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"
275 lines
8.6 KiB
C++
275 lines
8.6 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: BouncingBallWavetableDemo
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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: Wavetable synthesis with a bouncing ball.
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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_events, juce_graphics,
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juce_gui_basics, juce_gui_extra
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exporters: xcode_mac, vs2019, linux_make
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moduleFlags: JUCE_STRICT_REFCOUNTEDPOINTER=1
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type: Component
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mainClass: BouncingBallWavetableDemo
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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 BouncingBallWavetableDemo : public AudioAppComponent,
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private Timer
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{
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public:
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//==============================================================================
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BouncingBallWavetableDemo()
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#ifdef JUCE_DEMO_RUNNER
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: AudioAppComponent (getSharedAudioDeviceManager (0, 2))
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#endif
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{
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setSize (600, 600);
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for (auto i = 0; i < numElementsInArray (waveValues); ++i)
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zeromem (waveValues[i], sizeof (waveValues[i]));
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// specify the number of input and output channels that we want to open
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setAudioChannels (2, 2);
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startTimerHz (60);
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}
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~BouncingBallWavetableDemo() 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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sampleRate = newSampleRate;
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expectedSamplesPerBlock = samplesPerBlockExpected;
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}
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/* This method generates the actual audio samples.
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In this example the buffer is filled with a sine wave whose frequency and
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amplitude are controlled by the mouse position.
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*/
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void getNextAudioBlock (const AudioSourceChannelInfo& bufferToFill) override
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{
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bufferToFill.clearActiveBufferRegion();
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for (auto chan = 0; chan < bufferToFill.buffer->getNumChannels(); ++chan)
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{
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auto ind = waveTableIndex;
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auto* channelData = bufferToFill.buffer->getWritePointer (chan, bufferToFill.startSample);
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for (auto i = 0; i < bufferToFill.numSamples; ++i)
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{
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if (isPositiveAndBelow (chan, numElementsInArray (waveValues)))
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{
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channelData[i] = waveValues[chan][ind % wavetableSize];
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++ind;
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}
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}
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}
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waveTableIndex = (int) (waveTableIndex + bufferToFill.numSamples) % wavetableSize;
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}
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void releaseResources() override
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{
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// This gets automatically called when audio device parameters change
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// or device is restarted.
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stopTimer();
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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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// (Our component is opaque, so we must completely fill the background with a solid colour)
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g.fillAll (getLookAndFeel().findColour (ResizableWindow::backgroundColourId));
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auto nextPos = pos + delta;
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if (nextPos.x < 10 || nextPos.x + 10 > (float) getWidth())
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{
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delta.x = -delta.x;
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nextPos.x = pos.x + delta.x;
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}
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if (nextPos.y < 50 || nextPos.y + 10 > (float) getHeight())
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{
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delta.y = -delta.y;
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nextPos.y = pos.y + delta.y;
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}
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if (! dragging)
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{
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writeInterpolatedValue (pos, nextPos);
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pos = nextPos;
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}
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else
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{
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pos = lastMousePosition;
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}
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// draw a circle
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g.setColour (getLookAndFeel().findColour (Slider::thumbColourId));
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g.fillEllipse (pos.x, pos.y, 20, 20);
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drawWaveform (g, 20.0f, 0);
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drawWaveform (g, 40.0f, 1);
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}
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void drawWaveform (Graphics& g, float y, int channel) const
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{
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auto pathWidth = 2000;
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Path wavePath;
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wavePath.startNewSubPath (0.0f, y);
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for (auto i = 1; i < pathWidth; ++i)
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wavePath.lineTo ((float) i, (1.0f + waveValues[channel][i * numElementsInArray (waveValues[0]) / pathWidth]) * 10.0f);
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g.strokePath (wavePath, PathStrokeType (1.0f),
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wavePath.getTransformToScaleToFit (Rectangle<float> (0.0f, y, (float) getWidth(), 20.0f), false));
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}
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// Mouse handling..
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void mouseDown (const MouseEvent& e) override
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{
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lastMousePosition = e.position;
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mouseDrag (e);
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dragging = true;
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}
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void mouseDrag (const MouseEvent& e) override
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{
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dragging = true;
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if (e.position != lastMousePosition)
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{
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// calculate movement vector
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delta = e.position - lastMousePosition;
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waveValues[0][bufferIndex % wavetableSize] = xToAmplitude (e.position.x);
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waveValues[1][bufferIndex % wavetableSize] = yToAmplitude (e.position.y);
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++bufferIndex;
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lastMousePosition = e.position;
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}
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}
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void mouseUp (const MouseEvent&) override
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{
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dragging = false;
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}
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void writeInterpolatedValue (Point<float> lastPosition,
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Point<float> currentPosition)
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{
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Point<float> start, finish;
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if (lastPosition.getX() > currentPosition.getX())
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{
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finish = lastPosition;
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start = currentPosition;
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}
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else
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{
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start = lastPosition;
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finish = currentPosition;
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}
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for (auto i = 0; i < steps; ++i)
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{
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auto p = start + ((finish - start) * i) / (int) steps;
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auto index = (bufferIndex + i) % wavetableSize;
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waveValues[1][index] = yToAmplitude (p.y);
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waveValues[0][index] = xToAmplitude (p.x);
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}
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bufferIndex = (bufferIndex + steps) % wavetableSize;
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}
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float indexToX (int indexValue) const noexcept
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{
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return (float) indexValue;
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}
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float amplitudeToY (float amp) const noexcept
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{
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return (float) getHeight() - (amp + 1.0f) * (float) getHeight() / 2.0f;
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}
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float xToAmplitude (float x) const noexcept
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{
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return jlimit (-1.0f, 1.0f, 2.0f * ((float) getWidth() - x) / (float) getWidth() - 1.0f);
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}
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float yToAmplitude (float y) const noexcept
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{
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return jlimit (-1.0f, 1.0f, 2.0f * ((float) getHeight() - y) / (float) getHeight() - 1.0f);
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}
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void timerCallback() override
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{
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repaint();
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}
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private:
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//==============================================================================
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enum
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{
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wavetableSize = 36000,
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steps = 10
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};
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Point<float> pos = { 299.0f, 299.0f };
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Point<float> delta = { 0.0f, 0.0f };
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int waveTableIndex = 0;
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int bufferIndex = 0;
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double sampleRate = 0.0;
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int expectedSamplesPerBlock = 0;
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Point<float> lastMousePosition;
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float waveValues[2][wavetableSize];
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bool dragging = false;
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JUCE_DECLARE_NON_COPYABLE_WITH_LEAK_DETECTOR (BouncingBallWavetableDemo)
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};
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