Chromium Code Reviews| OLD | NEW |
|---|---|
| (Empty) | |
| 1 // Copyright (c) 2011 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/base/download_rate_monitor.h" | |
| 6 | |
| 7 #include "base/bind.h" | |
| 8 #include "base/time.h" | |
| 9 | |
| 10 namespace media { | |
| 11 | |
| 12 // Number of samples to use to collect and average for each measurement of | |
| 13 // download rate. | |
| 14 static const size_t kNumberOfSamples = 5; | |
| 15 | |
| 16 // Minimum number of seconds represented in a sample period. | |
| 17 static const float kSamplePeriod = 1.0; | |
| 18 | |
| 19 DownloadRateMonitor::Sample::Sample() { | |
| 20 Reset(); | |
| 21 } | |
| 22 | |
| 23 DownloadRateMonitor::Sample::Sample( | |
| 24 const BufferingPoint& start, const BufferingPoint& end) { | |
| 25 Reset(); | |
| 26 start_ = start; | |
| 27 set_end(end); | |
| 28 } | |
| 29 | |
| 30 void DownloadRateMonitor::Sample::set_end(const BufferingPoint& new_end) { | |
| 31 DCHECK(!start_.timestamp.is_null()); | |
| 32 DCHECK(new_end.buffered_bytes >= start_.buffered_bytes); | |
| 33 DCHECK(new_end.timestamp >= start_.timestamp); | |
| 34 end_ = new_end; | |
| 35 } | |
| 36 | |
| 37 float DownloadRateMonitor::Sample::bytes_per_second() const { | |
| 38 if (seconds_elapsed() > 0.0 && bytes_downloaded() >= 0) | |
| 39 return bytes_downloaded() / seconds_elapsed(); | |
| 40 return -1.0; | |
| 41 } | |
| 42 | |
| 43 float DownloadRateMonitor::Sample::seconds_elapsed() const { | |
| 44 if (start_.timestamp.is_null() || end_.timestamp.is_null()) | |
| 45 return -1.0; | |
| 46 return (end_.timestamp - start_.timestamp).InSecondsF(); | |
| 47 } | |
| 48 | |
| 49 int64 DownloadRateMonitor::Sample::bytes_downloaded() const { | |
| 50 if (start_.timestamp.is_null() || end_.timestamp.is_null()) | |
| 51 return -1.0; | |
| 52 return end_.buffered_bytes - start_.buffered_bytes; | |
| 53 } | |
| 54 | |
| 55 bool DownloadRateMonitor::Sample::is_null() const { | |
| 56 return start_.timestamp.is_null() && end_.timestamp.is_null(); | |
| 57 } | |
| 58 | |
| 59 void DownloadRateMonitor::Sample::Reset() { | |
| 60 start_ = BufferingPoint(); | |
| 61 end_ = BufferingPoint(); | |
| 62 } | |
| 63 | |
| 64 void DownloadRateMonitor::Sample::RestartAtEndBufferingPoint() { | |
| 65 start_ = end_; | |
| 66 end_ = BufferingPoint(); | |
| 67 } | |
| 68 | |
| 69 DownloadRateMonitor::DownloadRateMonitor() { | |
| 70 Reset(); | |
| 71 } | |
| 72 | |
| 73 void DownloadRateMonitor::Start( | |
| 74 const CanPlayThroughCB& canplaythrough_cb, int media_bitrate) { | |
| 75 DCHECK(stopped_); | |
| 76 canplaythrough_cb_ = canplaythrough_cb; | |
| 77 stopped_ = false; | |
| 78 bitrate_ = media_bitrate; | |
| 79 current_sample_.Reset(); | |
| 80 buffered_bytes_ = 0; | |
| 81 | |
| 82 NotifyCanPlayThroughIfNeeded(); | |
| 83 } | |
| 84 | |
| 85 void DownloadRateMonitor::SetBufferedBytes( | |
| 86 int64 buffered_bytes, const base::Time& timestamp) { | |
| 87 if (stopped_) | |
| 88 return; | |
| 89 | |
| 90 is_downloading_data_ = true; | |
| 91 | |
| 92 // Check monotonically nondecreasing constraint. | |
| 93 if (current_sample_.is_null()) | |
| 94 DCHECK(timestamp >= current_sample_.end().timestamp); | |
| 95 else if (!sample_window_.empty()) | |
| 96 DCHECK(timestamp >= sample_window_.back().end().timestamp); | |
| 97 | |
| 98 // If the buffer level has dropped, invalidate current sample. | |
| 99 if (buffered_bytes < buffered_bytes_) | |
| 100 current_sample_.Reset(); | |
| 101 buffered_bytes_ = buffered_bytes; | |
| 102 | |
| 103 BufferingPoint latest_point = { buffered_bytes, timestamp }; | |
| 104 if (current_sample_.is_null()) | |
| 105 current_sample_ = Sample(latest_point, latest_point); | |
| 106 else | |
| 107 current_sample_.set_end(latest_point); | |
| 108 | |
| 109 UpdateSampleWindow(); | |
| 110 NotifyCanPlayThroughIfNeeded(); | |
| 111 } | |
| 112 | |
| 113 void DownloadRateMonitor::SetNetworkActivity(bool is_downloading_data) { | |
| 114 if (is_downloading_data == is_downloading_data_) | |
| 115 return; | |
| 116 // Invalidate the current sample if downloading is going from start to stopped | |
| 117 // or vice versa. | |
| 118 current_sample_.Reset(); | |
| 119 is_downloading_data_ = is_downloading_data; | |
| 120 } | |
| 121 | |
| 122 void DownloadRateMonitor::Stop() { | |
| 123 stopped_ = true; | |
| 124 current_sample_.Reset(); | |
| 125 buffered_bytes_ = 0; | |
| 126 } | |
| 127 | |
| 128 void DownloadRateMonitor::Reset() { | |
| 129 canplaythrough_cb_.Reset(); | |
| 130 has_notified_can_play_through_ = false; | |
| 131 current_sample_.Reset(); | |
| 132 sample_window_.clear(); | |
| 133 is_downloading_data_ = false; | |
| 134 total_bytes_ = 0; | |
| 135 buffered_bytes_ = 0; | |
| 136 loaded_ = false; | |
| 137 bitrate_ = 0; | |
| 138 stopped_ = true; | |
| 139 } | |
| 140 | |
| 141 int64 DownloadRateMonitor::bytes_downloaded_in_window() const { | |
| 142 // There are max |kNumberOfSamples| so we might as well recompute each time. | |
| 143 int64 total = 0; | |
| 144 for (size_t i = 0; i < sample_window_.size(); ++i) | |
| 145 total += sample_window_[i].bytes_downloaded(); | |
| 146 return total; | |
| 147 } | |
| 148 | |
| 149 float DownloadRateMonitor::seconds_elapsed_in_window() const { | |
| 150 // There are max |kNumberOfSamples| so we might as well recompute each time. | |
| 151 float total = 0.0; | |
| 152 for (size_t i = 0; i < sample_window_.size(); ++i) | |
| 153 total += sample_window_[i].seconds_elapsed(); | |
| 154 return total; | |
| 155 } | |
| 156 | |
| 157 void DownloadRateMonitor::UpdateSampleWindow() { | |
| 158 if (current_sample_.seconds_elapsed() < kSamplePeriod) | |
| 159 return; | |
| 160 | |
| 161 // Add latest sample and remove oldest sample. | |
| 162 sample_window_.push_back(current_sample_); | |
| 163 if (sample_window_.size() > kNumberOfSamples) | |
| 164 sample_window_.pop_front(); | |
| 165 | |
| 166 // Prepare for next measurement. | |
| 167 current_sample_.RestartAtEndBufferingPoint(); | |
| 168 } | |
| 169 | |
| 170 float DownloadRateMonitor::ApproximateDownloadByteRate() const { | |
| 171 // Compute and return the average download byte rate from within the sample | |
| 172 // window. | |
| 173 // XXX: If the data is arriving really bursty-ly, say getting a big chunk | |
| 174 // of data every 5 seconds, then with this implementation it will take 25 | |
| 175 // seconds until bitrate is calculated ... is that ok? | |
| 176 if (sample_window_.size() >= kNumberOfSamples) { | |
| 177 DCHECK(seconds_elapsed_in_window() > 0.0); | |
| 178 if (seconds_elapsed_in_window() > 0.0) | |
|
acolwell GONE FROM CHROMIUM
2011/11/11 21:05:39
remove DCHECK or if depending on whether you think
vrk (LEFT CHROMIUM)
2011/11/15 16:55:16
Done.
| |
| 179 return bytes_downloaded_in_window() / seconds_elapsed_in_window(); | |
| 180 } | |
| 181 | |
| 182 // Could not determine approximate download byte rate. | |
| 183 return -1.0; | |
| 184 } | |
| 185 | |
| 186 bool DownloadRateMonitor::ShouldNotifyCanPlayThrough() { | |
| 187 // A stream with |total_bytes_| == 0 means the size of the stream cannot be | |
| 188 // determined or is undefined in the streaming case. In these scenarios, | |
| 189 // CanPlayThrough should never fire. | |
| 190 if (has_notified_can_play_through_ || total_bytes_ == 0) | |
| 191 return false; | |
| 192 | |
| 193 // If the media is from a local file (|loaded_|) or if all bytes are | |
| 194 // buffered, fire CanPlayThrough. | |
| 195 if (loaded_ || buffered_bytes_ == total_bytes_) | |
| 196 return true; | |
| 197 | |
| 198 // Cannot approximate when the media can play through if bitrate is unknown. | |
| 199 if (bitrate_ <= 0) | |
| 200 return false; | |
| 201 | |
| 202 float bytes_needed_per_second = bitrate_ / 8; | |
| 203 float download_rate = ApproximateDownloadByteRate(); | |
| 204 | |
| 205 // If we are downloading at or faster than the media's bitrate, then we can | |
| 206 // play through to the end of the media without stopping to buffer. | |
| 207 if (download_rate > 0) | |
| 208 return download_rate > bytes_needed_per_second; | |
| 209 | |
| 210 // If download rate is unknown, it may be because the media is being | |
| 211 // downloaded so fast that it cannot collect an adequate number of samples | |
| 212 // before the download gets deferred. | |
| 213 // | |
| 214 // To catch this case, we also look at how much data is being downloaded | |
| 215 // immediately after the download begins. | |
| 216 if (sample_window_.size() < kNumberOfSamples) { | |
| 217 int64 bytes_downloaded_since_start = | |
| 218 bytes_downloaded_in_window() + current_sample_.bytes_downloaded(); | |
| 219 float seconds_elapsed_since_start = | |
| 220 seconds_elapsed_in_window() + current_sample_.seconds_elapsed(); | |
| 221 | |
| 222 // If we download 4 seconds of data in less than 2 seconds of time, we're | |
| 223 // probably downloading at a fast enough rate that we can play through. | |
| 224 // This is an arbitrary metric that will likely need tweaking. | |
| 225 if (seconds_elapsed_since_start < 2.0 && | |
| 226 bytes_downloaded_since_start > 4.0 * bytes_needed_per_second) { | |
| 227 return true; | |
| 228 } | |
| 229 } | |
| 230 | |
| 231 return false; | |
| 232 } | |
| 233 | |
| 234 void DownloadRateMonitor::NotifyCanPlayThroughIfNeeded() { | |
| 235 if (ShouldNotifyCanPlayThrough() && !canplaythrough_cb_.is_null()) { | |
| 236 canplaythrough_cb_.Run(); | |
| 237 has_notified_can_play_through_ = true; | |
| 238 } | |
| 239 } | |
| 240 | |
| 241 } // namespace media | |
| OLD | NEW |