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https://codeberg.org/armin/gelyk.git
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205 lines
5.5 KiB
C++
205 lines
5.5 KiB
C++
#include "EqualizerDSP.h"
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namespace gelyk
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{
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// ---------------------------------------------------------------------------
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// FilterBand
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// ---------------------------------------------------------------------------
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void FilterBand::prepare(double sampleRate, int blockSize)
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{
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juce::dsp::ProcessSpec spec;
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spec.sampleRate = sampleRate;
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spec.maximumBlockSize = (juce::uint32) blockSize;
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spec.numChannels = 2;
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left.prepare(spec);
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right.prepare(spec);
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Coeffs::Ptr c;
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const float db = juce::jlimit(-24.0f, 24.0f, gainDb);
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switch (type)
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{
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case Type::lowShelf:
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c = Coeffs::makeLowShelf(sampleRate, freq, q, juce::Decibels::decibelsToGain(db));
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break;
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case Type::highShelf:
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c = Coeffs::makeHighShelf(sampleRate, freq, q, juce::Decibels::decibelsToGain(db));
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break;
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case Type::peak:
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default:
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c = Coeffs::makePeakFilter(sampleRate, freq, q, juce::Decibels::decibelsToGain(db));
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break;
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}
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left.coefficients = c;
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right.coefficients = c;
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}
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void FilterBand::reset()
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{
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left.reset();
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right.reset();
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}
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void FilterBand::process(juce::dsp::AudioBlock<float>& block)
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{
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if (block.getNumChannels() < 2)
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return;
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// Smooth the coefficients to avoid zipper noise, then process.
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left.snapToZero();
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right.snapToZero();
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left.process(juce::dsp::ProcessContextReplacing<float>(block));
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right.process(juce::dsp::ProcessContextReplacing<float>(block));
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}
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// ---------------------------------------------------------------------------
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// SpectrumAnalyser
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// ---------------------------------------------------------------------------
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SpectrumAnalyser::SpectrumAnalyser()
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: fft(12) // 4096 point FFT
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{
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const int size = fft.getSize();
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fftBuffer.resize((size_t) (size * 2), 0.0f);
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// The timer drives periodic background analysis.
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startTimerHz(30);
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}
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void SpectrumAnalyser::prepare(double sr, int maxBlockSize)
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{
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const int size = 4096;
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(void) maxBlockSize;
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sampleRate = sr;
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ring.setSize(2, size);
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ring.clear();
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ringFill = 0;
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ringChannels = 2;
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}
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void SpectrumAnalyser::push(const float* const* channels, int numChannels, int numSamples)
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{
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if (!enabled.load() || ring.getNumSamples() == 0)
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return;
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const int n = (int) ring.getNumSamples();
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const int c = juce::jmin(ringChannels, numChannels);
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for (int i = 0; i < numSamples; ++i)
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{
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const int dst = (ringFill + i) % n;
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for (int ch = 0; ch < c; ++ch)
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ring.setSample(ch, dst, channels[ch][i]);
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}
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ringFill = (ringFill + numSamples) % n;
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}
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void SpectrumAnalyser::startBackground()
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{
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startTimerHz(30);
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}
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void SpectrumAnalyser::stopBackground()
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{
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stopTimer();
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}
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void SpectrumAnalyser::timerCallback()
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{
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if (!enabled.load())
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return;
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runAnalysis();
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}
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void SpectrumAnalyser::runAnalysis()
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{
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const int n = (int) ring.getNumSamples();
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if (n == 0)
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return;
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// Mesa of the two channels, Hann-windowed into the FFT buffer.
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const auto fftSize = fft.getSize();
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for (int i = 0; i < fftSize; ++i)
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{
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const int src = (ringFill - fftSize + i + n) % n; // contiguously oldest of last fftSize
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float v = ring.getSample(0, src);
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if (ringChannels > 1)
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v = 0.5f * (v + ring.getSample(1, src));
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const float win = 0.5f * (1.0f - std::cos(2.0f * juce::MathConstants<float>::pi * i / (fftSize - 1)));
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fftBuffer[(size_t) i] = v * win;
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}
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for (size_t i = (size_t) fftSize; i < fftBuffer.size(); ++i)
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fftBuffer[i] = 0.0f;
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fft.performFrequencyOnlyForwardTransform(fftBuffer.data());
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// Magnitude values (non-negative frequencies) are in the first size/2+1 entries.
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const int numBins = juce::jmin((int) fftBuffer.size(), fftSize / 2 + 1);
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juce::Array<float> mags;
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mags.ensureStorageAllocated(numBins);
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for (int i = 0; i < numBins; ++i)
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{
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float mag = fftBuffer[(size_t) i];
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float db = 20.0f * std::log10(mag + 1.0e-9f);
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mags.add(db);
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}
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{
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juce::ScopedLock sl(spectrumLock);
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readySpectrum = mags;
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}
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}
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int SpectrumAnalyser::copySpectrum(juce::Array<float>& dest, juce::Array<float>& freqBins,
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int maxBins) const
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{
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juce::Array<float> snapshot;
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{
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juce::ScopedLock sl(spectrumLock);
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snapshot = readySpectrum;
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}
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if (snapshot.size() == 0)
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{
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dest.clear();
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freqBins.clear();
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return 0;
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}
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// Log-spaced aggregation from ~20 Hz to 20 kHz.
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const float fMin = 20.0f;
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const float fMax = 20000.0f;
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const double nfft = (double)(snapshot.size() * 2);
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const float binFreq = (float)(sampleRate / nfft);
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dest.clear();
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freqBins.clear();
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const int bands = juce::jmin(maxBins, snapshot.size());
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for (int b = 0; b < bands; ++b)
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{
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const float f = fMin * std::pow(fMax / fMin, (float) b / (float) (bands - 1));
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freqBins.add(f);
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const int startBin = juce::jmax(1, (int) std::floor(f / binFreq));
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const int endBin = juce::jmin(snapshot.size() - 1, (int) std::ceil((f * 1.5f) / binFreq));
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float total = 0.0f;
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int count = 0;
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for (int i = startBin; i <= endBin; ++i)
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{
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total += snapshot[i];
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++count;
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}
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dest.add(count > 0 ? total / count : -96.0f);
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}
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return dest.size();
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}
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void SpectrumAnalyser::setEnabled(bool e)
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{
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enabled.store(e);
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}
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} // namespace gelyk
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