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Issue 10702050: Add SincResampler ported from WebKit. (Closed) Base URL: svn://svn.chromium.org/chrome/trunk/src
Patch Set: Fixes. Created 8 years, 5 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 // Input buffer layout, dividing the total buffer into regions (r0_ - r5_):
6 //
7 // |----------------|-----------------------------------------|----------------|
8 //
9 // kBlockSize + kKernelSize / 2
10 // <--------------------------------------------------------->
11 // r0_
12 //
13 // kKernelSize / 2 kKernelSize / 2 kKernelSize / 2 kKernelSize / 2
14 // <---------------> <---------------> <---------------> <--------------->
15 // r1_ r2_ r3_ r4_
16 //
17 // kBlockSize
18 // <--------------------------------------->
19 // r5_
20 //
21 // The algorithm:
22 //
23 // 1) Consume input frames into r0_ (r1_ is zero-initialized).
24 // 2) Position kernel centered at start of r0_ (r2_) and generate output frames
25 // until kernel is centered at start of r4_ or we've finished generating all
26 // the output frames.
27 // 3) Copy r3_ to r1_ and r4_ to r2_.
28 // 4) Consume input frames into r5_ (zero-pad if we run out of input).
29 // 5) Goto (2) until all of input is consumed.
30 //
31 // Note: we're glossing over how the sub-sample handling works with
32 // |virtual_source_idx_|, etc.
33
34 // MSVC++ requires this to be set before any other includes to get M_PI.
35 #define _USE_MATH_DEFINES
36
37 #include "media/base/sinc_resampler.h"
38
39 #include <cmath>
40 #include <limits>
41
42 #include "base/logging.h"
43
44 namespace media {
45
46 enum {
47 // The kernel size can be adjusted for quality (higher is better) at the
48 // expense of performance. Must be an even number.
49 // TODO(dalecurtis): Test performance to see if we can jack this up to 64+.
50 kKernelSize = 32,
51
52 // The number of destination frames generated per processing pass. Affects
53 // how often and for how much SincResampler calls back for input. Must be
54 // greater than kKernelSize.
55 kBlockSize = 512,
56
57 // The kernel offset count is used for interpolation and is the number of
58 // sub-sample kernel shifts. Can be adjusted for quality (higher is better)
59 // at the expense of allocating more memory.
60 kKernelOffsetCount = 32,
61 kKernelStorageSize = kKernelSize * (kKernelOffsetCount + 1),
62
63 // The size (in samples) of the internal buffer used by the resampler.
64 kBufferSize = kBlockSize + kKernelSize
65 };
66
67 SincResampler::SincResampler(double io_sample_rate_ratio, const ReadCB& read_cb)
68 : io_sample_rate_ratio_(io_sample_rate_ratio),
69 virtual_source_idx_(0),
70 buffer_primed_(false),
71 read_cb_(read_cb),
72 // TODO(dalecurtis): When we switch to AVX/SSE optimization, we'll need to
73 // allocate with 32-byte alignment and ensure they're sized % 32 bytes.
74 kernel_storage_(new float[kKernelStorageSize]),
75 input_buffer_(new float[kBufferSize]),
76 // Setup various region pointers in the buffer (see diagram above).
77 r0_(input_buffer_.get() + kKernelSize / 2),
78 r1_(input_buffer_.get()),
79 r2_(r0_),
80 r3_(r0_ + kBlockSize - kKernelSize / 2),
81 r4_(r0_ + kBlockSize),
82 r5_(r0_ + kKernelSize / 2) {
83 DCHECK_EQ(kKernelSize % 2, 0) << "kKernelSize must be even!";
84 DCHECK_GT(kBlockSize, kKernelSize)
85 << "kBlockSize must be greater than kKernelSize!";
86 // Basic sanity checks to ensure buffer regions are laid out correctly:
87 // r0_ and r2_ should always be the same position.
88 DCHECK_EQ(r0_, r2_);
89 // r1_ at the beginning of the buffer.
90 DCHECK_EQ(r1_, input_buffer_.get());
91 // r1_ left of r2_, r2_ left of r5_ and r1_, r2_ size correct.
92 DCHECK_EQ(r2_ - r1_, r5_ - r2_);
93 // r3_ left of r4_, r5_ left of r0_ and r3_ size correct.
94 DCHECK_EQ(r4_ - r3_, r5_ - r0_);
95 // r3_, r4_ size correct and r4_ at the end of the buffer.
96 DCHECK_EQ(r4_ + (r4_ - r3_), r1_ + kBufferSize);
97 // r5_ size correct and at the end of the buffer.
98 DCHECK_EQ(r5_ + kBlockSize, r1_ + kBufferSize);
99
100 memset(kernel_storage_.get(), 0,
101 sizeof(*kernel_storage_.get()) * kKernelStorageSize);
102 memset(input_buffer_.get(), 0, sizeof(*input_buffer_.get()) * kBufferSize);
103
104 InitializeKernel();
105 }
106
107 SincResampler::~SincResampler() {}
108
109 void SincResampler::InitializeKernel() {
110 // Blackman window parameters.
111 static const double kAlpha = 0.16;
112 static const double kA0 = 0.5 * (1.0 - kAlpha);
113 static const double kA1 = 0.5;
114 static const double kA2 = 0.5 * kAlpha;
115
116 // |sinc_scale_factor| is basically the normalized cutoff frequency of the
117 // low-pass filter.
118 double sinc_scale_factor =
119 io_sample_rate_ratio_ > 1.0 ? 1.0 / io_sample_rate_ratio_ : 1.0;
120
121 // The sinc function is an idealized brick-wall filter, but since we're
122 // windowing it the transition from pass to stop does not happen right away.
123 // So we should adjust the lowpass filter cutoff slightly downward to avoid
124 // some aliasing at the very high-end.
125 // TODO(crogers): this value is empirical and to be more exact should vary
126 // depending on kKernelSize.
127 sinc_scale_factor *= 0.9;
128
129 // Generates a set of windowed sinc() kernels.
130 // We generate a range of sub-sample offsets from 0.0 to 1.0.
131 for (int offset_idx = 0; offset_idx <= kKernelOffsetCount; ++offset_idx) {
132 double subsample_offset =
133 static_cast<double>(offset_idx) / kKernelOffsetCount;
134
135 for (int i = 0; i < kKernelSize; ++i) {
136 // Compute the sinc with offset.
137 double s =
138 sinc_scale_factor * M_PI * (i - kKernelSize / 2 - subsample_offset);
139 double sinc = (!s ? 1.0 : sin(s) / s) * sinc_scale_factor;
140
141 // Compute Blackman window, matching the offset of the sinc().
142 double x = (i - subsample_offset) / kKernelSize;
143 double window = kA0 - kA1 * cos(2.0 * M_PI * x) + kA2
144 * cos(4.0 * M_PI * x);
145
146 // Window the sinc() function and store at the correct offset.
147 kernel_storage_[i + offset_idx * kKernelSize] = sinc * window;
148 }
149 }
150 }
151
152 void SincResampler::Resample(float* destination, int frames) {
153 int remaining_frames = frames;
154
155 // Step (1) -- Prime the input buffer at the start of the input stream.
156 if (!buffer_primed_) {
157 read_cb_.Run(r0_, kBlockSize + kKernelSize / 2);
158 buffer_primed_ = true;
159 }
160
161 // Step (2) -- Resample!
162 while (remaining_frames) {
163 while (virtual_source_idx_ < kBlockSize) {
164 // |virtual_source_idx_| lies in between two kernel offsets so figure out
165 // what they are.
166 int source_idx = static_cast<int>(virtual_source_idx_);
167 double subsample_remainder = virtual_source_idx_ - source_idx;
168
169 double virtual_offset_idx = subsample_remainder * kKernelOffsetCount;
170 int offset_idx = static_cast<int>(virtual_offset_idx);
171
172 float* k1 = kernel_storage_.get() + offset_idx * kKernelSize;
173 float* k2 = k1 + kKernelSize;
174
175 // Initialize input pointer based on quantized |virtual_source_idx_|.
176 float* input_ptr = r1_ + source_idx;
177
178 // We'll compute "convolutions" for the two kernels which straddle
179 // |virtual_source_idx_|.
180 float sum1 = 0;
181 float sum2 = 0;
182
183 // Figure out how much to weight each kernel's "convolution".
184 double kernel_interpolation_factor = virtual_offset_idx - offset_idx;
185
186 // Generate a single output sample.
187 int n = kKernelSize;
188 float input;
189 // TODO(dalecurtis): For initial commit, I've ripped out all the SSE
190 // optimizations, these definitely need to go back in before release.
191 while (n--) {
192 input = *input_ptr++;
193 sum1 += input * *k1++;
194 sum2 += input * *k2++;
195 }
196
197 // Linearly interpolate the two "convolutions".
198 double result = (1.0 - kernel_interpolation_factor) * sum1
199 + kernel_interpolation_factor * sum2;
200
201 *destination++ = result;
202
203 // Advance the virtual index.
204 virtual_source_idx_ += io_sample_rate_ratio_;
205
206 if (!--remaining_frames)
207 return;
208 }
209
210 // Wrap back around to the start. Reset to zero if the delta is below
211 // machine limits; allowing us to cap accumulated error over time.
212 virtual_source_idx_ -= kBlockSize;
213 if (virtual_source_idx_ < std::numeric_limits<double>::epsilon())
214 virtual_source_idx_ = 0;
215
216 // Step (3) Copy r3_ to r1_ and r4_ to r2_.
217 // This wraps the last input frames back to the start of the buffer.
218 memcpy(r1_, r3_, sizeof(*input_buffer_.get()) * (kKernelSize / 2));
219 memcpy(r2_, r4_, sizeof(*input_buffer_.get()) * (kKernelSize / 2));
220
221 // Step (4)
222 // Refresh the buffer with more input.
223 read_cb_.Run(r5_, kBlockSize);
224 }
225 }
226
227 int SincResampler::ChunkSize() {
228 return kBlockSize / io_sample_rate_ratio_;
229 }
230
231 } // namespace media
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