25bd5d8adb
subrepo: subdir: "deps/juce" merged: "b13f9084e" upstream: origin: "https://github.com/essej/JUCE.git" branch: "sono6good" commit: "b13f9084e" git-subrepo: version: "0.4.3" origin: "https://github.com/ingydotnet/git-subrepo.git" commit: "2f68596"
190 lines
6.1 KiB
C++
190 lines
6.1 KiB
C++
/*
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==============================================================================
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This file is part of the JUCE examples.
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Copyright (c) 2020 - Raw Material Software Limited
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The code included in this file is provided under the terms of the ISC license
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http://www.isc.org/downloads/software-support-policy/isc-license. Permission
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To use, copy, modify, and/or distribute this software for any purpose with or
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without fee is hereby granted provided that the above copyright notice and
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this permission notice appear in all copies.
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THE SOFTWARE IS PROVIDED "AS IS" WITHOUT ANY WARRANTY, AND ALL WARRANTIES,
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WHETHER EXPRESSED OR IMPLIED, INCLUDING MERCHANTABILITY AND FITNESS FOR
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PURPOSE, ARE DISCLAIMED.
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==============================================================================
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*/
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/*******************************************************************************
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The block below describes the properties of this PIP. A PIP is a short snippet
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of code that can be read by the Projucer and used to generate a JUCE project.
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BEGIN_JUCE_PIP_METADATA
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name: SimpleFFTDemo
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version: 1.0.0
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vendor: JUCE
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website: http://juce.com
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description: Simple FFT application.
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dependencies: juce_audio_basics, juce_audio_devices, juce_audio_formats,
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juce_audio_processors, juce_audio_utils, juce_core,
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juce_data_structures, juce_dsp, juce_events, juce_graphics,
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juce_gui_basics, juce_gui_extra
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exporters: xcode_mac, vs2019, linux_make, androidstudio, xcode_iphone
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moduleFlags: JUCE_STRICT_REFCOUNTEDPOINTER=1
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type: Component
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mainClass: SimpleFFTDemo
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useLocalCopy: 1
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END_JUCE_PIP_METADATA
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*******************************************************************************/
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#pragma once
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//==============================================================================
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class SimpleFFTDemo : public AudioAppComponent,
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private Timer
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{
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public:
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SimpleFFTDemo() :
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#ifdef JUCE_DEMO_RUNNER
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AudioAppComponent (getSharedAudioDeviceManager (1, 0)),
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#endif
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forwardFFT (fftOrder),
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spectrogramImage (Image::RGB, 512, 512, true)
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{
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setOpaque (true);
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#ifndef JUCE_DEMO_RUNNER
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RuntimePermissions::request (RuntimePermissions::recordAudio,
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[this] (bool granted)
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{
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int numInputChannels = granted ? 2 : 0;
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setAudioChannels (numInputChannels, 2);
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});
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#else
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setAudioChannels (2, 2);
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#endif
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startTimerHz (60);
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setSize (700, 500);
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}
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~SimpleFFTDemo() override
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{
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shutdownAudio();
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}
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//==============================================================================
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void prepareToPlay (int /*samplesPerBlockExpected*/, double /*newSampleRate*/) override
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{
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// (nothing to do here)
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}
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void releaseResources() override
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{
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// (nothing to do here)
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}
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void getNextAudioBlock (const AudioSourceChannelInfo& bufferToFill) override
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{
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if (bufferToFill.buffer->getNumChannels() > 0)
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{
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const auto* channelData = bufferToFill.buffer->getReadPointer (0, bufferToFill.startSample);
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for (auto i = 0; i < bufferToFill.numSamples; ++i)
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pushNextSampleIntoFifo (channelData[i]);
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bufferToFill.clearActiveBufferRegion();
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}
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}
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//==============================================================================
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void paint (Graphics& g) override
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{
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g.fillAll (Colours::black);
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g.setOpacity (1.0f);
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g.drawImage (spectrogramImage, getLocalBounds().toFloat());
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}
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void timerCallback() override
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{
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if (nextFFTBlockReady)
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{
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drawNextLineOfSpectrogram();
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nextFFTBlockReady = false;
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repaint();
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}
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}
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void pushNextSampleIntoFifo (float sample) noexcept
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{
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// if the fifo contains enough data, set a flag to say
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// that the next line should now be rendered..
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if (fifoIndex == fftSize)
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{
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if (! nextFFTBlockReady)
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{
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zeromem (fftData, sizeof (fftData));
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memcpy (fftData, fifo, sizeof (fifo));
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nextFFTBlockReady = true;
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}
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fifoIndex = 0;
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}
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fifo[fifoIndex++] = sample;
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}
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void drawNextLineOfSpectrogram()
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{
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auto rightHandEdge = spectrogramImage.getWidth() - 1;
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auto imageHeight = spectrogramImage.getHeight();
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// first, shuffle our image leftwards by 1 pixel..
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spectrogramImage.moveImageSection (0, 0, 1, 0, rightHandEdge, imageHeight);
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// then render our FFT data..
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forwardFFT.performFrequencyOnlyForwardTransform (fftData);
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// find the range of values produced, so we can scale our rendering to
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// show up the detail clearly
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auto maxLevel = FloatVectorOperations::findMinAndMax (fftData, fftSize / 2);
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for (auto y = 1; y < imageHeight; ++y)
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{
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auto skewedProportionY = 1.0f - std::exp (std::log ((float) y / (float) imageHeight) * 0.2f);
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auto fftDataIndex = jlimit (0, fftSize / 2, (int) (skewedProportionY * (int) fftSize / 2));
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auto level = jmap (fftData[fftDataIndex], 0.0f, jmax (maxLevel.getEnd(), 1e-5f), 0.0f, 1.0f);
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spectrogramImage.setPixelAt (rightHandEdge, y, Colour::fromHSV (level, 1.0f, level, 1.0f));
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}
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}
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enum
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{
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fftOrder = 10,
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fftSize = 1 << fftOrder
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};
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private:
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dsp::FFT forwardFFT;
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Image spectrogramImage;
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float fifo [fftSize];
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float fftData [2 * fftSize];
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int fifoIndex = 0;
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bool nextFFTBlockReady = false;
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JUCE_DECLARE_NON_COPYABLE_WITH_LEAK_DETECTOR (SimpleFFTDemo)
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};
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