Added: Configuration Editor, which allows to edit configurations in a graphical user interface. Contains GUIs for most commands supported by E-APO, but as lines can also be edited directly, all commands can be used. Added: Command "GraphicEQ", which can act as a regular, fixed-band graphic equalizer (via the GUI) but also supports variable bands so that any desired frequency response can be specified. Internally, it is implemented via convolution with a generated IR. Added: Command "Convolution", which allows to convolve the signal with a user-provided impulse response to achieve e.g. equalization or reverberation effects. Improved: Configurator performs checks for registry values that are needed for the operation of E-APO, which may be changed by driver installations, fixing the values if necessary. Improved: Configurator shows which is the default device as a hint to the user.
182 lines
5.3 KiB
C++
182 lines
5.3 KiB
C++
/*
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This file is part of EqualizerAPO, a system-wide equalizer.
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Copyright (C) 2014 Jonas Thedering
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This program is free software; you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation; either version 2 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License along
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with this program; if not, write to the Free Software Foundation, Inc.,
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51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
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*/
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#include "stdafx.h"
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#include <algorithm>
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#include "FilterEngine.h"
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#include "helpers/MemoryHelper.h"
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#include "FilterConfiguration.h"
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using namespace std;
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FilterConfiguration::FilterConfiguration(FilterEngine* engine, const vector<FilterInfo*>& filterInfos, unsigned allChannelCount)
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{
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this->allChannelCount = allChannelCount;
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realChannelCount = engine->getRealChannelCount();
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outputChannelCount = engine->getOutputChannelCount();
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unsigned maxFrameCount = engine->getMaxFrameCount();
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allSamples = (float**)MemoryHelper::alloc(allChannelCount * sizeof(float*));
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for(size_t i=0; i<allChannelCount; i++)
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allSamples[i] = (float*)MemoryHelper::alloc(maxFrameCount * sizeof(float));
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allSamples2 = (float**)MemoryHelper::alloc(allChannelCount * sizeof(float*));
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for(size_t i=0; i<allChannelCount; i++)
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allSamples2[i] = (float*)MemoryHelper::alloc(maxFrameCount * sizeof(float));
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currentSamples = (float**)MemoryHelper::alloc(allChannelCount * sizeof(float*));
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currentSamples2 = (float**)MemoryHelper::alloc(allChannelCount * sizeof(float*));
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filterCount = (unsigned)filterInfos.size();
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this->filterInfos = (FilterInfo**)MemoryHelper::alloc(filterCount * sizeof(FilterInfo*));
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for(size_t i=0; i<filterCount; i++)
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this->filterInfos[i] = filterInfos[i];
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}
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FilterConfiguration::~FilterConfiguration()
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{
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MemoryHelper::free(currentSamples2);
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MemoryHelper::free(currentSamples);
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for(size_t i=0; i<allChannelCount; i++)
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MemoryHelper::free(allSamples2[i]);
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MemoryHelper::free(allSamples2);
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for(size_t i=0; i<allChannelCount; i++)
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MemoryHelper::free(allSamples[i]);
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MemoryHelper::free(allSamples);
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for(size_t i=0; i<filterCount; i++)
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{
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filterInfos[i]->filter->~IFilter();
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MemoryHelper::free(filterInfos[i]->filter);
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if(filterInfos[i]->inChannels != NULL)
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MemoryHelper::free(filterInfos[i]->inChannels);
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if(filterInfos[i]->outChannels != NULL)
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MemoryHelper::free(filterInfos[i]->outChannels);
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MemoryHelper::free(filterInfos[i]);
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}
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MemoryHelper::free(filterInfos);
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}
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#pragma AVRT_CODE_BEGIN
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void FilterConfiguration::process(float* input, unsigned frameCount)
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{
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#define DEINTERLEAVE_MACRO(ccount) \
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{\
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for (size_t c=0; c<ccount; c++)\
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{\
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float* sampleChannel = allSamples[c];\
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float* i2 = input + c;\
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for (size_t i = 0; i < frameCount; i++)\
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{\
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sampleChannel[i] = i2[i*ccount];\
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}\
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}\
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}
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switch(realChannelCount)
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{
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case 1:
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DEINTERLEAVE_MACRO(1)
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break;
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case 2:
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DEINTERLEAVE_MACRO(2)
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break;
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case 6:
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DEINTERLEAVE_MACRO(6)
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break;
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case 8:
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DEINTERLEAVE_MACRO(8)
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break;
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default:
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DEINTERLEAVE_MACRO(realChannelCount)
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}
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for(unsigned c=realChannelCount; c<allChannelCount; c++)
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memset(allSamples[c], 0, frameCount * sizeof(float));
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// for real mono input and >= stereo output, upmix to stereo as the Windows audio system would do automatically if no APO was present
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if(realChannelCount == 1 && outputChannelCount >= 2)
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memcpy(allSamples[1], allSamples[0], frameCount * sizeof(float));
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for(size_t i=0; i<filterCount; i++)
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{
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FilterInfo* filterInfo = filterInfos[i];
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for(size_t j=0; j<filterInfo->inChannelCount; j++)
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currentSamples[j] = allSamples[filterInfo->inChannels[j]];
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if(filterInfo->inPlace)
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{
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for(size_t j=0; j<filterInfo->outChannelCount; j++)
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currentSamples2[j] = allSamples[filterInfo->outChannels[j]];
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}
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else
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{
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for(size_t j=0; j<filterInfo->outChannelCount; j++)
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currentSamples2[j] = allSamples2[filterInfo->outChannels[j]];
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}
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filterInfo->filter->process(currentSamples2, currentSamples, frameCount);
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if(!filterInfo->inPlace)
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{
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for(size_t j=0; j<filterInfo->outChannelCount; j++)
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swap(allSamples[filterInfo->outChannels[j]], allSamples2[filterInfo->outChannels[j]]);
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swap(currentSamples, currentSamples2);
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}
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}
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}
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void FilterConfiguration::write(float* output, unsigned frameCount)
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{
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#define INTERLEAVE_MACRO(ccount) \
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for (size_t c=0; c<ccount; c++)\
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{\
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float* sampleChannel = allSamples[c];\
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float* o2 = output + c;\
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for (unsigned i = 0; i < frameCount; i++)\
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{\
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o2[i*ccount] = sampleChannel[i];\
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}\
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}
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switch(outputChannelCount)
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{
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case 1:
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INTERLEAVE_MACRO(1)
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break;
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case 2:
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INTERLEAVE_MACRO(2)
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break;
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case 6:
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INTERLEAVE_MACRO(6)
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break;
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case 8:
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INTERLEAVE_MACRO(8)
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break;
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default:
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INTERLEAVE_MACRO(outputChannelCount)
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}
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}
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#pragma AVRT_CODE_END
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bool FilterConfiguration::isEmpty()
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{
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return filterCount == 0;
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}
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