KRDSP abstraction in progress
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@@ -220,9 +220,9 @@ void KRAudioManager::renderReverbImpulseResponse(int impulse_response_offset, in
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int fft_size = frame_count * 2;
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int fft_size_log2 = frame_count_log2 + 1;
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SplitComplex reverb_sample_data_complex = m_workspace[0];
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SplitComplex impulse_block_data_complex = m_workspace[1];
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SplitComplex conv_data_complex = m_workspace[2];
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KRDSP::SplitComplex reverb_sample_data_complex = m_workspace[0];
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KRDSP::SplitComplex impulse_block_data_complex = m_workspace[1];
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KRDSP::SplitComplex conv_data_complex = m_workspace[2];
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int reverb_offset = (m_reverb_input_next_sample + KRENGINE_AUDIO_BLOCK_LENGTH - frame_count);
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if(reverb_offset < 0) {
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@@ -274,7 +274,9 @@ void KRAudioManager::renderReverbImpulseResponse(int impulse_response_offset, in
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vDSP_fft_zip(m_fft_setup[fft_size_log2 - KRENGINE_AUDIO_BLOCK_LOG2N], &impulse_block_data_complex, 1, fft_size_log2, kFFTDirection_Forward);
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vDSP_zvmul(&reverb_sample_data_complex, 1, &impulse_block_data_complex, 1, &conv_data_complex, 1, fft_size, 1);
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vDSP_zvmul(&reverb_sample_data_complex, 1,
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&impulse_block_data_complex, 1,
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&conv_data_complex, 1, fft_size, 1);
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vDSP_fft_zip(m_fft_setup[fft_size_log2 - KRENGINE_AUDIO_BLOCK_LOG2N], &conv_data_complex, 1, fft_size_log2, kFFTDirection_Inverse);
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KRDSP::Scale(conv_data_complex.realp, scale, fft_size);
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@@ -828,7 +830,7 @@ void KRAudioManager::initHRTF()
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KRVector2 pos = *itr;
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KRAudioSample *sample = getHRTFSample(pos);
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for(int channel=0; channel < 2; channel++) {
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SplitComplex spectral;
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KRDSP::SplitComplex spectral;
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spectral.realp = m_hrtf_data + sample_index * 1024 + channel * 512;
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spectral.imagp = m_hrtf_data + sample_index * 1024 + channel * 512 + 256;
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sample->sample(0, 128, channel, spectral.realp, 1.0f, false);
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@@ -851,7 +853,7 @@ KRAudioSample *KRAudioManager::getHRTFSample(const KRVector2 &hrtf_dir)
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return get(szName);
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}
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KRAudioManager::SplitComplex KRAudioManager::getHRTFSpectral(const KRVector2 &hrtf_dir, const int channel)
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KRDSP::SplitComplex KRAudioManager::getHRTFSpectral(const KRVector2 &hrtf_dir, const int channel)
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{
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KRVector2 dir = hrtf_dir;
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int sample_channel = channel;
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@@ -1582,10 +1584,10 @@ void KRAudioManager::renderAmbient()
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void KRAudioManager::renderHRTF()
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{
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SplitComplex *hrtf_accum = m_workspace + 0;
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SplitComplex *hrtf_impulse = m_workspace + 1;
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SplitComplex *hrtf_convolved = m_workspace + 1; // We only need hrtf_impulse or hrtf_convolved at once; we can recycle the buffer
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SplitComplex *hrtf_sample = m_workspace + 2;
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KRDSP::SplitComplex *hrtf_accum = m_workspace + 0;
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KRDSP::SplitComplex *hrtf_impulse = m_workspace + 1;
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KRDSP::SplitComplex *hrtf_convolved = m_workspace + 1; // We only need hrtf_impulse or hrtf_convolved at once; we can recycle the buffer
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KRDSP::SplitComplex *hrtf_sample = m_workspace + 2;
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int impulse_response_channels = 2;
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int hrtf_frames = 128;
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@@ -1663,7 +1665,7 @@ void KRAudioManager::renderHRTF()
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for(int i=0; i < 1 /*4 */; i++) {
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if(mix[i] > 0.0f) {
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SplitComplex hrtf_impulse_sample = getHRTFSpectral(dir[i], channel);
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KRDSP::SplitComplex hrtf_impulse_sample = getHRTFSpectral(dir[i], channel);
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KRDSP::ScaleCopy(hrtf_impulse_sample.realp, mix[i], hrtf_impulse->realp, fft_size);
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KRDSP::ScaleCopy(hrtf_impulse_sample.imagp, mix[i], hrtf_impulse->imagp, fft_size);
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vDSP_zvadd(hrtf_impulse, 1, hrtf_accum, 1, hrtf_accum, 1, fft_size);
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@@ -1676,9 +1678,16 @@ void KRAudioManager::renderHRTF()
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float scale = 0.5f / fft_size;
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vDSP_fft_zip(m_fft_setup[fft_size_log2 - KRENGINE_AUDIO_BLOCK_LOG2N], hrtf_sample, 1, fft_size_log2, kFFTDirection_Forward);
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vDSP_zvmul(hrtf_sample, 1, &hrtf_spectral, 1, hrtf_convolved, 1, fft_size, 1);
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vDSP_fft_zip(m_fft_setup[fft_size_log2 - KRENGINE_AUDIO_BLOCK_LOG2N], hrtf_convolved, 1, fft_size_log2, kFFTDirection_Inverse);
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vDSP_fft_zip(m_fft_setup[fft_size_log2 - KRENGINE_AUDIO_BLOCK_LOG2N],
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hrtf_sample, 1,
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fft_size_log2, kFFTDirection_Forward);
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vDSP_zvmul(hrtf_sample, 1,
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&hrtf_spectral, 1,
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hrtf_convolved, 1,
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fft_size, 1);
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vDSP_fft_zip(m_fft_setup[fft_size_log2 - KRENGINE_AUDIO_BLOCK_LOG2N],
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hrtf_convolved, 1,
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fft_size_log2, kFFTDirection_Inverse);
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KRDSP::Scale(hrtf_convolved->realp, scale, fft_size);
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int output_offset = (m_output_accumulation_block_start) % (KRENGINE_REVERB_MAX_SAMPLES * KRENGINE_MAX_OUTPUT_CHANNELS);
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@@ -216,7 +216,7 @@ private:
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int m_output_sample;
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float *m_workspace_data;
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SplitComplex m_workspace[3];
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KRDSP::SplitComplex m_workspace[3];
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float *getBlockAddress(int block_offset);
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void renderBlock();
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@@ -229,13 +229,12 @@ private:
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std::vector<KRVector2> m_hrtf_sample_locations;
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float *m_hrtf_data;
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unordered_map<KRVector2, SplitComplex> m_hrtf_spectral[2];
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unordered_map<KRVector2, KRDSP::SplitComplex> m_hrtf_spectral[2];
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KRVector2 getNearestHRTFSample(const KRVector2 &dir);
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void getHRTFMix(const KRVector2 &dir, KRVector2 &hrtf1, KRVector2 &hrtf2, KRVector2 &hrtf3, KRVector2 &hrtf4, float &mix1, float &mix2, float &mix3, float &mix4);
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KRAudioSample *getHRTFSample(const KRVector2 &hrtf_dir);
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SplitComplex getHRTFSpectral(const KRVector2 &hrtf_dir, const int channel);
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KRDSP::SplitComplex getHRTFSpectral(const KRVector2 &hrtf_dir, const int channel);
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unordered_map<std::string, siren_ambient_zone_weight_info> m_ambient_zone_weights;
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float m_ambient_zone_total_weight = 0.0f; // For normalizing zone weights
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@@ -32,6 +32,8 @@
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#ifndef _KRDSP_H
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#define _KRDSP_H
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namespace KRDSP {
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#ifdef __APPLE__
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// Apple vDSP
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typedef DSPSplitComplex SplitComplex;
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@@ -42,8 +44,6 @@ typedef struct {
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} SplitComplex;
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#endif
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namespace KRDSP {
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void Int16ToFloat(const short *src, size_t srcStride, float *dest, size_t destStride, size_t count);
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void Scale(float *buffer, float scale, size_t count);
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void ScaleCopy(const float *src, float scale, float *dest, size_t count);
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@@ -53,4 +53,3 @@ void Accumulate(float *buffer, size_t bufferStride, const float *buffer2, size_t
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} // namespace KRDSP
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#endif // _KRDSP_H
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