sender_info.send_packet_count = send_packet_count;
291 sender_info.send_octet_count = send_octet_count;
292
293 packet_sender_->SendRtcpPacket(
294 local_ssrc_,
295 rtcp_builder_.BuildRtcpFromSender(sender_info));
296 }
297
298 void Rtcp::OnReceivedNtp(uint32_t ntp_seconds, uint32_t ntp_fraction) {
299 last_report_truncated_ntp_ = ConvertToNtpDiff(ntp_seconds, ntp_fraction);
300
301 const base::TimeTicks now = clock_->NowTicks();
302 time_last_report_received_ = now;
303
304 // TODO(miu): This clock offset calculation does not account for packet
305 // transit time over the network. End2EndTest.EvilNetwork confirms that this
306 // contributes a very significant source of error here. Determine whether
307 // RTT should be factored-in, and how that changes the rest of the
308 // calculation.
309 const base::TimeDelta measured_offset =
310 now - ConvertNtpToTimeTicks(ntp_seconds, ntp_fraction);
311 local_clock_ahead_by_.Update(now, measured_offset);
312 if (measured_offset < local_clock_ahead_by_.Current()) {
313 // Logically, the minimum offset between the clocks has to be the correct
314 // one. For example, the time it took to transmit the current report may
315 // have been lower than usual, and so some of the error introduced by the
316 // transmission time can be eliminated.
317 local_clock_ahead_by_.Reset(now, measured_offset);
318 }
319 VLOG(1) << "Local clock is ahead of the remote clock by: "
320 << "measured=" << measured_offset.InMicroseconds() << " usec, "
321 << "filtered=" << local_clock_ahead_by_.Current().InMicroseconds()
322 << " usec.";
323 }
324
325 void Rtcp::OnReceivedLipSyncInfo(RtpTimeTicks rtp_timestamp,
326 uint32_t ntp_seconds,
327 uint32_t ntp_fraction) {
328 if (ntp_seconds == 0) {
329 NOTREACHED();
330 return;
331 }
332 lip_sync_rtp_timestamp_ = rtp_timestamp;
333 lip_sync_ntp_timestamp_ =
334 (static_cast<uint64_t>(ntp_seconds) << 32) | ntp_fraction;
335 }
336
337 bool Rtcp::GetLatestLipSyncTimes(RtpTimeTicks* rtp_timestamp,
338 base::TimeTicks* reference_time) const {
339 if (!lip_sync_ntp_timestamp_)
340 return false;
341
342 const base::TimeTicks local_reference_time =
343 ConvertNtpToTimeTicks(
344 static_cast<uint32_t>(lip_sync_ntp_timestamp_ >> 32),
345 static_cast<uint32_t>(lip_sync_ntp_timestamp_)) +
346 local_clock_ahead_by_.Current();
347
348 // Sanity-check: Getting regular lip sync updates?
349 DCHECK((clock_->NowTicks() - local_reference_time) <
350 base::TimeDelta::FromMinutes(1));
351
352 *rtp_timestamp = lip_sync_rtp_timestamp_;
353 *reference_time = local_reference_time;
354 return true;
355 }
356
357 void Rtcp::OnReceivedDelaySinceLastReport(uint32_t last_report,
358 uint32_t delay_since_last_report) {
359 RtcpSendTimeMap::iterator it = last_reports_sent_map_.find(last_report);
360 if (it == last_reports_sent_map_.end()) {
361 return; // Feedback on another report.
362 }
363
364 const base::TimeDelta sender_delay = clock_->NowTicks() - it->second;
365 const base::TimeDelta receiver_delay =
366 ConvertFromNtpDiff(delay_since_last_report);
367 current_round_trip_time_ = sender_delay - receiver_delay;
368 // If the round trip time was computed as less than 1 ms, assume clock
369 // imprecision by one or both peers caused a bad value to be calculated.
370 // While plenty of networks do easily achieve less than 1 ms round trip time,
371 // such a level of precision cannot be measured with our approach; and 1 ms is
372 // good enough to represent "under 1 ms" for our use cases.
373 current_round_trip_time_ =
374 std::max(current_round_trip_time_, base::TimeDelta::FromMilliseconds(1));
375
376 if (!rtt_callback_.is_null())
377 rtt_callback_.Run(current_round_trip_time_);
378 }
379
380 void Rtcp::OnReceivedCastFeedback(const RtcpCastMessage& cast_message) {
381 if (cast_callback_.is_null())
382 return;
383 cast_callback_.Run(cast_message);
384 }
385
386 void Rtcp::SaveLastSentNtpTime(const base::TimeTicks& now,
387 uint32_t last_ntp_seconds,
388 uint32_t last_ntp_fraction) {
389 // Make sure |now| is always greater than the last element in
390 // |last_reports_sent_queue_|.
391 if (!last_reports_sent_queue_.empty()) {
392 DCHECK(now >= last_reports_sent_queue_.back().second);
393 }
394
395 uint32_t last_report = ConvertToNtpDiff(last_ntp_seconds, last_ntp_fraction);
396 last_reports_sent_map_[last_report] = now;
397 last_reports_sent_queue_.push(std::make_pair(last_report, now));
398
399 const base::TimeTicks timeout =
400 now - TimeDelta::FromMilliseconds(kStatsHistoryWindowMs);
401
402 // Cleanup old statistics older than |timeout|.
403 while (!last_reports_sent_queue_.empty()) {
404 RtcpSendTimePair oldest_report = last_reports_sent_queue_.front();
405 if (oldest_report.second < timeout) {
406 last_reports_sent_map_.erase(oldest_report.first);
407 last_reports_sent_queue_.pop();
408 } else {
409 break;
410 }
411 }
412 }
413
414 void Rtcp::OnReceivedReceiverLog(const RtcpReceiverLogMessage& receiver_log) {
415 if (log_callback_.is_null())
416 return;
417 log_callback_.Run(receiver_log);
418 }
419
420 } // namespace cast
421 } // namespace media
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