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1 /* -*- c-basic-offset: 4 indent-tabs-mode: nil -*- vi:set ts=8 sts=4 sw=4: */
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2
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3 /*
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4 QM Vamp Plugin Set
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5
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6 Centre for Digital Music, Queen Mary, University of London.
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7
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8 This program is free software; you can redistribute it and/or
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9 modify it under the terms of the GNU General Public License as
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10 published by the Free Software Foundation; either version 2 of the
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11 License, or (at your option) any later version. See the file
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12 COPYING included with this distribution for more information.
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13 */
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14
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15 #include "SongParts.h"
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16
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17 #include <base/Window.h>
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18 #include <dsp/onsets/DetectionFunction.h>
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19 #include <dsp/onsets/PeakPicking.h>
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20 #include <dsp/transforms/FFT.h>
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21 #include <dsp/tempotracking/TempoTrackV2.h>
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22 #include <dsp/tempotracking/DownBeat.h>
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23 #include <chromamethods.h>
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24 #include <maths/MathUtilities.h>
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25 #include <boost/numeric/ublas/matrix.hpp>
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26 #include <boost/numeric/ublas/io.hpp>
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27 #include <boost/math/distributions/normal.hpp>
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28 #include "armadillo"
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29 #include <fstream>
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30 #include <sstream>
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31 #include <cmath>
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32 #include <vector>
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33
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34 #include <vamp-sdk/Plugin.h>
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35
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36 using namespace boost::numeric;
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37 using namespace arma;
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38 using std::string;
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39 using std::vector;
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40 using std::cerr;
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41 using std::cout;
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42 using std::endl;
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43
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44
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45 #ifndef __GNUC__
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46 #include <alloca.h>
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47 #endif
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48
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49
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50 // Result Struct
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51 typedef struct Part {
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52 int n;
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53 vector<int> indices;
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54 string letter;
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55 int value;
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56 int level;
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57 int nInd;
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58 }Part;
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59
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60
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61
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62 /* ------------------------------------ */
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63 /* ----- BEAT DETECTOR CLASS ---------- */
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64 /* ------------------------------------ */
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65
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66 class BeatTrackerData
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67 {
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68 /* --- ATTRIBUTES --- */
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69 public:
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70 DFConfig dfConfig;
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71 DetectionFunction *df;
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72 DownBeat *downBeat;
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73 vector<double> dfOutput;
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74 Vamp::RealTime origin;
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75
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76
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77 /* --- METHODS --- */
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78
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79 /* --- Constructor --- */
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80 public:
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81 BeatTrackerData(float rate, const DFConfig &config) : dfConfig(config) {
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82
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83 df = new DetectionFunction(config);
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84 // decimation factor aims at resampling to c. 3KHz; must be power of 2
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85 int factor = MathUtilities::nextPowerOfTwo(rate / 3000);
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86 // std::cerr << "BeatTrackerData: factor = " << factor << std::endl;
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87 downBeat = new DownBeat(rate, factor, config.stepSize);
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88 }
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89
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90 /* --- Desctructor --- */
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91 ~BeatTrackerData() {
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92 delete df;
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93 delete downBeat;
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94 }
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95
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96 void reset() {
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97 delete df;
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98 df = new DetectionFunction(dfConfig);
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99 dfOutput.clear();
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100 downBeat->resetAudioBuffer();
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101 origin = Vamp::RealTime::zeroTime;
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102 }
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103 };
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104
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105
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106 /* --------------------------------------- */
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107 /* ----- CHROMA EXTRACTOR CLASS ---------- */
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108 /* --------------------------------------- */
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109
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110 class ChromaData
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111 {
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112
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113 /* --- ATTRIBUTES --- */
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114
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115 public:
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116 int frameCount;
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117 int nBPS;
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118 Vamp::Plugin::FeatureList logSpectrum;
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119 int blockSize;
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120 int lengthOfNoteIndex;
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121 vector<float> meanTunings;
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122 vector<float> localTunings;
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123 float whitening;
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124 float preset;
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125 float useNNLS;
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126 vector<float> localTuning;
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127 vector<float> kernelValue;
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128 vector<int> kernelFftIndex;
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129 vector<int> kernelNoteIndex;
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130 float *dict;
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131 bool tuneLocal;
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132 float doNormalizeChroma;
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133 float rollon;
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134 float s;
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135 vector<float> hw;
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136 vector<float> sinvalues;
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137 vector<float> cosvalues;
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138 Window<float> window;
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139 FFTReal fft;
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140 int inputSampleRate;
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141
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142 /* --- METHODS --- */
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143
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144 /* --- Constructor --- */
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145
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146 public:
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147 ChromaData(float inputSampleRate, size_t block_size) :
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148 frameCount(0),
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149 nBPS(3),
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150 logSpectrum(0),
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151 blockSize(0),
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152 lengthOfNoteIndex(0),
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153 meanTunings(0),
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154 localTunings(0),
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155 whitening(1.0),
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156 preset(0.0),
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157 useNNLS(1.0),
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158 localTuning(0.0),
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159 kernelValue(0),
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160 kernelFftIndex(0),
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161 kernelNoteIndex(0),
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162 dict(0),
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163 tuneLocal(0.0),
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164 doNormalizeChroma(0),
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165 rollon(0.0),
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166 s(0.7),
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167 sinvalues(0),
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168 cosvalues(0),
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169 window(HanningWindow, block_size),
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170 fft(block_size),
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171 inputSampleRate(inputSampleRate)
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172 {
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173 // make the *note* dictionary matrix
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174 dict = new float[nNote * 84];
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175 for (int i = 0; i < nNote * 84; ++i) dict[i] = 0.0;
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176 blockSize = block_size;
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177 }
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178
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179
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180 /* --- Desctructor --- */
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181
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182 ~ChromaData() {
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183 delete [] dict;
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184 }
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185
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186 /* --- Public Methods --- */
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187
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188 void reset() {
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189 frameCount = 0;
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190 logSpectrum.clear();
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191 for (int iBPS = 0; iBPS < 3; ++iBPS) {
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192 meanTunings[iBPS] = 0;
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193 localTunings[iBPS] = 0;
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194 }
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195 localTuning.clear();
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196 }
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197
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198 void baseProcess(float *inputBuffers, Vamp::RealTime timestamp)
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199 {
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200
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201 frameCount++;
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202 float *magnitude = new float[blockSize/2];
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203 double *fftReal = new double[blockSize];
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204 double *fftImag = new double[blockSize];
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205
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206 // FFTReal wants doubles, so we need to make a local copy of inputBuffers
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207 double *inputBuffersDouble = new double[blockSize];
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208 for (int i = 0; i < blockSize; i++) inputBuffersDouble[i] = inputBuffers[i];
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209
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210 fft.process(false, inputBuffersDouble, fftReal, fftImag);
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211
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212 float energysum = 0;
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213 // make magnitude
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214 float maxmag = -10000;
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215 for (int iBin = 0; iBin < static_cast<int>(blockSize/2); iBin++) {
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216 magnitude[iBin] = sqrt(fftReal[iBin] * fftReal[iBin] +
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217 fftImag[iBin] * fftImag[iBin]);
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218 if (magnitude[iBin]>blockSize*1.0) magnitude[iBin] = blockSize;
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219 // a valid audio signal (between -1 and 1) should not be limited here.
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220 if (maxmag < magnitude[iBin]) maxmag = magnitude[iBin];
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221 if (rollon > 0) {
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222 energysum += pow(magnitude[iBin],2);
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223 }
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224 }
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225
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226 float cumenergy = 0;
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227 if (rollon > 0) {
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228 for (int iBin = 2; iBin < static_cast<int>(blockSize/2); iBin++) {
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229 cumenergy += pow(magnitude[iBin],2);
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230 if (cumenergy < energysum * rollon / 100) magnitude[iBin-2] = 0;
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231 else break;
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232 }
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233 }
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234
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235 if (maxmag < 2) {
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236 // cerr << "timestamp " << timestamp << ": very low magnitude, setting magnitude to all zeros" << endl;
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237 for (int iBin = 0; iBin < static_cast<int>(blockSize/2); iBin++) {
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238 magnitude[iBin] = 0;
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239 }
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240 }
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241
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242 // cerr << magnitude[200] << endl;
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243
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244 // note magnitude mapping using pre-calculated matrix
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245 float *nm = new float[nNote]; // note magnitude
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246 for (int iNote = 0; iNote < nNote; iNote++) {
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247 nm[iNote] = 0; // initialise as 0
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248 }
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249 int binCount = 0;
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250 for (vector<float>::iterator it = kernelValue.begin(); it != kernelValue.end(); ++it) {
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251 nm[kernelNoteIndex[binCount]] += magnitude[kernelFftIndex[binCount]] * kernelValue[binCount];
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252 binCount++;
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253 }
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254
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255 float one_over_N = 1.0/frameCount;
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256 // update means of complex tuning variables
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257 for (int iBPS = 0; iBPS < nBPS; ++iBPS) meanTunings[iBPS] *= float(frameCount-1)*one_over_N;
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258
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259 for (int iTone = 0; iTone < round(nNote*0.62/nBPS)*nBPS+1; iTone = iTone + nBPS) {
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260 for (int iBPS = 0; iBPS < nBPS; ++iBPS) meanTunings[iBPS] += nm[iTone + iBPS]*one_over_N;
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261 float ratioOld = 0.997;
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262 for (int iBPS = 0; iBPS < nBPS; ++iBPS) {
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263 localTunings[iBPS] *= ratioOld;
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264 localTunings[iBPS] += nm[iTone + iBPS] * (1 - ratioOld);
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265 }
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266 }
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267
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268 float localTuningImag = 0;
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269 float localTuningReal = 0;
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270 for (int iBPS = 0; iBPS < nBPS; ++iBPS) {
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271 localTuningReal += localTunings[iBPS] * cosvalues[iBPS];
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272 localTuningImag += localTunings[iBPS] * sinvalues[iBPS];
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273 }
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274
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275 float normalisedtuning = atan2(localTuningImag, localTuningReal)/(2*M_PI);
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276 localTuning.push_back(normalisedtuning);
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277
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278 Vamp::Plugin::Feature f1; // logfreqspec
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279 f1.hasTimestamp = true;
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280 f1.timestamp = timestamp;
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281 for (int iNote = 0; iNote < nNote; iNote++) {
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282 f1.values.push_back(nm[iNote]);
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283 }
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284
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285 // deletes
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286 delete[] inputBuffersDouble;
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287 delete[] magnitude;
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288 delete[] fftReal;
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289 delete[] fftImag;
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290 delete[] nm;
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291
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292 logSpectrum.push_back(f1); // remember note magnitude
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293 }
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294
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295 bool initialise()
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296 {
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297 dictionaryMatrix(dict, s);
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298
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299 // make things for tuning estimation
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300 for (int iBPS = 0; iBPS < nBPS; ++iBPS) {
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301 sinvalues.push_back(sin(2*M_PI*(iBPS*1.0/nBPS)));
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302 cosvalues.push_back(cos(2*M_PI*(iBPS*1.0/nBPS)));
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303 }
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304
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305
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306 // make hamming window of length 1/2 octave
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307 int hamwinlength = nBPS * 6 + 1;
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308 float hamwinsum = 0;
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309 for (int i = 0; i < hamwinlength; ++i) {
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310 hw.push_back(0.54 - 0.46 * cos((2*M_PI*i)/(hamwinlength-1)));
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311 hamwinsum += 0.54 - 0.46 * cos((2*M_PI*i)/(hamwinlength-1));
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312 }
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313 for (int i = 0; i < hamwinlength; ++i) hw[i] = hw[i] / hamwinsum;
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314
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315
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316 // initialise the tuning
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317 for (int iBPS = 0; iBPS < nBPS; ++iBPS) {
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318 meanTunings.push_back(0);
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319 localTunings.push_back(0);
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320 }
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321
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322 blockSize = blockSize;
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323 frameCount = 0;
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324 int tempn = nNote * blockSize/2;
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325 // cerr << "length of tempkernel : " << tempn << endl;
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326 float *tempkernel;
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327
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328 tempkernel = new float[tempn];
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329
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330 logFreqMatrix(inputSampleRate, blockSize, tempkernel);
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331 kernelValue.clear();
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332 kernelFftIndex.clear();
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333 kernelNoteIndex.clear();
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334 int countNonzero = 0;
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335 for (int iNote = 0; iNote < nNote; ++iNote) {
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336 // I don't know if this is wise: manually making a sparse matrix
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337 for (int iFFT = 0; iFFT < static_cast<int>(blockSize/2); ++iFFT) {
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338 if (tempkernel[iFFT + blockSize/2 * iNote] > 0) {
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339 kernelValue.push_back(tempkernel[iFFT + blockSize/2 * iNote]);
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340 if (tempkernel[iFFT + blockSize/2 * iNote] > 0) {
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341 countNonzero++;
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342 }
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343 kernelFftIndex.push_back(iFFT);
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344 kernelNoteIndex.push_back(iNote);
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345 }
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346 }
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347 }
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348 delete [] tempkernel;
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349
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350 return true;
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351 }
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352 };
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353
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354
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355 /* --------------------------------- */
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356 /* ----- SONG PARTITIONER ---------- */
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357 /* --------------------------------- */
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358
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359
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360 /* --- ATTRIBUTES --- */
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361
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362 float SongPartitioner::m_stepSecs = 0.01161; // 512 samples at 44100
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363 int SongPartitioner::m_chromaFramesizeFactor = 16; // 16 times as long as beat tracker's
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364 int SongPartitioner::m_chromaStepsizeFactor = 4; // 4 times as long as beat tracker's
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365
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366
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367 /* --- METHODS --- */
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368
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369 /* --- Constructor --- */
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370 SongPartitioner::SongPartitioner(float inputSampleRate) :
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371 Vamp::Plugin(inputSampleRate),
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372 m_d(0),
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373 m_chromadata(0),
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374 m_bpb(4),
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375 m_pluginFrameCount(0)
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376 {
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max@1
|
377 }
|
max@1
|
378
|
max@1
|
379
|
max@1
|
380 /* --- Desctructor --- */
|
max@1
|
381 SongPartitioner::~SongPartitioner()
|
max@1
|
382 {
|
max@1
|
383 delete m_d;
|
Chris@35
|
384 delete m_chromadata;
|
max@1
|
385 }
|
max@1
|
386
|
max@1
|
387
|
max@1
|
388 /* --- Methods --- */
|
max@1
|
389 string SongPartitioner::getIdentifier() const
|
max@1
|
390 {
|
max@1
|
391 return "qm-songpartitioner";
|
max@1
|
392 }
|
max@1
|
393
|
max@1
|
394 string SongPartitioner::getName() const
|
max@1
|
395 {
|
max@1
|
396 return "Song Partitioner";
|
max@1
|
397 }
|
max@1
|
398
|
max@1
|
399 string SongPartitioner::getDescription() const
|
max@1
|
400 {
|
max@1
|
401 return "Estimate contiguous segments pertaining to song parts such as verse and chorus.";
|
max@1
|
402 }
|
max@1
|
403
|
max@1
|
404 string SongPartitioner::getMaker() const
|
max@1
|
405 {
|
max@1
|
406 return "Queen Mary, University of London";
|
max@1
|
407 }
|
max@1
|
408
|
max@1
|
409 int SongPartitioner::getPluginVersion() const
|
max@1
|
410 {
|
max@1
|
411 return 2;
|
max@1
|
412 }
|
max@1
|
413
|
max@1
|
414 string SongPartitioner::getCopyright() const
|
max@1
|
415 {
|
max@1
|
416 return "Plugin by Matthew Davies, Christian Landone, Chris Cannam, Matthias Mauch and Massimiliano Zanoni Copyright (c) 2006-2012 QMUL - All Rights Reserved";
|
max@1
|
417 }
|
max@1
|
418
|
max@1
|
419 SongPartitioner::ParameterList SongPartitioner::getParameterDescriptors() const
|
max@1
|
420 {
|
max@1
|
421 ParameterList list;
|
max@1
|
422
|
max@1
|
423 ParameterDescriptor desc;
|
max@1
|
424
|
max@1
|
425 desc.identifier = "bpb";
|
max@1
|
426 desc.name = "Beats per Bar";
|
max@1
|
427 desc.description = "The number of beats in each bar";
|
max@1
|
428 desc.minValue = 2;
|
max@1
|
429 desc.maxValue = 16;
|
max@1
|
430 desc.defaultValue = 4;
|
max@1
|
431 desc.isQuantized = true;
|
max@1
|
432 desc.quantizeStep = 1;
|
max@1
|
433 list.push_back(desc);
|
max@1
|
434
|
max@1
|
435 return list;
|
max@1
|
436 }
|
max@1
|
437
|
max@1
|
438 float SongPartitioner::getParameter(std::string name) const
|
max@1
|
439 {
|
max@1
|
440 if (name == "bpb") return m_bpb;
|
max@1
|
441 return 0.0;
|
max@1
|
442 }
|
max@1
|
443
|
max@1
|
444 void SongPartitioner::setParameter(std::string name, float value)
|
max@1
|
445 {
|
max@1
|
446 if (name == "bpb") m_bpb = lrintf(value);
|
max@1
|
447 }
|
max@1
|
448
|
max@1
|
449
|
max@1
|
450 // Return the StepSize for Chroma Extractor
|
max@1
|
451 size_t SongPartitioner::getPreferredStepSize() const
|
max@1
|
452 {
|
max@1
|
453 size_t step = size_t(m_inputSampleRate * m_stepSecs + 0.0001);
|
max@1
|
454 if (step < 1) step = 1;
|
max@1
|
455
|
max@1
|
456 return step;
|
max@1
|
457 }
|
max@1
|
458
|
max@1
|
459 // Return the BlockSize for Chroma Extractor
|
max@1
|
460 size_t SongPartitioner::getPreferredBlockSize() const
|
max@1
|
461 {
|
max@1
|
462 size_t theoretical = getPreferredStepSize() * 2;
|
max@1
|
463 theoretical *= m_chromaFramesizeFactor;
|
max@1
|
464
|
max@1
|
465 return theoretical;
|
max@1
|
466 }
|
max@1
|
467
|
max@1
|
468
|
max@1
|
469 // Initialize the plugin and define Beat Tracker and Chroma Extractor Objects
|
max@1
|
470 bool SongPartitioner::initialise(size_t channels, size_t stepSize, size_t blockSize)
|
max@1
|
471 {
|
max@1
|
472 if (m_d) {
|
Chris@22
|
473 delete m_d;
|
Chris@22
|
474 m_d = 0;
|
max@1
|
475 }
|
Chris@35
|
476 if (m_chromadata) {
|
Chris@35
|
477 delete m_chromadata;
|
Chris@35
|
478 m_chromadata = 0;
|
Chris@35
|
479 }
|
max@1
|
480
|
max@1
|
481 if (channels < getMinChannelCount() ||
|
Chris@22
|
482 channels > getMaxChannelCount()) {
|
max@1
|
483 std::cerr << "SongPartitioner::initialise: Unsupported channel count: "
|
max@1
|
484 << channels << std::endl;
|
max@1
|
485 return false;
|
max@1
|
486 }
|
max@1
|
487
|
max@1
|
488 if (stepSize != getPreferredStepSize()) {
|
max@1
|
489 std::cerr << "ERROR: SongPartitioner::initialise: Unsupported step size for this sample rate: "
|
max@1
|
490 << stepSize << " (wanted " << (getPreferredStepSize()) << ")" << std::endl;
|
max@1
|
491 return false;
|
max@1
|
492 }
|
max@1
|
493
|
max@1
|
494 if (blockSize != getPreferredBlockSize()) {
|
max@1
|
495 std::cerr << "WARNING: SongPartitioner::initialise: Sub-optimal block size for this sample rate: "
|
max@1
|
496 << blockSize << " (wanted " << getPreferredBlockSize() << ")" << std::endl;
|
max@1
|
497 }
|
max@1
|
498
|
max@1
|
499 // Beat tracker and Chroma extractor has two different configuration parameters
|
max@1
|
500
|
max@1
|
501 // Configuration Parameters for Beat Tracker
|
max@1
|
502 DFConfig dfConfig;
|
max@1
|
503 dfConfig.DFType = DF_COMPLEXSD;
|
max@1
|
504 dfConfig.stepSize = stepSize;
|
max@1
|
505 dfConfig.frameLength = blockSize / m_chromaFramesizeFactor;
|
max@1
|
506 dfConfig.dbRise = 3;
|
max@1
|
507 dfConfig.adaptiveWhitening = false;
|
max@1
|
508 dfConfig.whiteningRelaxCoeff = -1;
|
max@1
|
509 dfConfig.whiteningFloor = -1;
|
max@1
|
510
|
max@1
|
511 // Initialise Beat Tracker
|
max@1
|
512 m_d = new BeatTrackerData(m_inputSampleRate, dfConfig);
|
max@1
|
513 m_d->downBeat->setBeatsPerBar(m_bpb);
|
max@1
|
514
|
max@1
|
515 // Initialise Chroma Extractor
|
max@1
|
516 m_chromadata = new ChromaData(m_inputSampleRate, blockSize);
|
max@1
|
517 m_chromadata->initialise();
|
max@1
|
518
|
max@1
|
519 return true;
|
max@1
|
520 }
|
max@1
|
521
|
max@1
|
522 void SongPartitioner::reset()
|
max@1
|
523 {
|
max@1
|
524 if (m_d) m_d->reset();
|
Chris@38
|
525 if (m_chromadata) m_chromadata->reset();
|
max@1
|
526 m_pluginFrameCount = 0;
|
max@1
|
527 }
|
max@1
|
528
|
max@1
|
529 SongPartitioner::OutputList SongPartitioner::getOutputDescriptors() const
|
max@1
|
530 {
|
max@1
|
531 OutputList list;
|
Chris@37
|
532 int outputCounter = 0;
|
max@1
|
533
|
max@1
|
534 OutputDescriptor beat;
|
max@1
|
535 beat.identifier = "beats";
|
max@1
|
536 beat.name = "Beats";
|
max@1
|
537 beat.description = "Beat locations labelled with metrical position";
|
max@1
|
538 beat.unit = "";
|
max@1
|
539 beat.hasFixedBinCount = true;
|
max@1
|
540 beat.binCount = 0;
|
max@1
|
541 beat.sampleType = OutputDescriptor::VariableSampleRate;
|
max@1
|
542 beat.sampleRate = 1.0 / m_stepSecs;
|
max@1
|
543 m_beatOutputNumber = outputCounter++;
|
max@1
|
544
|
max@1
|
545 OutputDescriptor bars;
|
max@1
|
546 bars.identifier = "bars";
|
max@1
|
547 bars.name = "Bars";
|
max@1
|
548 bars.description = "Bar locations";
|
max@1
|
549 bars.unit = "";
|
max@1
|
550 bars.hasFixedBinCount = true;
|
max@1
|
551 bars.binCount = 0;
|
max@1
|
552 bars.sampleType = OutputDescriptor::VariableSampleRate;
|
max@1
|
553 bars.sampleRate = 1.0 / m_stepSecs;
|
max@1
|
554 m_barsOutputNumber = outputCounter++;
|
max@1
|
555
|
max@1
|
556 OutputDescriptor beatcounts;
|
max@1
|
557 beatcounts.identifier = "beatcounts";
|
max@1
|
558 beatcounts.name = "Beat Count";
|
max@1
|
559 beatcounts.description = "Beat counter function";
|
max@1
|
560 beatcounts.unit = "";
|
max@1
|
561 beatcounts.hasFixedBinCount = true;
|
max@1
|
562 beatcounts.binCount = 1;
|
max@1
|
563 beatcounts.sampleType = OutputDescriptor::VariableSampleRate;
|
max@1
|
564 beatcounts.sampleRate = 1.0 / m_stepSecs;
|
max@1
|
565 m_beatcountsOutputNumber = outputCounter++;
|
max@1
|
566
|
max@1
|
567 OutputDescriptor beatsd;
|
max@1
|
568 beatsd.identifier = "beatsd";
|
max@1
|
569 beatsd.name = "Beat Spectral Difference";
|
max@1
|
570 beatsd.description = "Beat spectral difference function used for bar-line detection";
|
max@1
|
571 beatsd.unit = "";
|
max@1
|
572 beatsd.hasFixedBinCount = true;
|
max@1
|
573 beatsd.binCount = 1;
|
max@1
|
574 beatsd.sampleType = OutputDescriptor::VariableSampleRate;
|
max@1
|
575 beatsd.sampleRate = 1.0 / m_stepSecs;
|
max@1
|
576 m_beatsdOutputNumber = outputCounter++;
|
max@1
|
577
|
max@1
|
578 OutputDescriptor logscalespec;
|
max@1
|
579 logscalespec.identifier = "logscalespec";
|
max@1
|
580 logscalespec.name = "Log-Frequency Spectrum";
|
max@1
|
581 logscalespec.description = "Spectrum with linear frequency on a log scale.";
|
max@1
|
582 logscalespec.unit = "";
|
max@1
|
583 logscalespec.hasFixedBinCount = true;
|
max@1
|
584 logscalespec.binCount = nNote;
|
max@1
|
585 logscalespec.hasKnownExtents = false;
|
max@1
|
586 logscalespec.isQuantized = false;
|
max@1
|
587 logscalespec.sampleType = OutputDescriptor::FixedSampleRate;
|
max@1
|
588 logscalespec.hasDuration = false;
|
max@1
|
589 logscalespec.sampleRate = m_inputSampleRate/2048;
|
max@1
|
590 m_logscalespecOutputNumber = outputCounter++;
|
max@1
|
591
|
max@1
|
592 OutputDescriptor bothchroma;
|
max@1
|
593 bothchroma.identifier = "bothchroma";
|
max@1
|
594 bothchroma.name = "Chromagram and Bass Chromagram";
|
max@1
|
595 bothchroma.description = "Tuning-adjusted chromagram and bass chromagram (stacked on top of each other) from NNLS approximate transcription.";
|
max@1
|
596 bothchroma.unit = "";
|
max@1
|
597 bothchroma.hasFixedBinCount = true;
|
max@1
|
598 bothchroma.binCount = 24;
|
max@1
|
599 bothchroma.hasKnownExtents = false;
|
max@1
|
600 bothchroma.isQuantized = false;
|
max@1
|
601 bothchroma.sampleType = OutputDescriptor::FixedSampleRate;
|
max@1
|
602 bothchroma.hasDuration = false;
|
max@1
|
603 bothchroma.sampleRate = m_inputSampleRate/2048;
|
max@1
|
604 m_bothchromaOutputNumber = outputCounter++;
|
max@1
|
605
|
max@1
|
606 OutputDescriptor qchromafw;
|
max@1
|
607 qchromafw.identifier = "qchromafw";
|
max@1
|
608 qchromafw.name = "Pseudo-Quantised Chromagram and Bass Chromagram";
|
max@1
|
609 qchromafw.description = "Pseudo-Quantised Chromagram and Bass Chromagram (frames between two beats are identical).";
|
max@1
|
610 qchromafw.unit = "";
|
max@1
|
611 qchromafw.hasFixedBinCount = true;
|
max@1
|
612 qchromafw.binCount = 24;
|
max@1
|
613 qchromafw.hasKnownExtents = false;
|
max@1
|
614 qchromafw.isQuantized = false;
|
max@1
|
615 qchromafw.sampleType = OutputDescriptor::FixedSampleRate;
|
max@1
|
616 qchromafw.hasDuration = false;
|
max@1
|
617 qchromafw.sampleRate = m_inputSampleRate/2048;
|
max@1
|
618 m_qchromafwOutputNumber = outputCounter++;
|
max@1
|
619
|
max@1
|
620 OutputDescriptor qchroma;
|
max@1
|
621 qchroma.identifier = "qchroma";
|
max@1
|
622 qchroma.name = "Quantised Chromagram and Bass Chromagram";
|
max@1
|
623 qchroma.description = "Quantised Chromagram and Bass Chromagram.";
|
max@1
|
624 qchroma.unit = "";
|
max@1
|
625 qchroma.hasFixedBinCount = true;
|
max@1
|
626 qchroma.binCount = 24;
|
max@1
|
627 qchroma.hasKnownExtents = false;
|
max@1
|
628 qchroma.isQuantized = false;
|
max@1
|
629 qchroma.sampleType = OutputDescriptor::FixedSampleRate;
|
max@1
|
630 qchroma.hasDuration = true;
|
Chris@17
|
631 qchroma.sampleRate = m_inputSampleRate/2048;
|
max@1
|
632 m_qchromaOutputNumber = outputCounter++;
|
max@1
|
633
|
max@1
|
634 OutputDescriptor segm;
|
Chris@15
|
635 segm.identifier = "segmentation";
|
max@1
|
636 segm.name = "Segmentation";
|
max@1
|
637 segm.description = "Segmentation";
|
max@1
|
638 segm.unit = "segment-type";
|
max@1
|
639 segm.hasFixedBinCount = true;
|
max@1
|
640 //segm.binCount = 24;
|
max@1
|
641 segm.binCount = 1;
|
max@1
|
642 segm.hasKnownExtents = true;
|
max@1
|
643 segm.minValue = 1;
|
max@1
|
644 segm.maxValue = 5;
|
max@1
|
645 segm.isQuantized = true;
|
max@1
|
646 segm.quantizeStep = 1;
|
max@1
|
647 segm.sampleType = OutputDescriptor::VariableSampleRate;
|
Chris@17
|
648 segm.sampleRate = 1.0 / m_stepSecs;
|
max@1
|
649 segm.hasDuration = true;
|
max@1
|
650 m_segmOutputNumber = outputCounter++;
|
max@1
|
651
|
max@1
|
652
|
max@1
|
653 /*
|
max@1
|
654 OutputList list;
|
max@1
|
655 OutputDescriptor segmentation;
|
max@1
|
656 segmentation.identifier = "segmentation";
|
max@1
|
657 segmentation.name = "Segmentation";
|
max@1
|
658 segmentation.description = "Segmentation";
|
max@1
|
659 segmentation.unit = "segment-type";
|
max@1
|
660 segmentation.hasFixedBinCount = true;
|
max@1
|
661 segmentation.binCount = 1;
|
max@1
|
662 segmentation.hasKnownExtents = true;
|
max@1
|
663 segmentation.minValue = 1;
|
max@1
|
664 segmentation.maxValue = nSegmentTypes;
|
max@1
|
665 segmentation.isQuantized = true;
|
max@1
|
666 segmentation.quantizeStep = 1;
|
max@1
|
667 segmentation.sampleType = OutputDescriptor::VariableSampleRate;
|
max@1
|
668 segmentation.sampleRate = m_inputSampleRate / getPreferredStepSize();
|
max@1
|
669 list.push_back(segmentation);
|
max@1
|
670 return list;
|
max@1
|
671 */
|
max@1
|
672
|
max@1
|
673
|
max@1
|
674 list.push_back(beat);
|
max@1
|
675 list.push_back(bars);
|
max@1
|
676 list.push_back(beatcounts);
|
max@1
|
677 list.push_back(beatsd);
|
max@1
|
678 list.push_back(logscalespec);
|
max@1
|
679 list.push_back(bothchroma);
|
max@1
|
680 list.push_back(qchromafw);
|
max@1
|
681 list.push_back(qchroma);
|
max@1
|
682 list.push_back(segm);
|
max@1
|
683
|
max@1
|
684 return list;
|
max@1
|
685 }
|
max@1
|
686
|
max@1
|
687 // Executed for each frame - called from the host
|
max@1
|
688
|
max@1
|
689 // We use time domain input, because DownBeat requires it -- so we
|
max@1
|
690 // use the time-domain version of DetectionFunction::process which
|
max@1
|
691 // does its own FFT. It requires doubles as input, so we need to
|
max@1
|
692 // make a temporary copy
|
max@1
|
693
|
max@1
|
694 // We only support a single input channel
|
max@1
|
695 SongPartitioner::FeatureSet SongPartitioner::process(const float *const *inputBuffers,Vamp::RealTime timestamp)
|
max@1
|
696 {
|
max@1
|
697 if (!m_d) {
|
Chris@22
|
698 cerr << "ERROR: SongPartitioner::process: "
|
Chris@22
|
699 << "SongPartitioner has not been initialised"
|
Chris@22
|
700 << endl;
|
Chris@22
|
701 return FeatureSet();
|
max@1
|
702 }
|
max@1
|
703
|
max@1
|
704 const int fl = m_d->dfConfig.frameLength;
|
max@1
|
705 #ifndef __GNUC__
|
max@1
|
706 double *dfinput = (double *)alloca(fl * sizeof(double));
|
max@1
|
707 #else
|
max@1
|
708 double dfinput[fl];
|
max@1
|
709 #endif
|
max@1
|
710 int sampleOffset = ((m_chromaFramesizeFactor-1) * fl) / 2;
|
max@1
|
711
|
max@1
|
712 // Since chroma needs a much longer frame size, we only ever use the very
|
max@1
|
713 // beginning of the frame for beat tracking.
|
max@1
|
714 for (int i = 0; i < fl; ++i) dfinput[i] = inputBuffers[0][i];
|
max@1
|
715 double output = m_d->df->process(dfinput);
|
max@1
|
716
|
max@1
|
717 if (m_d->dfOutput.empty()) m_d->origin = timestamp;
|
max@1
|
718
|
max@1
|
719 // std::cerr << "df[" << m_d->dfOutput.size() << "] is " << output << std::endl;
|
max@1
|
720 m_d->dfOutput.push_back(output);
|
max@1
|
721
|
max@1
|
722 // Downsample and store the incoming audio block.
|
max@1
|
723 // We have an overlap on the incoming audio stream (step size is
|
max@1
|
724 // half block size) -- this function is configured to take only a
|
max@1
|
725 // step size's worth, so effectively ignoring the overlap. Note
|
max@1
|
726 // however that this means we omit the last blocksize - stepsize
|
max@1
|
727 // samples completely for the purposes of barline detection
|
max@1
|
728 // (hopefully not a problem)
|
max@1
|
729 m_d->downBeat->pushAudioBlock(inputBuffers[0]);
|
max@1
|
730
|
max@1
|
731 // The following is not done every time, but only every m_chromaFramesizeFactor times,
|
max@1
|
732 // because the chroma does not need dense time frames.
|
max@1
|
733
|
max@1
|
734 if (m_pluginFrameCount % m_chromaStepsizeFactor == 0)
|
max@1
|
735 {
|
max@1
|
736
|
max@1
|
737 // Window the full time domain, data, FFT it and process chroma stuff.
|
max@1
|
738
|
max@1
|
739 #ifndef __GNUC__
|
max@1
|
740 float *windowedBuffers = (float *)alloca(m_chromadata->blockSize * sizeof(float));
|
max@1
|
741 #else
|
max@1
|
742 float windowedBuffers[m_chromadata->blockSize];
|
max@1
|
743 #endif
|
max@1
|
744 m_chromadata->window.cut(&inputBuffers[0][0], &windowedBuffers[0]);
|
max@1
|
745
|
max@1
|
746 // adjust timestamp (we want the middle of the frame)
|
max@1
|
747 timestamp = timestamp + Vamp::RealTime::frame2RealTime(sampleOffset, lrintf(m_inputSampleRate));
|
max@1
|
748
|
max@1
|
749 m_chromadata->baseProcess(&windowedBuffers[0], timestamp);
|
max@1
|
750
|
max@1
|
751 }
|
max@1
|
752 m_pluginFrameCount++;
|
max@1
|
753
|
max@1
|
754 FeatureSet fs;
|
max@1
|
755 fs[m_logscalespecOutputNumber].push_back(
|
max@1
|
756 m_chromadata->logSpectrum.back());
|
max@1
|
757 return fs;
|
max@1
|
758 }
|
max@1
|
759
|
max@1
|
760 SongPartitioner::FeatureSet SongPartitioner::getRemainingFeatures()
|
max@1
|
761 {
|
max@1
|
762 if (!m_d) {
|
Chris@22
|
763 cerr << "ERROR: SongPartitioner::getRemainingFeatures: "
|
Chris@22
|
764 << "SongPartitioner has not been initialised"
|
Chris@22
|
765 << endl;
|
Chris@22
|
766 return FeatureSet();
|
max@1
|
767 }
|
max@1
|
768
|
Chris@16
|
769 FeatureSet masterFeatureset = beatTrack();
|
Chris@16
|
770 FeatureList chromaList = chromaFeatures();
|
max@1
|
771
|
Chris@37
|
772 for (int i = 0; i < (int)chromaList.size(); ++i)
|
max@1
|
773 {
|
max@1
|
774 masterFeatureset[m_bothchromaOutputNumber].push_back(chromaList[i]);
|
max@1
|
775 }
|
max@1
|
776
|
max@1
|
777 // quantised and pseudo-quantised (beat-wise) chroma
|
Chris@16
|
778 std::vector<FeatureList> quantisedChroma = beatQuantiser(chromaList, masterFeatureset[m_beatOutputNumber]);
|
Chris@32
|
779
|
Chris@32
|
780 if (quantisedChroma.empty()) return masterFeatureset;
|
max@1
|
781
|
max@1
|
782 masterFeatureset[m_qchromafwOutputNumber] = quantisedChroma[0];
|
max@1
|
783 masterFeatureset[m_qchromaOutputNumber] = quantisedChroma[1];
|
max@1
|
784
|
max@1
|
785 // Segmentation
|
Chris@14
|
786 masterFeatureset[m_segmOutputNumber] = runSegmenter(quantisedChroma[1]);
|
max@1
|
787
|
max@1
|
788 return(masterFeatureset);
|
max@1
|
789 }
|
max@1
|
790
|
max@1
|
791 /* ------ Beat Tracker ------ */
|
max@1
|
792
|
Chris@16
|
793 SongPartitioner::FeatureSet SongPartitioner::beatTrack()
|
max@1
|
794 {
|
max@1
|
795 vector<double> df;
|
max@1
|
796 vector<double> beatPeriod;
|
max@1
|
797 vector<double> tempi;
|
max@1
|
798
|
Chris@37
|
799 for (int i = 2; i < (int)m_d->dfOutput.size(); ++i) { // discard first two elts
|
max@1
|
800 df.push_back(m_d->dfOutput[i]);
|
max@1
|
801 beatPeriod.push_back(0.0);
|
max@1
|
802 }
|
max@1
|
803 if (df.empty()) return FeatureSet();
|
max@1
|
804
|
max@1
|
805 TempoTrackV2 tt(m_inputSampleRate, m_d->dfConfig.stepSize);
|
max@1
|
806 tt.calculateBeatPeriod(df, beatPeriod, tempi);
|
max@1
|
807
|
max@1
|
808 vector<double> beats;
|
max@1
|
809 tt.calculateBeats(df, beatPeriod, beats);
|
max@1
|
810
|
max@1
|
811 vector<int> downbeats;
|
max@1
|
812 size_t downLength = 0;
|
max@1
|
813 const float *downsampled = m_d->downBeat->getBufferedAudio(downLength);
|
max@1
|
814 m_d->downBeat->findDownBeats(downsampled, downLength, beats, downbeats);
|
max@1
|
815
|
max@1
|
816 vector<double> beatsd;
|
max@1
|
817 m_d->downBeat->getBeatSD(beatsd);
|
max@1
|
818
|
max@1
|
819 /*std::cout << "BeatTracker: found downbeats at: ";
|
max@1
|
820 for (int i = 0; i < downbeats.size(); ++i) std::cout << downbeats[i] << " " << std::endl;*/
|
max@1
|
821
|
max@1
|
822 FeatureSet returnFeatures;
|
max@1
|
823
|
max@1
|
824 char label[20];
|
max@1
|
825
|
max@1
|
826 int dbi = 0;
|
max@1
|
827 int beat = 0;
|
max@1
|
828 int bar = 0;
|
max@1
|
829
|
max@1
|
830 if (!downbeats.empty()) {
|
max@1
|
831 // get the right number for the first beat; this will be
|
max@1
|
832 // incremented before use (at top of the following loop)
|
max@1
|
833 int firstDown = downbeats[0];
|
max@1
|
834 beat = m_bpb - firstDown - 1;
|
max@1
|
835 if (beat == m_bpb) beat = 0;
|
max@1
|
836 }
|
max@1
|
837
|
Chris@37
|
838 for (int i = 0; i < (int)beats.size(); ++i) {
|
max@1
|
839
|
Chris@37
|
840 int frame = beats[i] * m_d->dfConfig.stepSize;
|
max@1
|
841
|
Chris@37
|
842 if (dbi < (int)downbeats.size() && i == downbeats[dbi]) {
|
max@1
|
843 beat = 0;
|
max@1
|
844 ++bar;
|
max@1
|
845 ++dbi;
|
max@1
|
846 } else {
|
max@1
|
847 ++beat;
|
max@1
|
848 }
|
max@1
|
849
|
max@1
|
850 /* Ooutput Section */
|
max@1
|
851
|
max@1
|
852 // outputs are:
|
max@1
|
853 //
|
max@1
|
854 // 0 -> beats
|
max@1
|
855 // 1 -> bars
|
max@1
|
856 // 2 -> beat counter function
|
max@1
|
857
|
max@1
|
858 Feature feature;
|
max@1
|
859 feature.hasTimestamp = true;
|
max@1
|
860 feature.timestamp = m_d->origin + Vamp::RealTime::frame2RealTime (frame, lrintf(m_inputSampleRate));
|
max@1
|
861
|
max@1
|
862 sprintf(label, "%d", beat + 1);
|
max@1
|
863 feature.label = label;
|
max@1
|
864 returnFeatures[m_beatOutputNumber].push_back(feature); // labelled beats
|
max@1
|
865
|
max@1
|
866 feature.values.push_back(beat + 1);
|
max@1
|
867 returnFeatures[m_beatcountsOutputNumber].push_back(feature); // beat function
|
max@1
|
868
|
Chris@37
|
869 if (i > 0 && i <= (int)beatsd.size()) {
|
max@1
|
870 feature.values.clear();
|
max@1
|
871 feature.values.push_back(beatsd[i-1]);
|
max@1
|
872 feature.label = "";
|
max@1
|
873 returnFeatures[m_beatsdOutputNumber].push_back(feature); // beat spectral difference
|
max@1
|
874 }
|
max@1
|
875
|
max@1
|
876 if (beat == 0) {
|
max@1
|
877 feature.values.clear();
|
max@1
|
878 sprintf(label, "%d", bar);
|
max@1
|
879 feature.label = label;
|
max@1
|
880 returnFeatures[m_barsOutputNumber].push_back(feature); // bars
|
max@1
|
881 }
|
max@1
|
882 }
|
max@1
|
883
|
max@1
|
884 return returnFeatures;
|
max@1
|
885 }
|
max@1
|
886
|
max@1
|
887
|
max@1
|
888 /* ------ Chroma Extractor ------ */
|
max@1
|
889
|
Chris@16
|
890 SongPartitioner::FeatureList SongPartitioner::chromaFeatures()
|
max@1
|
891 {
|
max@1
|
892
|
max@1
|
893 FeatureList returnFeatureList;
|
max@1
|
894 FeatureList tunedlogfreqspec;
|
max@1
|
895
|
max@1
|
896 if (m_chromadata->logSpectrum.size() == 0) return returnFeatureList;
|
max@1
|
897
|
max@1
|
898 /** Calculate Tuning
|
max@1
|
899 calculate tuning from (using the angle of the complex number defined by the
|
max@1
|
900 cumulative mean real and imag values)
|
max@1
|
901 **/
|
max@1
|
902 float meanTuningImag = 0;
|
max@1
|
903 float meanTuningReal = 0;
|
max@1
|
904 for (int iBPS = 0; iBPS < nBPS; ++iBPS) {
|
max@1
|
905 meanTuningReal += m_chromadata->meanTunings[iBPS] * m_chromadata->cosvalues[iBPS];
|
max@1
|
906 meanTuningImag += m_chromadata->meanTunings[iBPS] * m_chromadata->sinvalues[iBPS];
|
max@1
|
907 }
|
max@1
|
908 float cumulativetuning = 440 * pow(2,atan2(meanTuningImag, meanTuningReal)/(24*M_PI));
|
max@1
|
909 float normalisedtuning = atan2(meanTuningImag, meanTuningReal)/(2*M_PI);
|
max@1
|
910 int intShift = floor(normalisedtuning * 3);
|
max@1
|
911 float floatShift = normalisedtuning * 3 - intShift; // floatShift is a really bad name for this
|
max@1
|
912
|
max@1
|
913 char buffer0 [50];
|
max@1
|
914
|
max@1
|
915 sprintf(buffer0, "estimated tuning: %0.1f Hz", cumulativetuning);
|
max@1
|
916
|
max@1
|
917 /** Tune Log-Frequency Spectrogram
|
max@1
|
918 calculate a tuned log-frequency spectrogram (f2): use the tuning estimated above (kinda f0) to
|
max@1
|
919 perform linear interpolation on the existing log-frequency spectrogram (kinda f1).
|
max@1
|
920 **/
|
max@1
|
921 cerr << endl << "[NNLS Chroma Plugin] Tuning Log-Frequency Spectrogram ... ";
|
max@1
|
922
|
max@1
|
923 float tempValue = 0;
|
max@1
|
924
|
max@1
|
925 int count = 0;
|
max@1
|
926
|
max@1
|
927 for (FeatureList::iterator i = m_chromadata->logSpectrum.begin(); i != m_chromadata->logSpectrum.end(); ++i)
|
max@1
|
928 {
|
max@1
|
929
|
max@1
|
930 Feature f1 = *i;
|
max@1
|
931 Feature f2; // tuned log-frequency spectrum
|
max@1
|
932
|
max@1
|
933 f2.hasTimestamp = true;
|
max@1
|
934 f2.timestamp = f1.timestamp;
|
max@1
|
935
|
max@1
|
936 f2.values.push_back(0.0);
|
max@1
|
937 f2.values.push_back(0.0); // set lower edge to zero
|
max@1
|
938
|
max@1
|
939 if (m_chromadata->tuneLocal) {
|
max@1
|
940 intShift = floor(m_chromadata->localTuning[count] * 3);
|
max@1
|
941 floatShift = m_chromadata->localTuning[count] * 3 - intShift;
|
max@1
|
942 // floatShift is a really bad name for this
|
max@1
|
943 }
|
max@1
|
944
|
max@1
|
945 for (int k = 2; k < (int)f1.values.size() - 3; ++k)
|
max@1
|
946 { // interpolate all inner bins
|
max@1
|
947 tempValue = f1.values[k + intShift] * (1-floatShift) + f1.values[k+intShift+1] * floatShift;
|
max@1
|
948 f2.values.push_back(tempValue);
|
max@1
|
949 }
|
max@1
|
950
|
max@1
|
951 f2.values.push_back(0.0);
|
max@1
|
952 f2.values.push_back(0.0);
|
max@1
|
953 f2.values.push_back(0.0); // upper edge
|
max@1
|
954
|
max@1
|
955 vector<float> runningmean = SpecialConvolution(f2.values,m_chromadata->hw);
|
max@1
|
956 vector<float> runningstd;
|
max@1
|
957 for (int i = 0; i < nNote; i++) { // first step: squared values into vector (variance)
|
max@1
|
958 runningstd.push_back((f2.values[i] - runningmean[i]) * (f2.values[i] - runningmean[i]));
|
max@1
|
959 }
|
max@1
|
960 runningstd = SpecialConvolution(runningstd,m_chromadata->hw); // second step convolve
|
max@1
|
961 for (int i = 0; i < nNote; i++)
|
max@1
|
962 {
|
max@1
|
963
|
max@1
|
964 runningstd[i] = sqrt(runningstd[i]);
|
max@1
|
965 // square root to finally have running std
|
max@1
|
966
|
max@1
|
967 if (runningstd[i] > 0)
|
max@1
|
968 {
|
max@1
|
969 f2.values[i] = (f2.values[i] - runningmean[i]) > 0 ?
|
max@1
|
970 (f2.values[i] - runningmean[i]) / pow(runningstd[i],m_chromadata->whitening) : 0;
|
max@1
|
971 }
|
max@1
|
972
|
max@1
|
973 if (f2.values[i] < 0) {
|
max@1
|
974
|
max@1
|
975 cerr << "ERROR: negative value in logfreq spectrum" << endl;
|
max@1
|
976
|
max@1
|
977 }
|
max@1
|
978 }
|
max@1
|
979 tunedlogfreqspec.push_back(f2);
|
max@1
|
980 count++;
|
max@1
|
981 }
|
max@1
|
982 cerr << "done." << endl;
|
max@1
|
983 /** Semitone spectrum and chromagrams
|
max@1
|
984 Semitone-spaced log-frequency spectrum derived
|
max@1
|
985 from the tuned log-freq spectrum above. the spectrum
|
max@1
|
986 is inferred using a non-negative least squares algorithm.
|
max@1
|
987 Three different kinds of chromagram are calculated, "treble", "bass", and "both" (which means
|
max@1
|
988 bass and treble stacked onto each other).
|
max@1
|
989 **/
|
max@1
|
990 if (m_chromadata->useNNLS == 0) {
|
max@1
|
991 cerr << "[NNLS Chroma Plugin] Mapping to semitone spectrum and chroma ... ";
|
max@1
|
992 } else {
|
max@1
|
993 cerr << "[NNLS Chroma Plugin] Performing NNLS and mapping to chroma ... ";
|
max@1
|
994 }
|
max@1
|
995
|
max@1
|
996 vector<float> oldchroma = vector<float>(12,0);
|
max@1
|
997 vector<float> oldbasschroma = vector<float>(12,0);
|
max@1
|
998 count = 0;
|
max@1
|
999
|
max@1
|
1000 for (FeatureList::iterator it = tunedlogfreqspec.begin(); it != tunedlogfreqspec.end(); ++it) {
|
max@1
|
1001 Feature logfreqsp = *it; // logfreq spectrum
|
max@1
|
1002 Feature bothchroma; // treble and bass chromagram
|
max@1
|
1003
|
max@1
|
1004 bothchroma.hasTimestamp = true;
|
max@1
|
1005 bothchroma.timestamp = logfreqsp.timestamp;
|
max@1
|
1006
|
max@1
|
1007 float b[nNote];
|
max@1
|
1008
|
max@1
|
1009 bool some_b_greater_zero = false;
|
max@1
|
1010 float sumb = 0;
|
max@1
|
1011 for (int i = 0; i < nNote; i++) {
|
max@1
|
1012 b[i] = logfreqsp.values[i];
|
max@1
|
1013 sumb += b[i];
|
max@1
|
1014 if (b[i] > 0) {
|
max@1
|
1015 some_b_greater_zero = true;
|
max@1
|
1016 }
|
max@1
|
1017 }
|
max@1
|
1018
|
max@1
|
1019 // here's where the non-negative least squares algorithm calculates the note activation x
|
max@1
|
1020
|
max@1
|
1021 vector<float> chroma = vector<float>(12, 0);
|
max@1
|
1022 vector<float> basschroma = vector<float>(12, 0);
|
max@1
|
1023 float currval;
|
max@1
|
1024 int iSemitone = 0;
|
max@1
|
1025
|
max@1
|
1026 if (some_b_greater_zero) {
|
max@1
|
1027 if (m_chromadata->useNNLS == 0) {
|
max@1
|
1028 for (int iNote = nBPS/2 + 2; iNote < nNote - nBPS/2; iNote += nBPS) {
|
max@1
|
1029 currval = 0;
|
max@1
|
1030 for (int iBPS = -nBPS/2; iBPS < nBPS/2+1; ++iBPS) {
|
max@1
|
1031 currval += b[iNote + iBPS] * (1-abs(iBPS*1.0/(nBPS/2+1)));
|
max@1
|
1032 }
|
max@1
|
1033 chroma[iSemitone % 12] += currval * treblewindow[iSemitone];
|
max@1
|
1034 basschroma[iSemitone % 12] += currval * basswindow[iSemitone];
|
max@1
|
1035 iSemitone++;
|
max@1
|
1036 }
|
max@1
|
1037
|
max@1
|
1038 } else {
|
max@1
|
1039 float x[84+1000];
|
max@1
|
1040 for (int i = 1; i < 1084; ++i) x[i] = 1.0;
|
max@1
|
1041 vector<int> signifIndex;
|
max@1
|
1042 int index=0;
|
max@1
|
1043 sumb /= 84.0;
|
max@1
|
1044 for (int iNote = nBPS/2 + 2; iNote < nNote - nBPS/2; iNote += nBPS) {
|
max@1
|
1045 float currval = 0;
|
max@1
|
1046 for (int iBPS = -nBPS/2; iBPS < nBPS/2+1; ++iBPS) {
|
max@1
|
1047 currval += b[iNote + iBPS];
|
max@1
|
1048 }
|
max@1
|
1049 if (currval > 0) signifIndex.push_back(index);
|
max@1
|
1050 index++;
|
max@1
|
1051 }
|
max@1
|
1052 float rnorm;
|
max@1
|
1053 float w[84+1000];
|
max@1
|
1054 float zz[84+1000];
|
max@1
|
1055 int indx[84+1000];
|
max@1
|
1056 int mode;
|
max@1
|
1057 int dictsize = nNote*signifIndex.size();
|
max@1
|
1058
|
max@1
|
1059 float *curr_dict = new float[dictsize];
|
max@1
|
1060 for (int iNote = 0; iNote < (int)signifIndex.size(); ++iNote) {
|
max@1
|
1061 for (int iBin = 0; iBin < nNote; iBin++) {
|
max@1
|
1062 curr_dict[iNote * nNote + iBin] =
|
max@1
|
1063 1.0 * m_chromadata->dict[signifIndex[iNote] * nNote + iBin];
|
max@1
|
1064 }
|
max@1
|
1065 }
|
max@1
|
1066 nnls(curr_dict, nNote, nNote, signifIndex.size(), b, x, &rnorm, w, zz, indx, &mode);
|
max@1
|
1067 delete [] curr_dict;
|
max@1
|
1068 for (int iNote = 0; iNote < (int)signifIndex.size(); ++iNote) {
|
max@1
|
1069 // cerr << mode << endl;
|
max@1
|
1070 chroma[signifIndex[iNote] % 12] += x[iNote] * treblewindow[signifIndex[iNote]];
|
max@1
|
1071 basschroma[signifIndex[iNote] % 12] += x[iNote] * basswindow[signifIndex[iNote]];
|
max@1
|
1072 }
|
max@1
|
1073 }
|
max@1
|
1074 }
|
max@1
|
1075
|
max@1
|
1076 chroma.insert(chroma.begin(), basschroma.begin(), basschroma.end());
|
max@1
|
1077 // just stack the both chromas
|
max@1
|
1078
|
max@1
|
1079 bothchroma.values = chroma;
|
max@1
|
1080 returnFeatureList.push_back(bothchroma);
|
max@1
|
1081 count++;
|
max@1
|
1082 }
|
max@1
|
1083 cerr << "done." << endl;
|
max@1
|
1084
|
max@1
|
1085 return returnFeatureList;
|
max@1
|
1086 }
|
max@1
|
1087
|
max@1
|
1088 /* ------ Beat Quantizer ------ */
|
max@1
|
1089
|
max@4
|
1090 std::vector<Vamp::Plugin::FeatureList>
|
Chris@16
|
1091 SongPartitioner::beatQuantiser(Vamp::Plugin::FeatureList chromagram, Vamp::Plugin::FeatureList beats)
|
max@1
|
1092 {
|
max@1
|
1093 std::vector<FeatureList> returnVector;
|
max@1
|
1094
|
max@1
|
1095 FeatureList fwQchromagram; // frame-wise beat-quantised chroma
|
max@1
|
1096 FeatureList bwQchromagram; // beat-wise beat-quantised chroma
|
max@1
|
1097
|
max@4
|
1098 int nChromaFrame = (int) chromagram.size();
|
max@4
|
1099 int nBeat = (int) beats.size();
|
max@1
|
1100
|
max@1
|
1101 if (nBeat == 0 && nChromaFrame == 0) return returnVector;
|
max@1
|
1102
|
Chris@37
|
1103 int nBin = chromagram[0].values.size();
|
max@1
|
1104
|
max@1
|
1105 vector<float> tempChroma = vector<float>(nBin);
|
max@1
|
1106
|
max@1
|
1107 Vamp::RealTime beatTimestamp = Vamp::RealTime::zeroTime;
|
max@1
|
1108 int currBeatCount = -1; // start before first beat
|
max@1
|
1109 int framesInBeat = 0;
|
max@1
|
1110
|
max@4
|
1111 for (int iChroma = 0; iChroma < nChromaFrame; ++iChroma)
|
max@1
|
1112 {
|
max@4
|
1113 Vamp::RealTime frameTimestamp = chromagram[iChroma].timestamp;
|
Chris@24
|
1114 Vamp::RealTime newBeatTimestamp;
|
Chris@22
|
1115
|
Chris@37
|
1116 if (currBeatCount != (int)beats.size() - 1) {
|
Chris@37
|
1117 newBeatTimestamp = beats[currBeatCount+1].timestamp;
|
Chris@37
|
1118 } else {
|
Chris@37
|
1119 newBeatTimestamp = chromagram[nChromaFrame-1].timestamp;
|
Chris@37
|
1120 }
|
Chris@22
|
1121
|
Chris@24
|
1122 if (frameTimestamp > newBeatTimestamp ||
|
max@1
|
1123 iChroma == nChromaFrame-1)
|
max@1
|
1124 {
|
max@1
|
1125 // new beat (or last chroma frame)
|
max@1
|
1126 // 1. finish all the old beat processing
|
Chris@23
|
1127 if (framesInBeat > 0)
|
Chris@23
|
1128 {
|
Chris@23
|
1129 for (int i = 0; i < nBin; ++i) tempChroma[i] /= framesInBeat; // average
|
Chris@23
|
1130 }
|
max@1
|
1131
|
max@1
|
1132 Feature bwQchromaFrame;
|
max@1
|
1133 bwQchromaFrame.hasTimestamp = true;
|
max@1
|
1134 bwQchromaFrame.timestamp = beatTimestamp;
|
max@1
|
1135 bwQchromaFrame.values = tempChroma;
|
Chris@24
|
1136 bwQchromaFrame.duration = newBeatTimestamp - beatTimestamp;
|
max@1
|
1137 bwQchromagram.push_back(bwQchromaFrame);
|
max@1
|
1138
|
max@1
|
1139 for (int iFrame = -framesInBeat; iFrame < 0; ++iFrame)
|
max@1
|
1140 {
|
max@1
|
1141 Feature fwQchromaFrame;
|
max@1
|
1142 fwQchromaFrame.hasTimestamp = true;
|
max@1
|
1143 fwQchromaFrame.timestamp = chromagram[iChroma+iFrame].timestamp;
|
max@1
|
1144 fwQchromaFrame.values = tempChroma; // all between two beats get the same
|
max@1
|
1145 fwQchromagram.push_back(fwQchromaFrame);
|
max@1
|
1146 }
|
max@1
|
1147
|
max@1
|
1148 // 2. increments / resets for current (new) beat
|
max@1
|
1149 currBeatCount++;
|
Chris@24
|
1150 beatTimestamp = newBeatTimestamp;
|
Chris@37
|
1151 for (int i = 0; i < nBin; ++i) tempChroma[i] = 0; // average
|
max@1
|
1152 framesInBeat = 0;
|
max@1
|
1153 }
|
max@1
|
1154 framesInBeat++;
|
Chris@37
|
1155 for (int i = 0; i < nBin; ++i) tempChroma[i] += chromagram[iChroma].values[i];
|
max@1
|
1156 }
|
max@1
|
1157 returnVector.push_back(fwQchromagram);
|
max@1
|
1158 returnVector.push_back(bwQchromagram);
|
Chris@30
|
1159 return returnVector;
|
max@1
|
1160 }
|
max@1
|
1161
|
max@1
|
1162 /* -------------------------------- */
|
max@1
|
1163 /* ------ Support Functions ------ */
|
max@1
|
1164 /* -------------------------------- */
|
max@1
|
1165
|
max@1
|
1166 // one-dimesion median filter
|
max@1
|
1167 arma::vec medfilt1(arma::vec v, int medfilt_length)
|
max@1
|
1168 {
|
max@1
|
1169 int halfWin = medfilt_length/2;
|
max@1
|
1170
|
max@1
|
1171 // result vector
|
max@1
|
1172 arma::vec res = arma::zeros<arma::vec>(v.size());
|
max@1
|
1173
|
max@1
|
1174 // padding
|
max@1
|
1175 arma::vec padV = arma::zeros<arma::vec>(v.size()+medfilt_length-1);
|
max@1
|
1176
|
Chris@37
|
1177 for (int i=medfilt_length/2; i < medfilt_length/2+(int)v.size(); ++ i)
|
max@1
|
1178 {
|
max@1
|
1179 padV(i) = v(i-medfilt_length/2);
|
max@1
|
1180 }
|
max@1
|
1181
|
max@1
|
1182 // Median filter
|
max@1
|
1183 arma::vec win = arma::zeros<arma::vec>(medfilt_length);
|
max@1
|
1184
|
Chris@37
|
1185 for (int i=0; i < (int)v.size(); ++i)
|
max@1
|
1186 {
|
max@1
|
1187 win = padV.subvec(i,i+halfWin*2);
|
max@1
|
1188 win = sort(win);
|
max@1
|
1189 res(i) = win(halfWin);
|
max@1
|
1190 }
|
max@1
|
1191
|
max@1
|
1192 return res;
|
max@1
|
1193 }
|
max@1
|
1194
|
max@1
|
1195
|
max@1
|
1196 // Quantile
|
max@1
|
1197 double quantile(arma::vec v, double p)
|
max@1
|
1198 {
|
max@1
|
1199 arma::vec sortV = arma::sort(v);
|
max@1
|
1200 int n = sortV.size();
|
max@1
|
1201 arma::vec x = arma::zeros<vec>(n+2);
|
max@1
|
1202 arma::vec y = arma::zeros<vec>(n+2);
|
max@1
|
1203
|
max@1
|
1204 x(0) = 0;
|
max@1
|
1205 x(n+1) = 100;
|
max@1
|
1206
|
Chris@21
|
1207 for (int i=1; i<n+1; ++i)
|
max@1
|
1208 x(i) = 100*(0.5+(i-1))/n;
|
max@1
|
1209
|
max@1
|
1210 y(0) = sortV(0);
|
max@1
|
1211 y.subvec(1,n) = sortV;
|
max@1
|
1212 y(n+1) = sortV(n-1);
|
max@1
|
1213
|
max@1
|
1214 arma::uvec x2index = find(x>=p*100);
|
max@1
|
1215
|
max@1
|
1216 // Interpolation
|
max@1
|
1217 double x1 = x(x2index(0)-1);
|
max@1
|
1218 double x2 = x(x2index(0));
|
max@1
|
1219 double y1 = y(x2index(0)-1);
|
max@1
|
1220 double y2 = y(x2index(0));
|
max@1
|
1221
|
max@1
|
1222 double res = (y2-y1)/(x2-x1)*(p*100-x1)+y1;
|
max@1
|
1223
|
max@1
|
1224 return res;
|
max@1
|
1225 }
|
max@1
|
1226
|
max@1
|
1227 // Max Filtering
|
max@1
|
1228 arma::mat maxfilt1(arma::mat inmat, int len)
|
max@1
|
1229 {
|
max@1
|
1230 arma::mat outmat = inmat;
|
max@1
|
1231
|
Chris@37
|
1232 for (int i=0; i < (int)inmat.n_rows; ++i)
|
max@1
|
1233 {
|
max@1
|
1234 if (arma::sum(inmat.row(i)) > 0)
|
max@1
|
1235 {
|
max@1
|
1236 // Take a window of rows
|
max@1
|
1237 int startWin;
|
max@1
|
1238 int endWin;
|
max@1
|
1239
|
max@1
|
1240 if (0 > i-len)
|
max@1
|
1241 startWin = 0;
|
max@1
|
1242 else
|
max@1
|
1243 startWin = i-len;
|
max@1
|
1244
|
Chris@37
|
1245 if ((int)inmat.n_rows-1 < i+len-1)
|
max@1
|
1246 endWin = inmat.n_rows-1;
|
max@1
|
1247 else
|
max@1
|
1248 endWin = i+len-1;
|
max@1
|
1249
|
max@1
|
1250 outmat(i,span::all) = arma::max(inmat(span(startWin,endWin),span::all));
|
max@1
|
1251 }
|
max@1
|
1252 }
|
max@1
|
1253
|
max@1
|
1254 return outmat;
|
max@1
|
1255
|
max@1
|
1256 }
|
max@1
|
1257
|
max@1
|
1258 // Null Parts
|
max@1
|
1259 Part nullpart(vector<Part> parts, arma::vec barline)
|
max@1
|
1260 {
|
max@1
|
1261 arma::uvec nullindices = arma::ones<arma::uvec>(barline.size());
|
Chris@37
|
1262 for (int iPart=0; iPart<(int)parts.size(); ++iPart)
|
max@1
|
1263 {
|
Chris@21
|
1264 //for (int iIndex=0; iIndex < parts[0].indices.size(); ++iIndex)
|
Chris@37
|
1265 for (int iIndex=0; iIndex < (int)parts[iPart].indices.size(); ++iIndex)
|
Chris@21
|
1266 for (int i=0; i<parts[iPart].n; ++i)
|
max@1
|
1267 {
|
Chris@21
|
1268 int ind = parts[iPart].indices[iIndex]+i;
|
max@1
|
1269 nullindices(ind) = 0;
|
max@1
|
1270 }
|
max@1
|
1271 }
|
max@7
|
1272
|
max@1
|
1273 Part newPart;
|
max@1
|
1274 newPart.n = 1;
|
max@1
|
1275 uvec q = find(nullindices > 0);
|
max@1
|
1276
|
Chris@37
|
1277 for (int i=0; i<(int)q.size();++i)
|
max@1
|
1278 newPart.indices.push_back(q(i));
|
max@7
|
1279
|
max@1
|
1280 newPart.letter = '-';
|
max@1
|
1281 newPart.value = 0;
|
max@1
|
1282 newPart.level = 0;
|
max@1
|
1283
|
max@1
|
1284 return newPart;
|
max@1
|
1285 }
|
max@1
|
1286
|
max@1
|
1287
|
max@1
|
1288 // Merge Nulls
|
max@1
|
1289 void mergenulls(vector<Part> &parts)
|
max@1
|
1290 {
|
Chris@37
|
1291 for (int iPart=0; iPart<(int)parts.size(); ++iPart)
|
max@1
|
1292 {
|
max@1
|
1293
|
max@1
|
1294 vector<Part> newVectorPart;
|
max@1
|
1295
|
max@1
|
1296 if (parts[iPart].letter.compare("-")==0)
|
max@1
|
1297 {
|
max@1
|
1298 sort (parts[iPart].indices.begin(), parts[iPart].indices.end());
|
Chris@21
|
1299 int newpartind = -1;
|
max@1
|
1300
|
max@1
|
1301 vector<int> indices;
|
max@1
|
1302 indices.push_back(-2);
|
max@1
|
1303
|
Chris@37
|
1304 for (int iIndex=0; iIndex<(int)parts[iPart].indices.size(); ++iIndex)
|
max@1
|
1305 indices.push_back(parts[iPart].indices[iIndex]);
|
max@1
|
1306
|
Chris@37
|
1307 for (int iInd=1; iInd < (int)indices.size(); ++iInd)
|
max@1
|
1308 {
|
max@1
|
1309 if (indices[iInd] - indices[iInd-1] > 1)
|
max@1
|
1310 {
|
max@1
|
1311 newpartind++;
|
max@1
|
1312
|
max@1
|
1313 Part newPart;
|
max@1
|
1314 newPart.letter = 'n';
|
max@1
|
1315 std::stringstream out;
|
max@1
|
1316 out << newpartind+1;
|
max@1
|
1317 newPart.letter.append(out.str());
|
max@1
|
1318 newPart.value = 20+newpartind+1;
|
max@1
|
1319 newPart.n = 1;
|
max@1
|
1320 newPart.indices.push_back(indices[iInd]);
|
max@1
|
1321 newPart.level = 0;
|
max@1
|
1322
|
max@1
|
1323 newVectorPart.push_back(newPart);
|
max@1
|
1324 }
|
max@1
|
1325 else
|
max@1
|
1326 {
|
max@1
|
1327 newVectorPart[newpartind].n = newVectorPart[newpartind].n+1;
|
max@1
|
1328 }
|
max@1
|
1329 }
|
max@1
|
1330 parts.erase (parts.end());
|
max@1
|
1331
|
Chris@37
|
1332 for (int i=0; i<(int)newVectorPart.size(); ++i)
|
max@1
|
1333 parts.push_back(newVectorPart[i]);
|
max@1
|
1334 }
|
max@1
|
1335 }
|
max@1
|
1336 }
|
max@1
|
1337
|
max@1
|
1338 /* ------ Segmentation ------ */
|
max@1
|
1339
|
Chris@19
|
1340 vector<Part> songSegment(Vamp::Plugin::FeatureList quantisedChromagram)
|
max@1
|
1341 {
|
max@1
|
1342
|
max@1
|
1343
|
max@1
|
1344 /* ------ Parameters ------ */
|
max@1
|
1345 double thresh_beat = 0.85;
|
max@1
|
1346 double thresh_seg = 0.80;
|
max@1
|
1347 int medfilt_length = 5;
|
max@1
|
1348 int minlength = 28;
|
max@1
|
1349 int maxlength = 128;
|
max@1
|
1350 double quantilePerc = 0.1;
|
max@1
|
1351 /* ------------------------ */
|
max@1
|
1352
|
max@1
|
1353
|
max@1
|
1354 // Collect Info
|
Chris@19
|
1355 int nBeat = quantisedChromagram.size(); // Number of feature vector
|
Chris@19
|
1356 int nFeatValues = quantisedChromagram[0].values.size(); // Number of values for each feature vector
|
max@1
|
1357
|
Chris@27
|
1358 if (nBeat < minlength) {
|
Chris@27
|
1359 // return a single part
|
Chris@27
|
1360 vector<Part> parts;
|
Chris@27
|
1361 Part newPart;
|
Chris@27
|
1362 newPart.n = 1;
|
Chris@27
|
1363 newPart.indices.push_back(0);
|
Chris@27
|
1364 newPart.letter = "n1";
|
Chris@27
|
1365 newPart.value = 20;
|
Chris@27
|
1366 newPart.level = 0;
|
Chris@27
|
1367 parts.push_back(newPart);
|
Chris@27
|
1368 return parts;
|
Chris@27
|
1369 }
|
Chris@27
|
1370
|
max@1
|
1371 arma::irowvec timeStamp = arma::zeros<arma::imat>(1,nBeat); // Vector of Time Stamps
|
max@1
|
1372
|
Chris@22
|
1373 // Save time stamp as a Vector
|
Chris@19
|
1374 if (quantisedChromagram[0].hasTimestamp)
|
max@1
|
1375 {
|
Chris@21
|
1376 for (int i = 0; i < nBeat; ++ i)
|
Chris@19
|
1377 timeStamp[i] = quantisedChromagram[i].timestamp.nsec;
|
max@1
|
1378 }
|
max@1
|
1379
|
max@1
|
1380
|
max@1
|
1381 // Build a ObservationTOFeatures Matrix
|
max@1
|
1382 arma::mat featVal = arma::zeros<mat>(nBeat,nFeatValues/2);
|
max@1
|
1383
|
Chris@21
|
1384 for (int i = 0; i < nBeat; ++ i)
|
Chris@21
|
1385 for (int j = 0; j < nFeatValues/2; ++ j)
|
max@1
|
1386 {
|
Chris@19
|
1387 featVal(i,j) = (quantisedChromagram[i].values[j]+quantisedChromagram[i].values[j+12]) * 0.8;
|
max@1
|
1388 }
|
max@1
|
1389
|
max@1
|
1390 // Set to arbitrary value to feature vectors with low std
|
max@1
|
1391 arma::mat a = stddev(featVal,1,1);
|
max@1
|
1392
|
max@1
|
1393 // Feature Colleration Matrix
|
max@1
|
1394 arma::mat simmat0 = 1-arma::cor(arma::trans(featVal));
|
max@1
|
1395
|
max@1
|
1396
|
Chris@21
|
1397 for (int i = 0; i < nBeat; ++ i)
|
max@1
|
1398 {
|
max@1
|
1399 if (a(i)<0.000001)
|
max@1
|
1400 {
|
max@1
|
1401 featVal(i,1) = 1000; // arbitrary
|
max@1
|
1402
|
Chris@21
|
1403 for (int j = 0; j < nFeatValues/2; ++j)
|
max@1
|
1404 {
|
max@1
|
1405 simmat0(i,j) = 1;
|
max@1
|
1406 simmat0(j,i) = 1;
|
max@1
|
1407 }
|
max@1
|
1408 }
|
max@1
|
1409 }
|
max@1
|
1410
|
max@1
|
1411 arma::mat simmat = 1-simmat0/2;
|
max@1
|
1412
|
max@1
|
1413 // -------- To delate when the proble with the add of beat will be solved -------
|
Chris@21
|
1414 for (int i = 0; i < nBeat; ++ i)
|
Chris@21
|
1415 for (int j = 0; j < nBeat; ++ j)
|
max@1
|
1416 if (!std::isfinite(simmat(i,j)))
|
max@1
|
1417 simmat(i,j)=0;
|
max@1
|
1418 // ------------------------------------------------------------------------------
|
max@1
|
1419
|
max@1
|
1420 // Median Filtering applied to the Correlation Matrix
|
max@1
|
1421 // The median filter is for each diagonal of the Matrix
|
max@1
|
1422 arma::mat median_simmat = arma::zeros<arma::mat>(nBeat,nBeat);
|
max@1
|
1423
|
Chris@21
|
1424 for (int i = 0; i < nBeat; ++ i)
|
max@1
|
1425 {
|
max@1
|
1426 arma::vec temp = medfilt1(simmat.diag(i),medfilt_length);
|
max@1
|
1427 median_simmat.diag(i) = temp;
|
max@1
|
1428 median_simmat.diag(-i) = temp;
|
max@1
|
1429 }
|
max@1
|
1430
|
Chris@21
|
1431 for (int i = 0; i < nBeat; ++ i)
|
Chris@21
|
1432 for (int j = 0; j < nBeat; ++ j)
|
max@1
|
1433 if (!std::isfinite(median_simmat(i,j)))
|
max@1
|
1434 median_simmat(i,j) = 0;
|
max@1
|
1435
|
max@1
|
1436 // -------------- NOT CONVERTED -------------------------------------
|
max@1
|
1437 // if param.seg.standardise
|
max@1
|
1438 // med_median_simmat = repmat(median(median_simmat),nBeat,1);
|
max@1
|
1439 // std_median_simmat = repmat(std(median_simmat),nBeat,1);
|
max@1
|
1440 // median_simmat = (median_simmat - med_median_simmat) ./ std_median_simmat;
|
max@1
|
1441 // end
|
max@1
|
1442 // --------------------------------------------------------
|
max@1
|
1443
|
max@1
|
1444 // Retrieve Bar Bounderies
|
max@1
|
1445 arma::uvec dup = find(median_simmat > thresh_beat);
|
max@1
|
1446 arma::mat potential_duplicates = arma::zeros<arma::mat>(nBeat,nBeat);
|
max@1
|
1447 potential_duplicates.elem(dup) = arma::ones<arma::vec>(dup.size());
|
max@1
|
1448 potential_duplicates = trimatu(potential_duplicates);
|
max@1
|
1449
|
Chris@21
|
1450 int nPartlengths = round((maxlength-minlength)/4)+1;
|
max@1
|
1451 arma::vec partlengths = zeros<arma::vec>(nPartlengths);
|
max@1
|
1452
|
Chris@21
|
1453 for (int i = 0; i < nPartlengths; ++ i)
|
max@1
|
1454 partlengths(i) = (i*4)+ minlength;
|
max@1
|
1455
|
max@1
|
1456 // initialise arrays
|
max@1
|
1457 arma::cube simArray = zeros<arma::cube>(nBeat,nBeat,nPartlengths);
|
max@1
|
1458 arma::cube decisionArray2 = zeros<arma::cube>(nBeat,nBeat,nPartlengths);
|
max@1
|
1459
|
Chris@21
|
1460 //for (int iLength = 0; iLength < nPartlengths; ++ iLength)
|
Chris@21
|
1461 for (int iLength = 0; iLength < 20; ++ iLength)
|
max@1
|
1462 {
|
Chris@21
|
1463 int len = partlengths(iLength);
|
Chris@21
|
1464 int nUsedBeat = nBeat - len + 1; // number of potential rep beginnings: they can't overlap at the end of the song
|
Chris@33
|
1465
|
Chris@33
|
1466 if (nUsedBeat < 1) continue;
|
max@1
|
1467
|
Chris@21
|
1468 for (int iBeat = 0; iBeat < nUsedBeat; ++ iBeat) // looping over all columns (arbitrarily chosen columns)
|
max@1
|
1469 {
|
max@1
|
1470 arma::uvec help2 = find(potential_duplicates(span(0,nUsedBeat-1),iBeat)==1);
|
max@1
|
1471
|
Chris@37
|
1472 for (int i=0; i < (int)help2.size(); ++i)
|
max@1
|
1473 {
|
max@1
|
1474
|
max@1
|
1475 // measure how well two length len segments go together
|
max@1
|
1476 int kBeat = help2(i);
|
max@1
|
1477 arma::vec distrib = median_simmat(span(iBeat,iBeat+len-1),span(kBeat,kBeat+len-1)).diag(0);
|
max@1
|
1478 simArray(iBeat,kBeat,iLength) = quantile(distrib,quantilePerc);
|
max@1
|
1479 }
|
max@1
|
1480 }
|
max@1
|
1481
|
max@1
|
1482 arma::mat tempM = simArray(span(0,nUsedBeat-1),span(0,nUsedBeat-1),span(iLength,iLength));
|
max@1
|
1483 simArray.slice(iLength)(span(0,nUsedBeat-1),span(0,nUsedBeat-1)) = tempM + arma::trans(tempM) - (eye<mat>(nUsedBeat,nUsedBeat)%tempM);
|
max@1
|
1484
|
max@1
|
1485 // convolution
|
max@1
|
1486 arma::vec K = arma::zeros<vec>(3);
|
max@1
|
1487 K << 0.01 << 0.98 << 0.01;
|
max@1
|
1488
|
max@1
|
1489
|
Chris@37
|
1490 for (int i=0; i < (int)simArray.n_rows; ++i)
|
max@1
|
1491 {
|
max@1
|
1492 arma::rowvec t = arma::conv((arma::rowvec)simArray.slice(iLength).row(i),K);
|
max@1
|
1493 simArray.slice(iLength)(i,span::all) = t.subvec(1,t.size()-2);
|
max@1
|
1494 }
|
max@1
|
1495
|
max@1
|
1496 // take only over-average bars that do not overlap
|
max@1
|
1497
|
max@1
|
1498 arma::mat temp = arma::zeros<mat>(simArray.n_rows, simArray.n_cols);
|
max@1
|
1499 temp(span::all, span(0,nUsedBeat-1)) = simArray.slice(iLength)(span::all,span(0,nUsedBeat-1));
|
max@1
|
1500
|
Chris@37
|
1501 for (int i=0; i < (int)temp.n_rows; ++i)
|
Chris@37
|
1502 for (int j=0; j < nUsedBeat; ++j)
|
max@1
|
1503 if (temp(i,j) < thresh_seg)
|
max@1
|
1504 temp(i,j) = 0;
|
max@1
|
1505
|
max@1
|
1506 decisionArray2.slice(iLength) = temp;
|
max@1
|
1507
|
max@1
|
1508 arma::mat maxMat = maxfilt1(decisionArray2.slice(iLength),len-1);
|
max@1
|
1509
|
Chris@37
|
1510 for (int i=0; i < (int)decisionArray2.n_rows; ++i)
|
Chris@37
|
1511 for (int j=0; j < (int)decisionArray2.n_cols; ++j)
|
max@1
|
1512 if (decisionArray2.slice(iLength)(i,j) < maxMat(i,j))
|
max@1
|
1513 decisionArray2.slice(iLength)(i,j) = 0;
|
max@1
|
1514
|
max@1
|
1515 decisionArray2.slice(iLength) = decisionArray2.slice(iLength) % arma::trans(decisionArray2.slice(iLength));
|
max@1
|
1516
|
Chris@37
|
1517 for (int i=0; i < (int)simArray.n_rows; ++i)
|
Chris@37
|
1518 for (int j=0; j < (int)simArray.n_cols; ++j)
|
max@1
|
1519 if (simArray.slice(iLength)(i,j) < thresh_seg)
|
max@1
|
1520 potential_duplicates(i,j) = 0;
|
max@1
|
1521 }
|
max@1
|
1522
|
max@1
|
1523 // Milk the data
|
max@1
|
1524
|
max@1
|
1525 arma::mat bestval;
|
max@1
|
1526
|
Chris@21
|
1527 for (int iLength=0; iLength<nPartlengths; ++iLength)
|
max@1
|
1528 {
|
max@1
|
1529 arma::mat temp = arma::zeros<arma::mat>(decisionArray2.n_rows,decisionArray2.n_cols);
|
max@1
|
1530
|
Chris@37
|
1531 for (int rows=0; rows < (int)decisionArray2.n_rows; ++rows)
|
Chris@37
|
1532 for (int cols=0; cols < (int)decisionArray2.n_cols; ++cols)
|
max@1
|
1533 if (decisionArray2.slice(iLength)(rows,cols) > 0)
|
max@1
|
1534 temp(rows,cols) = 1;
|
max@1
|
1535
|
max@1
|
1536 arma::vec currLogicSum = arma::sum(temp,1);
|
max@1
|
1537
|
Chris@37
|
1538 for (int iBeat=0; iBeat < nBeat; ++iBeat)
|
max@1
|
1539 if (currLogicSum(iBeat) > 1)
|
max@1
|
1540 {
|
max@1
|
1541 arma::vec t = decisionArray2.slice(iLength)(span::all,iBeat);
|
max@1
|
1542 double currSum = sum(t);
|
max@1
|
1543
|
Chris@21
|
1544 int count = 0;
|
Chris@37
|
1545 for (int i=0; i < (int)t.size(); ++i)
|
max@1
|
1546 if (t(i)>0)
|
max@1
|
1547 count++;
|
max@1
|
1548
|
max@1
|
1549 currSum = (currSum/count)/2;
|
max@1
|
1550
|
max@1
|
1551 arma::rowvec t1;
|
max@1
|
1552 t1 << (currLogicSum(iBeat)-1) * partlengths(iLength) << currSum << iLength << iBeat << currLogicSum(iBeat);
|
max@1
|
1553
|
max@1
|
1554 bestval = join_cols(bestval,t1);
|
max@1
|
1555 }
|
max@1
|
1556 }
|
max@1
|
1557
|
max@1
|
1558 // Definition of the resulting vector
|
max@1
|
1559 vector<Part> parts;
|
max@1
|
1560
|
max@1
|
1561 // make a table of all valid sets of parts
|
max@1
|
1562
|
max@1
|
1563 char partletters[] = {'A','B','C','D','E','F','G', 'H','I','J','K','L','M','N','O','P','Q','R','S'};
|
Chris@21
|
1564 int partvalues[] = {1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19};
|
max@1
|
1565 arma::vec valid_sets = arma::ones<arma::vec>(bestval.n_rows);
|
max@1
|
1566
|
max@1
|
1567 if (!bestval.is_empty())
|
max@1
|
1568 {
|
max@1
|
1569
|
max@1
|
1570 // In questo punto viene introdotto un errore alla 3 cifra decimale
|
max@1
|
1571
|
max@1
|
1572 arma::colvec t = arma::zeros<arma::colvec>(bestval.n_rows);
|
Chris@37
|
1573 for (int i=0; i < (int)bestval.n_rows; ++i)
|
max@1
|
1574 {
|
max@1
|
1575 t(i) = bestval(i,1)*2;
|
max@1
|
1576 }
|
max@1
|
1577
|
max@1
|
1578 double m = t.max();
|
max@1
|
1579
|
max@1
|
1580 bestval(span::all,1) = bestval(span::all,1) / m;
|
max@1
|
1581 bestval(span::all,0) = bestval(span::all,0) + bestval(span::all,1);
|
max@1
|
1582
|
max@1
|
1583 arma::mat bestval2;
|
Chris@37
|
1584 for (int i=0; i < (int)bestval.n_cols; ++i)
|
max@1
|
1585 if (i!=1)
|
max@1
|
1586 bestval2 = join_rows(bestval2,bestval.col(i));
|
max@1
|
1587
|
Chris@21
|
1588 for (int kSeg=0; kSeg<6; ++kSeg)
|
max@1
|
1589 {
|
max@1
|
1590 arma::mat currbestvals = arma::zeros<arma::mat>(bestval2.n_rows, bestval2.n_cols);
|
Chris@37
|
1591 for (int i=0; i < (int)bestval2.n_rows; ++i)
|
Chris@37
|
1592 for (int j=0; j < (int)bestval2.n_cols; ++j)
|
max@1
|
1593 if (valid_sets(i))
|
max@1
|
1594 currbestvals(i,j) = bestval2(i,j);
|
max@1
|
1595
|
max@1
|
1596 arma::vec t1 = currbestvals.col(0);
|
max@1
|
1597 double ma;
|
max@1
|
1598 uword maIdx;
|
max@1
|
1599 ma = t1.max(maIdx);
|
max@6
|
1600
|
max@6
|
1601 if ((maIdx == 0)&&(ma == 0))
|
max@6
|
1602 break;
|
max@1
|
1603
|
Chris@28
|
1604 int bestLength = lrint(partlengths(currbestvals(maIdx,1)));
|
max@1
|
1605 arma::rowvec bestIndices = decisionArray2.slice(currbestvals(maIdx,1))(currbestvals(maIdx,2),span::all);
|
max@1
|
1606
|
max@1
|
1607 arma::rowvec bestIndicesMap = arma::zeros<arma::rowvec>(bestIndices.size());
|
Chris@37
|
1608 for (int i=0; i < (int)bestIndices.size(); ++i)
|
max@1
|
1609 if (bestIndices(i)>0)
|
max@1
|
1610 bestIndicesMap(i) = 1;
|
max@1
|
1611
|
max@1
|
1612 arma::rowvec mask = arma::zeros<arma::rowvec>(bestLength*2-1);
|
Chris@21
|
1613 for (int i=0; i<bestLength; ++i)
|
max@1
|
1614 mask(i+bestLength-1) = 1;
|
max@1
|
1615
|
max@1
|
1616 arma::rowvec t2 = arma::conv(bestIndicesMap,mask);
|
max@1
|
1617 arma::rowvec island = t2.subvec(mask.size()/2,t2.size()-1-mask.size()/2);
|
max@1
|
1618
|
max@1
|
1619 // Save results in the structure
|
max@1
|
1620 Part newPart;
|
max@1
|
1621 newPart.n = bestLength;
|
max@1
|
1622 uvec q1 = find(bestIndices > 0);
|
max@1
|
1623
|
Chris@37
|
1624 for (int i=0; i < (int)q1.size();++i)
|
max@1
|
1625 newPart.indices.push_back(q1(i));
|
max@1
|
1626
|
max@1
|
1627 newPart.letter = partletters[kSeg];
|
max@1
|
1628 newPart.value = partvalues[kSeg];
|
max@1
|
1629 newPart.level = kSeg+1;
|
max@1
|
1630 parts.push_back(newPart);
|
max@1
|
1631
|
max@1
|
1632 uvec q2 = find(valid_sets==1);
|
max@1
|
1633
|
Chris@37
|
1634 for (int i=0; i < (int)q2.size(); ++i)
|
max@1
|
1635 {
|
Chris@21
|
1636 int iSet = q2(i);
|
Chris@21
|
1637 int s = partlengths(bestval2(iSet,1));
|
max@1
|
1638
|
max@1
|
1639 arma::rowvec mask1 = arma::zeros<arma::rowvec>(s*2-1);
|
Chris@21
|
1640 for (int i=0; i<s; ++i)
|
max@1
|
1641 mask1(i+s-1) = 1;
|
max@1
|
1642
|
max@1
|
1643 arma::rowvec Ind = decisionArray2.slice(bestval2(iSet,1))(bestval2(iSet,2),span::all);
|
max@1
|
1644 arma::rowvec IndMap = arma::zeros<arma::rowvec>(Ind.size());
|
Chris@37
|
1645 for (int i=0; i < (int)Ind.size(); ++i)
|
max@1
|
1646 if (Ind(i)>0)
|
max@1
|
1647 IndMap(i) = 2;
|
max@1
|
1648
|
max@1
|
1649 arma::rowvec t3 = arma::conv(IndMap,mask1);
|
max@6
|
1650 arma::rowvec currislands = t3.subvec(mask1.size()/2,t3.size()-1-mask1.size()/2);
|
max@1
|
1651 arma::rowvec islandsdMult = currislands%island;
|
max@6
|
1652
|
max@1
|
1653 arma::uvec islandsIndex = find(islandsdMult > 0);
|
max@1
|
1654
|
max@6
|
1655 if (islandsIndex.size() > 0)
|
max@1
|
1656 valid_sets(iSet) = 0;
|
max@1
|
1657 }
|
max@1
|
1658 }
|
max@1
|
1659 }
|
max@1
|
1660 else
|
max@1
|
1661 {
|
max@1
|
1662 Part newPart;
|
max@1
|
1663 newPart.n = nBeat;
|
Chris@33
|
1664 newPart.indices.push_back(0);
|
max@1
|
1665 newPart.letter = 'A';
|
max@1
|
1666 newPart.value = 1;
|
max@1
|
1667 newPart.level = 1;
|
max@1
|
1668 parts.push_back(newPart);
|
max@1
|
1669 }
|
max@6
|
1670
|
max@1
|
1671 arma::vec bar = linspace(1,nBeat,nBeat);
|
max@1
|
1672 Part np = nullpart(parts,bar);
|
max@7
|
1673
|
max@1
|
1674 parts.push_back(np);
|
max@1
|
1675
|
max@1
|
1676 // -------------- NOT CONVERTED -------------------------------------
|
max@1
|
1677 // if param.seg.editor
|
max@1
|
1678 // [pa, ta] = partarray(parts);
|
max@1
|
1679 // parts = editorssearch(pa, ta, parts);
|
max@1
|
1680 // parts = [parts, nullpart(parts,1:nBeat)];
|
max@1
|
1681 // end
|
max@1
|
1682 // ------------------------------------------------------------------
|
max@1
|
1683
|
max@1
|
1684
|
max@1
|
1685 mergenulls(parts);
|
max@1
|
1686
|
max@1
|
1687
|
max@1
|
1688 // -------------- NOT CONVERTED -------------------------------------
|
max@1
|
1689 // if param.seg.editor
|
max@1
|
1690 // [pa, ta] = partarray(parts);
|
max@1
|
1691 // parts = editorssearch(pa, ta, parts);
|
max@1
|
1692 // parts = [parts, nullpart(parts,1:nBeat)];
|
max@1
|
1693 // end
|
max@1
|
1694 // ------------------------------------------------------------------
|
max@1
|
1695
|
max@1
|
1696 return parts;
|
max@1
|
1697 }
|
max@1
|
1698
|
max@1
|
1699
|
max@1
|
1700
|
Chris@19
|
1701 void songSegmentChroma(Vamp::Plugin::FeatureList quantisedChromagram, vector<Part> &parts)
|
max@1
|
1702 {
|
max@1
|
1703 // Collect Info
|
Chris@19
|
1704 int nBeat = quantisedChromagram.size(); // Number of feature vector
|
Chris@19
|
1705 int nFeatValues = quantisedChromagram[0].values.size(); // Number of values for each feature vector
|
max@1
|
1706
|
max@1
|
1707 arma::mat synchTreble = arma::zeros<mat>(nBeat,nFeatValues/2);
|
max@1
|
1708
|
Chris@21
|
1709 for (int i = 0; i < nBeat; ++ i)
|
Chris@21
|
1710 for (int j = 0; j < nFeatValues/2; ++ j)
|
max@1
|
1711 {
|
Chris@19
|
1712 synchTreble(i,j) = quantisedChromagram[i].values[j];
|
max@1
|
1713 }
|
max@1
|
1714
|
max@1
|
1715 arma::mat synchBass = arma::zeros<mat>(nBeat,nFeatValues/2);
|
max@1
|
1716
|
Chris@21
|
1717 for (int i = 0; i < nBeat; ++ i)
|
Chris@21
|
1718 for (int j = 0; j < nFeatValues/2; ++ j)
|
max@1
|
1719 {
|
Chris@19
|
1720 synchBass(i,j) = quantisedChromagram[i].values[j+12];
|
max@1
|
1721 }
|
max@1
|
1722
|
max@1
|
1723 // Process
|
max@1
|
1724
|
Chris@19
|
1725 arma::mat segTreble = arma::zeros<arma::mat>(quantisedChromagram.size(),quantisedChromagram[0].values.size()/2);
|
Chris@19
|
1726 arma::mat segBass = arma::zeros<arma::mat>(quantisedChromagram.size(),quantisedChromagram[0].values.size()/2);
|
max@1
|
1727
|
Chris@37
|
1728 for (int iPart=0; iPart < (int)parts.size(); ++iPart)
|
max@1
|
1729 {
|
max@1
|
1730 parts[iPart].nInd = parts[iPart].indices.size();
|
max@1
|
1731
|
Chris@21
|
1732 for (int kOccur=0; kOccur<parts[iPart].nInd; ++kOccur)
|
max@1
|
1733 {
|
max@1
|
1734 int kStartIndex = parts[iPart].indices[kOccur];
|
max@1
|
1735 int kEndIndex = kStartIndex + parts[iPart].n-1;
|
max@1
|
1736
|
max@1
|
1737 segTreble.rows(kStartIndex,kEndIndex) = segTreble.rows(kStartIndex,kEndIndex) + synchTreble.rows(kStartIndex,kEndIndex);
|
max@1
|
1738 segBass.rows(kStartIndex,kEndIndex) = segBass.rows(kStartIndex,kEndIndex) + synchBass.rows(kStartIndex,kEndIndex);
|
max@1
|
1739 }
|
max@1
|
1740 }
|
max@1
|
1741 }
|
max@1
|
1742
|
max@1
|
1743
|
max@1
|
1744 // Segment Integration
|
max@1
|
1745 vector<Part> songSegmentIntegration(vector<Part> &parts)
|
max@1
|
1746 {
|
max@1
|
1747 // Break up parts (every part will have one instance)
|
max@1
|
1748 vector<Part> newPartVector;
|
max@1
|
1749 vector<int> partindices;
|
max@1
|
1750
|
Chris@37
|
1751 for (int iPart=0; iPart < (int)parts.size(); ++iPart)
|
max@1
|
1752 {
|
max@1
|
1753 parts[iPart].nInd = parts[iPart].indices.size();
|
Chris@21
|
1754 for (int iInstance=0; iInstance<parts[iPart].nInd; ++iInstance)
|
max@1
|
1755 {
|
max@1
|
1756 Part newPart;
|
max@1
|
1757 newPart.n = parts[iPart].n;
|
max@1
|
1758 newPart.letter = parts[iPart].letter;
|
max@1
|
1759 newPart.value = parts[iPart].value;
|
max@1
|
1760 newPart.level = parts[iPart].level;
|
max@1
|
1761 newPart.indices.push_back(parts[iPart].indices[iInstance]);
|
max@1
|
1762 newPart.nInd = 1;
|
max@1
|
1763 partindices.push_back(parts[iPart].indices[iInstance]);
|
max@1
|
1764
|
max@1
|
1765 newPartVector.push_back(newPart);
|
max@1
|
1766 }
|
max@1
|
1767 }
|
max@1
|
1768
|
max@1
|
1769
|
max@1
|
1770 // Sort the parts in order of occurrence
|
max@1
|
1771 sort (partindices.begin(), partindices.end());
|
max@1
|
1772
|
Chris@37
|
1773 for (int i=0; i < (int)partindices.size(); ++i)
|
max@1
|
1774 {
|
max@1
|
1775 bool found = false;
|
max@1
|
1776 int in=0;
|
max@1
|
1777 while (!found)
|
max@1
|
1778 {
|
max@1
|
1779 if (newPartVector[in].indices[0] == partindices[i])
|
max@1
|
1780 {
|
max@1
|
1781 newPartVector.push_back(newPartVector[in]);
|
max@1
|
1782 newPartVector.erase(newPartVector.begin()+in);
|
max@1
|
1783 found = true;
|
max@1
|
1784 }
|
max@1
|
1785 else
|
max@1
|
1786 in++;
|
max@1
|
1787 }
|
max@1
|
1788 }
|
max@1
|
1789
|
max@1
|
1790 // Clear the vector
|
Chris@37
|
1791 for (int iNewpart=1; iNewpart < (int)newPartVector.size(); ++iNewpart)
|
max@1
|
1792 {
|
max@1
|
1793 if (newPartVector[iNewpart].n < 12)
|
max@1
|
1794 {
|
max@1
|
1795 newPartVector[iNewpart-1].n = newPartVector[iNewpart-1].n + newPartVector[iNewpart].n;
|
max@1
|
1796 newPartVector.erase(newPartVector.begin()+iNewpart);
|
max@1
|
1797 }
|
max@1
|
1798 }
|
max@1
|
1799
|
max@1
|
1800 return newPartVector;
|
max@1
|
1801 }
|
max@1
|
1802
|
max@1
|
1803 // Segmenter
|
Chris@19
|
1804 Vamp::Plugin::FeatureList SongPartitioner::runSegmenter(Vamp::Plugin::FeatureList quantisedChromagram)
|
max@1
|
1805 {
|
max@1
|
1806 /* --- Display Information --- */
|
Chris@37
|
1807 // int numBeat = quantisedChromagram.size();
|
Chris@37
|
1808 // int numFeats = quantisedChromagram[0].values.size();
|
max@1
|
1809
|
max@1
|
1810 vector<Part> parts;
|
max@1
|
1811 vector<Part> finalParts;
|
max@1
|
1812
|
Chris@19
|
1813 parts = songSegment(quantisedChromagram);
|
Chris@19
|
1814 songSegmentChroma(quantisedChromagram,parts);
|
max@7
|
1815
|
max@1
|
1816 finalParts = songSegmentIntegration(parts);
|
max@1
|
1817
|
max@1
|
1818
|
max@1
|
1819 // TEMP ----
|
Chris@21
|
1820 /*for (int i=0;i<finalParts.size(); ++i)
|
max@1
|
1821 {
|
max@6
|
1822 std::cout << "Parts n° " << i << std::endl;
|
max@6
|
1823 std::cout << "n°: " << finalParts[i].n << std::endl;
|
max@6
|
1824 std::cout << "letter: " << finalParts[i].letter << std::endl;
|
max@1
|
1825
|
max@6
|
1826 std::cout << "indices: ";
|
Chris@21
|
1827 for (int j=0;j<finalParts[i].indices.size(); ++j)
|
max@6
|
1828 std::cout << finalParts[i].indices[j] << " ";
|
max@6
|
1829
|
max@6
|
1830 std::cout << std::endl;
|
max@6
|
1831 std::cout << "level: " << finalParts[i].level << std::endl;
|
max@1
|
1832 }*/
|
max@1
|
1833
|
max@1
|
1834 // ---------
|
max@1
|
1835
|
max@1
|
1836
|
max@1
|
1837 // Output
|
max@1
|
1838
|
max@1
|
1839 Vamp::Plugin::FeatureList results;
|
max@1
|
1840
|
max@1
|
1841
|
max@1
|
1842 Feature seg;
|
max@1
|
1843
|
max@1
|
1844 arma::vec indices;
|
Chris@37
|
1845 // int idx=0;
|
max@1
|
1846 vector<int> values;
|
max@1
|
1847 vector<string> letters;
|
max@1
|
1848
|
Chris@37
|
1849 for (int iPart=0; iPart < (int)finalParts.size()-1; ++iPart)
|
max@1
|
1850 {
|
Chris@21
|
1851 int iInstance=0;
|
max@1
|
1852 seg.hasTimestamp = true;
|
max@1
|
1853
|
max@1
|
1854 int ind = finalParts[iPart].indices[iInstance];
|
max@1
|
1855 int ind1 = finalParts[iPart+1].indices[iInstance];
|
max@1
|
1856
|
Chris@19
|
1857 seg.timestamp = quantisedChromagram[ind].timestamp;
|
max@1
|
1858 seg.hasDuration = true;
|
Chris@19
|
1859 seg.duration = quantisedChromagram[ind1].timestamp-quantisedChromagram[ind].timestamp;
|
max@1
|
1860 seg.values.clear();
|
max@1
|
1861 seg.values.push_back(finalParts[iPart].value);
|
max@1
|
1862 seg.label = finalParts[iPart].letter;
|
max@1
|
1863
|
max@1
|
1864 results.push_back(seg);
|
max@1
|
1865 }
|
max@1
|
1866
|
Chris@37
|
1867 if (finalParts.size() > 0) {
|
Chris@37
|
1868 int ind = finalParts[finalParts.size()-1].indices[0];
|
Chris@37
|
1869 seg.hasTimestamp = true;
|
Chris@37
|
1870 seg.timestamp = quantisedChromagram[ind].timestamp;
|
Chris@37
|
1871 seg.hasDuration = true;
|
Chris@37
|
1872 seg.duration = quantisedChromagram[quantisedChromagram.size()-1].timestamp-quantisedChromagram[ind].timestamp;
|
Chris@37
|
1873 seg.values.clear();
|
Chris@37
|
1874 seg.values.push_back(finalParts[finalParts.size()-1].value);
|
Chris@37
|
1875 seg.label = finalParts[finalParts.size()-1].letter;
|
max@1
|
1876
|
Chris@37
|
1877 results.push_back(seg);
|
Chris@37
|
1878 }
|
max@1
|
1879
|
max@1
|
1880 return results;
|
max@1
|
1881 }
|
max@1
|
1882
|
max@1
|
1883
|
max@1
|
1884
|
max@1
|
1885
|
max@1
|
1886
|
max@1
|
1887
|
max@1
|
1888
|
max@1
|
1889
|
max@1
|
1890
|
max@1
|
1891
|
max@1
|
1892
|
max@1
|
1893
|
max@1
|
1894
|
max@1
|
1895
|
max@1
|
1896
|
max@1
|
1897
|
max@1
|
1898
|