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Issue 11150034: Add support for channel transforms. (Closed) Base URL: svn://svn.chromium.org/chrome/trunk/src
Patch Set: Fix try failures. Comments. Created 8 years, 2 months ago
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1 // Copyright (c) 2012 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 // MSVC++ requires this to be set before any other includes to get M_SQRT1_2.
6 #define _USE_MATH_DEFINES
7
8 #include "media/base/channel_mixer.h"
9
10 #include <algorithm>
11 #include <cmath>
12
13 #include "base/logging.h"
14 #include "media/base/audio_bus.h"
15 #include "media/base/vector_math.h"
16
17 namespace media {
18
19 // Default scale factor for mixing two channels together. We use a different
20 // value for stereo -> mono and mono -> stereo mixes.
21 static const float kDefaultScale = static_cast<float>(M_SQRT1_2);
22
23 static int ValidateLayout(ChannelLayout layout) {
24 CHECK_NE(layout, CHANNEL_LAYOUT_NONE);
25 CHECK_NE(layout, CHANNEL_LAYOUT_UNSUPPORTED);
26 CHECK_NE(layout, CHANNEL_LAYOUT_MAX);
27
28 // Verify there's at least one channel. Should always be true here by virtue
29 // of not being one of the invalid layouts, but lets double check to be sure.
30 int channel_count = ChannelLayoutToChannelCount(layout);
31 DCHECK_GT(channel_count, 0);
32
33 // If we have more than one channel, verify a symmetric layout for sanity.
34 // The unit test will verify all possible layouts, so this can be a DCHECK.
35 // Symmetry allows simplifying the matrix building code by allowing us to
36 // assume that if one channel of a pair exists, the other will too.
37 if (channel_count > 1) {
38 DCHECK((ChannelOrder(layout, LEFT) >= 0 &&
39 ChannelOrder(layout, RIGHT) >= 0) ||
40 (ChannelOrder(layout, SIDE_LEFT) >= 0 &&
41 ChannelOrder(layout, SIDE_RIGHT) >= 0) ||
42 (ChannelOrder(layout, BACK_LEFT) >= 0 &&
43 ChannelOrder(layout, BACK_RIGHT) >= 0) ||
44 (ChannelOrder(layout, LEFT_OF_CENTER) >= 0 &&
45 ChannelOrder(layout, RIGHT_OF_CENTER) >= 0))
46 << "Non-symmetric channel layout encountered.";
47 } else {
48 DCHECK_EQ(layout, CHANNEL_LAYOUT_MONO);
49 }
50
51 return channel_count;
52 }
53
54 ChannelMixer::ChannelMixer(ChannelLayout input, ChannelLayout output)
55 : input_layout_(input),
56 output_layout_(output),
57 remapping_(false) {
58 // Stereo down mix should never be the output layout.
59 CHECK_NE(output_layout_, CHANNEL_LAYOUT_STEREO_DOWNMIX);
60
61 int input_channels = ValidateLayout(input_layout_);
62 int output_channels = ValidateLayout(output_layout_);
63
64 // Size out the initial matrix.
65 matrix_.reserve(output_channels);
66 for (int output_ch = 0; output_ch < output_channels; ++output_ch)
67 matrix_.push_back(std::vector<float>(input_channels, 0));
68
69 // Route matching channels and figure out which ones aren't accounted for.
70 for (Channels ch = LEFT; ch < CHANNELS_MAX;
71 ch = static_cast<Channels>(ch + 1)) {
72 int input_ch_index = ChannelOrder(input_layout_, ch);
73 int output_ch_index = ChannelOrder(output_layout_, ch);
74
75 if (input_ch_index < 0)
76 continue;
77
78 if (output_ch_index < 0) {
79 unaccounted_inputs_.push_back(ch);
80 continue;
81 }
82
83 DCHECK_LT(static_cast<size_t>(output_ch_index), matrix_.size());
84 DCHECK_LT(static_cast<size_t>(input_ch_index),
85 matrix_[output_ch_index].size());
86 matrix_[output_ch_index][input_ch_index] = 1;
87 }
88
89 // If all input channels are accounted for, there's nothing left to do.
90 if (unaccounted_inputs_.empty()) {
91 // Since all output channels map directly to inputs we can optimize.
92 remapping_ = true;
93 return;
94 }
95
96 // Mix front LR into center.
97 if (IsUnaccounted(LEFT)) {
98 // When down mixing to mono from stereo, we need to be careful of full scale
99 // stereo mixes. Scaling by 1 / sqrt(2) here will likely lead to clipping
100 // so we use 1 / 2 instead.
101 float scale = (output == CHANNEL_LAYOUT_MONO && input_channels == 2) ?
102 0.5 : kDefaultScale;
103 Mix(LEFT, CENTER, scale);
104 Mix(RIGHT, CENTER, scale);
105 }
106
107 // Mix center into front LR.
108 if (IsUnaccounted(CENTER)) {
109 // When up mixing from mono, just do a copy to front LR.
110 float scale = (input == CHANNEL_LAYOUT_MONO) ? 1 : kDefaultScale;
111 MixWithoutAccounting(CENTER, LEFT, scale);
112 Mix(CENTER, RIGHT, scale);
113 }
114
115 // Mix back LR into: side LR || back center || front LR || front center.
116 if (IsUnaccounted(BACK_LEFT)) {
117 if (HasOutputChannel(SIDE_LEFT)) {
118 // If we have side LR, mix back LR into side LR, but instead if the input
119 // doesn't have side LR (but output does) copy back LR to side LR.
120 float scale = HasInputChannel(SIDE_LEFT) ? kDefaultScale : 1;
121 Mix(BACK_LEFT, SIDE_LEFT, scale);
122 Mix(BACK_RIGHT, SIDE_RIGHT, scale);
123 } else if (HasOutputChannel(BACK_CENTER)) {
124 // Mix back LR into back center.
125 Mix(BACK_LEFT, BACK_CENTER, kDefaultScale);
126 Mix(BACK_RIGHT, BACK_CENTER, kDefaultScale);
127 } else if (output > CHANNEL_LAYOUT_MONO) {
128 // Mix back LR into front LR.
129 Mix(BACK_LEFT, LEFT, kDefaultScale);
130 Mix(BACK_RIGHT, RIGHT, kDefaultScale);
131 } else {
132 // Mix back LR into front center.
133 Mix(BACK_LEFT, CENTER, kDefaultScale);
134 Mix(BACK_RIGHT, CENTER, kDefaultScale);
135 }
136 }
137
138 // Mix side LR into: back LR || back center || front LR || front center.
139 if (IsUnaccounted(SIDE_LEFT)) {
140 if (HasOutputChannel(BACK_LEFT)) {
141 // If we have back LR, mix side LR into back LR, but instead if the input
142 // doesn't have back LR (but output does) copy side LR to back LR.
143 float scale = HasInputChannel(BACK_LEFT) ? kDefaultScale : 1;
144 Mix(SIDE_LEFT, BACK_LEFT, scale);
145 Mix(SIDE_RIGHT, BACK_RIGHT, scale);
146 } else if (HasOutputChannel(BACK_CENTER)) {
147 // Mix side LR into back center.
148 Mix(SIDE_LEFT, BACK_CENTER, kDefaultScale);
149 Mix(SIDE_RIGHT, BACK_CENTER, kDefaultScale);
150 } else if (output > CHANNEL_LAYOUT_MONO) {
151 // Mix side LR into front LR.
152 Mix(SIDE_LEFT, LEFT, kDefaultScale);
153 Mix(SIDE_RIGHT, RIGHT, kDefaultScale);
154 } else {
155 // Mix side LR into front center.
156 Mix(SIDE_LEFT, CENTER, kDefaultScale);
157 Mix(SIDE_RIGHT, CENTER, kDefaultScale);
158 }
159 }
160
161 // Mix back center into: back LR || side LR || front LR || front center.
162 if (IsUnaccounted(BACK_CENTER)) {
163 if (HasOutputChannel(BACK_LEFT)) {
164 // Mix back center into back LR.
165 MixWithoutAccounting(BACK_CENTER, BACK_LEFT, kDefaultScale);
166 Mix(BACK_CENTER, BACK_RIGHT, kDefaultScale);
167 } else if (HasOutputChannel(SIDE_LEFT)) {
168 // Mix back center into side LR.
169 MixWithoutAccounting(BACK_CENTER, SIDE_LEFT, kDefaultScale);
170 Mix(BACK_CENTER, SIDE_RIGHT, kDefaultScale);
171 } else if (output > CHANNEL_LAYOUT_MONO) {
172 // Mix back center into front LR.
173 // TODO(dalecurtis): Not sure about these values?
174 MixWithoutAccounting(BACK_CENTER, LEFT, kDefaultScale * kDefaultScale);
175 Mix(BACK_CENTER, RIGHT, kDefaultScale * kDefaultScale);
176 } else {
177 // Mix back center into front center.
178 // TODO(dalecurtis): Not sure about these values?
179 Mix(BACK_CENTER, CENTER, kDefaultScale * kDefaultScale);
180 }
181 }
182
183 // Mix LR of center into: front center || front LR.
184 if (IsUnaccounted(LEFT_OF_CENTER)) {
185 if (HasOutputChannel(CENTER)) {
186 // Mix LR of center into front center.
187 Mix(LEFT_OF_CENTER, CENTER, kDefaultScale);
188 Mix(RIGHT_OF_CENTER, CENTER, kDefaultScale);
189 } else {
190 // Mix LR of center into front LR.
191 Mix(LEFT_OF_CENTER, LEFT, kDefaultScale);
192 Mix(RIGHT_OF_CENTER, RIGHT, kDefaultScale);
193 }
194 }
195
196 // Mix LFE into: front LR || front center.
197 if (IsUnaccounted(LFE)) {
198 if (!HasOutputChannel(CENTER)) {
199 // Mix LFE into front LR.
200 MixWithoutAccounting(LFE, LEFT, kDefaultScale);
201 Mix(LFE, RIGHT, kDefaultScale);
202 } else {
203 // Mix LFE into front center.
204 Mix(LFE, CENTER, kDefaultScale);
205 }
206 }
207
208 // All channels should now be accounted for.
209 DCHECK(unaccounted_inputs_.empty());
210
211 // See if the output |matrix_| is simply a remapping matrix. If each input
212 // channel maps to a single output channel we can simply remap. Doing this
213 // programmatically is less fragile than logic checks on channel mappings.
214 for (int output_ch = 0; output_ch < output_channels; ++output_ch) {
215 int input_mappings = 0;
216 for (int input_ch = 0; input_ch < input_channels; ++input_ch) {
217 // We can only remap if each row contains a single scale of 1.
scherkus (not reviewing) 2012/10/18 16:50:20 whoops I meant to negate my comment in other word
DaleCurtis 2012/10/18 20:42:20 Done.
218 if (matrix_[output_ch][input_ch] != 1 || ++input_mappings > 1)
219 return;
220 }
221 }
222
223 // If we've gotten here, |matrix_| is simply a remapping.
224 remapping_ = true;
225 }
226
227 ChannelMixer::~ChannelMixer() {}
228
229 void ChannelMixer::Rematrix(const AudioBus* input, AudioBus* output) {
230 CHECK_EQ(matrix_.size(), static_cast<size_t>(output->channels()));
231 CHECK_EQ(matrix_[0].size(), static_cast<size_t>(input->channels()));
232 CHECK_EQ(input->frames(), output->frames());
233
234 // Zero initialize |output| so we're accumulating from zero.
235 output->Zero();
236
237 // If we're just remapping we can simply copy the correct input to output.
238 if (remapping_) {
239 for (int output_ch = 0; output_ch < output->channels(); ++output_ch) {
240 for (int input_ch = 0; input_ch < input->channels(); ++input_ch) {
241 float scale = matrix_[output_ch][input_ch];
242 if (scale > 0) {
243 DCHECK_EQ(scale, 1.0f);
244 memcpy(output->channel(output_ch), input->channel(input_ch),
245 sizeof(*output->channel(output_ch)) * output->frames());
246 break;
247 }
248 }
249 }
250 return;
251 }
252
253 for (int output_ch = 0; output_ch < output->channels(); ++output_ch) {
254 for (int input_ch = 0; input_ch < input->channels(); ++input_ch) {
255 float scale = matrix_[output_ch][input_ch];
256 // Scale should always be positive. Don't bother scaling by zero.
257 DCHECK_GE(scale, 0);
258 if (scale > 0) {
259 vector_math::FMAC(input->channel(input_ch), scale, output->frames(),
260 output->channel(output_ch));
261 }
262 }
263 }
264 }
265
266 void ChannelMixer::AccountFor(Channels ch) {
267 unaccounted_inputs_.erase(std::find(
268 unaccounted_inputs_.begin(), unaccounted_inputs_.end(), ch));
269 }
270
271 bool ChannelMixer::IsUnaccounted(Channels ch) {
272 return std::find(unaccounted_inputs_.begin(), unaccounted_inputs_.end(),
273 ch) != unaccounted_inputs_.end();
274 }
275
276 bool ChannelMixer::HasInputChannel(Channels ch) {
277 return ChannelOrder(input_layout_, ch) >= 0;
278 }
279
280 bool ChannelMixer::HasOutputChannel(Channels ch) {
281 return ChannelOrder(output_layout_, ch) >= 0;
282 }
283
284 void ChannelMixer::Mix(Channels input_ch, Channels output_ch, float scale) {
285 MixWithoutAccounting(input_ch, output_ch, scale);
286 AccountFor(input_ch);
287 }
288
289 void ChannelMixer::MixWithoutAccounting(Channels input_ch, Channels output_ch,
290 float scale) {
291 int input_ch_index = ChannelOrder(input_layout_, input_ch);
292 int output_ch_index = ChannelOrder(output_layout_, output_ch);
293
294 DCHECK(IsUnaccounted(input_ch));
295 DCHECK_GE(input_ch_index, 0);
296 DCHECK_GE(output_ch_index, 0);
297
298 matrix_[output_ch_index][input_ch_index] += scale;
299 }
300
301 } // namespace media
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