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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 Silvet
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5
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6 A Vamp plugin for note transcription.
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7 Centre for Digital Music, Queen Mary University of London.
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8
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9 This program is free software; you can redistribute it and/or
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10 modify it under the terms of the GNU General Public License as
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11 published by the Free Software Foundation; either version 2 of the
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12 License, or (at your option) any later version. See the file
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13 COPYING included with this distribution for more information.
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14 */
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15
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16 #include "EM.h"
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17
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18 #include <cstdlib>
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19 #include <cmath>
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20
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21 #include <iostream>
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22
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23 #include "VectorOps.h"
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24 #include "Allocators.h"
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25 #include "Instruments.h"
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26
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27 using std::vector;
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28 using std::cerr;
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29 using std::endl;
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30
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31 using namespace breakfastquay;
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32
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33 static float epsilon = 1e-10;
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34
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35 EM::EM(const InstrumentPack *pack, bool useShifts) :
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36 m_pack(pack),
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37 m_noteCount(pack->templateNoteCount),
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38 m_shiftCount(useShifts ? pack->templateMaxShift * 2 + 1 : 1),
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39 m_binCount(pack->templateHeight),
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40 m_sourceCount(pack->templates.size()),
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41 m_pitchSparsity(1.1),
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42 m_shiftSparsity(1.1),
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43 m_sourceSparsity(1.2),
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44 m_lowestPitch(pack->lowestNote),
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45 m_highestPitch(pack->highestNote)
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46 {
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47 m_pitches = allocate<float>(m_noteCount);
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48 m_updatePitches = allocate<float>(m_noteCount);
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49 for (int n = 0; n < m_noteCount; ++n) {
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50 m_pitches[n] = drand48();
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51 }
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52
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53 if (useShifts) {
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54 m_shifts = allocate_channels<float>(m_shiftCount, m_noteCount);
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55 m_updateShifts = allocate_channels<float>(m_shiftCount, m_noteCount);
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56 for (int f = 0; f < m_shiftCount; ++f) {
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57 for (int n = 0; n < m_noteCount; ++n) {
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58 m_shifts[f][n] = drand48();
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59 }
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60 }
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61 } else {
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62 m_shifts = 0;
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63 m_updateShifts = 0;
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64 }
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65
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66 m_sources = allocate_channels<float>(m_sourceCount, m_noteCount);
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67 m_updateSources = allocate_channels<float>(m_sourceCount, m_noteCount);
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68 for (int i = 0; i < m_sourceCount; ++i) {
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69 for (int n = 0; n < m_noteCount; ++n) {
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70 m_sources[i][n] = (inRange(i, n) ? 1.0 : 0.0);
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71 }
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72 }
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73
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74 m_estimate = allocate<float>(m_binCount);
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75 m_q = allocate<float>(m_binCount);
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76 }
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77
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78 EM::~EM()
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79 {
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80 deallocate(m_q);
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81 deallocate(m_estimate);
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82 deallocate_channels(m_sources, m_sourceCount);
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83 deallocate_channels(m_updateSources, m_sourceCount);
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84 deallocate_channels(m_shifts, m_shiftCount);
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85 deallocate_channels(m_updateShifts, m_shiftCount);
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86 deallocate(m_pitches);
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87 deallocate(m_updatePitches);
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88 }
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89
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90 void
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91 EM::rangeFor(int instrument, int &minPitch, int &maxPitch)
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92 {
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93 minPitch = m_pack->templates[instrument].lowestNote;
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94 maxPitch = m_pack->templates[instrument].highestNote;
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95 }
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96
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97 bool
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98 EM::inRange(int instrument, int pitch)
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99 {
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100 int minPitch, maxPitch;
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101 rangeFor(instrument, minPitch, maxPitch);
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102 return (pitch >= minPitch && pitch <= maxPitch);
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103 }
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104
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105 void
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106 EM::normaliseColumn(float *column, int size)
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107 {
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108 float sum = v_sum(column, size);
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109 v_scale(column, 1.0 / sum, size);
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110 }
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111
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112 void
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113 EM::normaliseGrid(float **grid, int size1, int size2)
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114 {
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115 float *denominators = allocate_and_zero<float>(size2);
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116
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117 for (int i = 0; i < size1; ++i) {
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118 for (int j = 0; j < size2; ++j) {
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119 denominators[j] += grid[i][j];
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120 }
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121 }
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122
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123 for (int i = 0; i < size1; ++i) {
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124 v_divide(grid[i], denominators, size2);
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125 }
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126
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127 deallocate(denominators);
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128 }
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129
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130 void
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131 EM::iterate(const double *column)
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132 {
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133 float *norm = allocate<float>(m_binCount);
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134 v_convert(norm, column, m_binCount);
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135 normaliseColumn(norm, m_binCount);
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136 expectation(norm);
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137 maximisation(norm);
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138 deallocate(norm);
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139 }
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140
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141 const float *
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142 EM::templateFor(int instrument, int note, int shift)
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143 {
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144 const float *base = m_pack->templates.at(instrument).data.at(note).data();
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145 if (m_shifts) {
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146 return base + shift;
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147 } else {
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148 return base + m_pack->templateMaxShift;
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149 }
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150 }
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151
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152 void
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153 EM::expectation(const float *column)
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154 {
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155 // cerr << ".";
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156
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157 v_set(m_estimate, epsilon, m_binCount);
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158
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159 for (int f = 0; f < m_shiftCount; ++f) {
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160
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161 const float *shiftIn = m_shifts ? m_shifts[f] : 0;
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162
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163 for (int i = 0; i < m_sourceCount; ++i) {
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164
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165 const float *sourceIn = m_sources[i];
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166
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167 int lowest, highest;
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168 rangeFor(i, lowest, highest);
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169
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170 for (int n = lowest; n <= highest; ++n) {
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171
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172 const float source = sourceIn[n];
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173 const float shift = shiftIn ? shiftIn[n] : 1.0;
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174 const float pitch = m_pitches[n];
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175
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176 const float factor = pitch * source * shift;
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177 const float *w = templateFor(i, n, f);
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178
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179 v_add_with_gain(m_estimate, w, factor, m_binCount);
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180 }
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181 }
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182 }
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183
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184 for (int i = 0; i < m_binCount; ++i) {
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185 m_q[i] = column[i] / m_estimate[i];
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186 }
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187
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188 /*
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189 double l2norm = 0.0;
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190
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191 for (int i = 0; i < m_binCount; ++i) {
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192 l2norm += (column[i] - m_estimate[i]) * (column[i] - m_estimate[i]);
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193 }
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194
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195 l2norm = sqrt(l2norm);
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196 cerr << "l2norm = " << l2norm << endl;
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197 */
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198 }
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199
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200 void
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201 EM::maximisation(const float *column)
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202 {
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203 v_set(m_updatePitches, epsilon, m_noteCount);
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204
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205 for (int i = 0; i < m_sourceCount; ++i) {
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206 v_set(m_updateSources[i], epsilon, m_noteCount);
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207 }
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208
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209 if (m_shifts) {
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210 for (int i = 0; i < m_shiftCount; ++i) {
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211 v_set(m_updateShifts[i], epsilon, m_noteCount);
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212 }
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213 }
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214
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215 float *contributions = allocate<float>(m_binCount);
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216
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217 for (int f = 0; f < m_shiftCount; ++f) {
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218
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219 const float *shiftIn = m_shifts ? m_shifts[f] : 0;
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220 float *shiftOut = m_shifts ? m_updateShifts[f] : 0;
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221
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222 for (int i = 0; i < m_sourceCount; ++i) {
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223
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224 const float *sourceIn = m_sources[i];
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225 float *sourceOut = m_updateSources[i];
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226
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227 int lowest, highest;
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228 rangeFor(i, lowest, highest);
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229
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230 for (int n = lowest; n <= highest; ++n) {
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231
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232 const float shift = shiftIn ? shiftIn[n] : 1.0;
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233 const float source = sourceIn[n];
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234 const float pitch = m_pitches[n];
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235
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236 const float factor = pitch * source * shift;
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237 const float *w = templateFor(i, n, f);
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238
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239 v_copy(contributions, w, m_binCount);
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240 v_multiply(contributions, m_q, m_binCount);
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241
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242 float total = factor * v_sum(contributions, m_binCount);
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243
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244 m_updatePitches[n] += total;
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245 sourceOut[n] += total;
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246
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247 if (shiftOut) {
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248 shiftOut[n] += total;
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249 }
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250 }
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251 }
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252 }
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253
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254 if (m_pitchSparsity != 1.0) {
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255 for (int n = 0; n < m_noteCount; ++n) {
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256 m_updatePitches[n] =
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257 powf(m_updatePitches[n], m_pitchSparsity);
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258 }
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259 }
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260
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261 if (m_shifts && m_shiftSparsity != 1.0) {
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262 for (int i = 0; i < m_shiftCount; ++i) {
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263 for (int n = 0; n < m_noteCount; ++n) {
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264 m_updateShifts[i][n] =
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265 powf(m_updateShifts[i][n], m_shiftSparsity);
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266 }
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267 }
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268 }
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269
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270 if (m_sourceSparsity != 1.0) {
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271 for (int i = 0; i < m_sourceCount; ++i) {
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272 for (int n = 0; n < m_noteCount; ++n) {
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273 m_updateSources[i][n] =
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274 powf(m_updateSources[i][n], m_sourceSparsity);
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275 }
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276 }
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277 }
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278
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279 normaliseColumn(m_updatePitches, m_noteCount);
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280 std::swap(m_pitches, m_updatePitches);
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281
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282 normaliseGrid(m_updateSources, m_sourceCount, m_noteCount);
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283 std::swap(m_sources, m_updateSources);
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284
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285 if (m_shifts) {
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286 normaliseGrid(m_updateShifts, m_shiftCount, m_noteCount);
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287 std::swap(m_shifts, m_updateShifts);
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288 }
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289 }
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290
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291
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