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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 "Silvet.h"
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17 #include "EM.h"
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18
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19 #include <cq/CQSpectrogram.h>
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20
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21 #include "MedianFilter.h"
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22 #include "constant-q-cpp/src/dsp/Resampler.h"
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23
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24 #include <vector>
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25
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26 #include <cstdio>
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27
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28 using std::vector;
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29 using std::cout;
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30 using std::cerr;
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31 using std::endl;
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32 using Vamp::RealTime;
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33
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34 static int processingSampleRate = 44100;
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35 static int processingBPO = 60;
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36 static int processingHeight = 545;
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37 static int processingNotes = 88;
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38
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39 Silvet::Silvet(float inputSampleRate) :
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40 Plugin(inputSampleRate),
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41 m_instruments(InstrumentPack::listInstrumentPacks()),
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42 m_resampler(0),
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43 m_cq(0),
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44 m_hqMode(true),
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45 m_instrument(0)
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46 {
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47 }
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48
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49 Silvet::~Silvet()
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50 {
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51 delete m_resampler;
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52 delete m_cq;
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53 for (int i = 0; i < (int)m_postFilter.size(); ++i) {
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54 delete m_postFilter[i];
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55 }
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56 }
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57
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58 string
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59 Silvet::getIdentifier() const
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60 {
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61 return "silvet";
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62 }
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63
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64 string
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65 Silvet::getName() const
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66 {
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67 return "Silvet Note Transcription";
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68 }
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69
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70 string
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71 Silvet::getDescription() const
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72 {
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73 // Return something helpful here!
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74 return "";
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75 }
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76
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77 string
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78 Silvet::getMaker() const
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79 {
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80 // Your name here
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81 return "";
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82 }
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83
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84 int
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85 Silvet::getPluginVersion() const
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86 {
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87 return 1;
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88 }
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89
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90 string
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91 Silvet::getCopyright() const
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92 {
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93 // This function is not ideally named. It does not necessarily
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94 // need to say who made the plugin -- getMaker does that -- but it
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95 // should indicate the terms under which it is distributed. For
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96 // example, "Copyright (year). All Rights Reserved", or "GPL"
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97 return "";
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98 }
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99
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100 Silvet::InputDomain
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101 Silvet::getInputDomain() const
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102 {
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103 return TimeDomain;
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104 }
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105
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106 size_t
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107 Silvet::getPreferredBlockSize() const
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108 {
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109 return 0;
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110 }
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111
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112 size_t
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113 Silvet::getPreferredStepSize() const
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114 {
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115 return 0;
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116 }
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117
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118 size_t
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119 Silvet::getMinChannelCount() const
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120 {
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121 return 1;
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122 }
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123
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124 size_t
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125 Silvet::getMaxChannelCount() const
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126 {
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127 return 1;
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128 }
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129
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130 Silvet::ParameterList
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131 Silvet::getParameterDescriptors() const
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132 {
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133 ParameterList list;
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134
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135 ParameterDescriptor desc;
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136 desc.identifier = "mode";
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137 desc.name = "Processing mode";
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138 desc.unit = "";
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139 desc.description = "Determines the tradeoff of processing speed against transcription quality";
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140 desc.minValue = 0;
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141 desc.maxValue = 1;
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142 desc.defaultValue = 1;
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143 desc.isQuantized = true;
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144 desc.quantizeStep = 1;
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145 desc.valueNames.push_back("Draft: faster");
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146 desc.valueNames.push_back("Intensive: usually higher quality");
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147 list.push_back(desc);
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148
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149 desc.identifier = "soloinstrument";
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150 desc.name = "Instrument in recording";
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151 desc.unit = "";
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152 desc.description = "The instrument known to be present in the recording, if there is only one";
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153 desc.minValue = 0;
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154 desc.maxValue = m_instruments.size()-1;
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155 desc.defaultValue = 0;
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156 desc.isQuantized = true;
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157 desc.quantizeStep = 1;
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158 desc.valueNames.clear();
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159 for (int i = 0; i < int(m_instruments.size()); ++i) {
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160 desc.valueNames.push_back(m_instruments[i].name);
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161 }
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162
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163 list.push_back(desc);
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164
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165 return list;
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166 }
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167
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168 float
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169 Silvet::getParameter(string identifier) const
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170 {
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171 if (identifier == "mode") {
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172 return m_hqMode ? 1.f : 0.f;
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173 } else if (identifier == "soloinstrument") {
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174 return m_instrument;
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175 }
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176 return 0;
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177 }
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178
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179 void
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180 Silvet::setParameter(string identifier, float value)
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181 {
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182 if (identifier == "mode") {
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183 m_hqMode = (value > 0.5);
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184 } else if (identifier == "soloinstrument") {
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185 m_instrument = lrintf(value);
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186 }
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187 }
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188
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189 Silvet::ProgramList
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190 Silvet::getPrograms() const
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191 {
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192 ProgramList list;
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193 return list;
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194 }
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195
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196 string
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197 Silvet::getCurrentProgram() const
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198 {
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199 return "";
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200 }
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201
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202 void
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203 Silvet::selectProgram(string name)
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204 {
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205 }
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206
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207 Silvet::OutputList
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208 Silvet::getOutputDescriptors() const
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209 {
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210 OutputList list;
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211
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212 OutputDescriptor d;
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213 d.identifier = "notes";
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214 d.name = "Note transcription";
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215 d.description = "Overall note transcription across selected instruments";
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216 d.unit = "Hz";
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217 d.hasFixedBinCount = true;
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218 d.binCount = 2;
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219 d.binNames.push_back("Frequency");
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220 d.binNames.push_back("Velocity");
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221 d.hasKnownExtents = false;
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222 d.isQuantized = false;
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223 d.sampleType = OutputDescriptor::VariableSampleRate;
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224 d.sampleRate = m_inputSampleRate / (m_cq ? m_cq->getColumnHop() : 62);
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225 d.hasDuration = true;
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226 m_notesOutputNo = list.size();
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227 list.push_back(d);
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228
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229 return list;
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230 }
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231
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232 std::string
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233 Silvet::noteName(int i) const
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234 {
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235 static const char *names[] = {
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236 "A", "A#", "B", "C", "C#", "D", "D#", "E", "F", "F#", "G", "G#"
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237 };
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238
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239 const char *n = names[i % 12];
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240
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241 int oct = (i + 9) / 12;
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242
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243 char buf[20];
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244 sprintf(buf, "%s%d", n, oct);
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245
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246 return buf;
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247 }
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248
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249 float
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250 Silvet::noteFrequency(int note) const
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251 {
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252 return float(27.5 * pow(2.0, note / 12.0));
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253 }
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254
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255 bool
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256 Silvet::initialise(size_t channels, size_t stepSize, size_t blockSize)
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257 {
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258 if (channels < getMinChannelCount() ||
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259 channels > getMaxChannelCount()) return false;
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260
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261 if (stepSize != blockSize) {
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262 cerr << "Silvet::initialise: Step size must be the same as block size ("
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263 << stepSize << " != " << blockSize << ")" << endl;
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264 return false;
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265 }
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266
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267 m_blockSize = blockSize;
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268
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269 reset();
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270
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271 return true;
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272 }
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273
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274 void
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275 Silvet::reset()
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276 {
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277 delete m_resampler;
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278 delete m_cq;
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279
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280 if (m_inputSampleRate != processingSampleRate) {
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281 m_resampler = new Resampler(m_inputSampleRate, processingSampleRate);
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282 } else {
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283 m_resampler = 0;
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284 }
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285
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286 CQParameters params(processingSampleRate,
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287 27.5,
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288 processingSampleRate / 3,
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289 processingBPO);
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290
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291 params.q = 0.95; // MIREX code uses 0.8, but it seems 0.9 or lower
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292 // drops the FFT size to 512 from 1024 and alters
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293 // some other processing parameters, making
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294 // everything much, much slower. Could be a flaw
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295 // in the CQ parameter calculations, must check
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296 params.atomHopFactor = 0.3;
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297 params.threshold = 0.0005;
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298 params.window = CQParameters::Hann; //!!! todo: test whether it makes any difference
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299
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300 m_cq = new CQSpectrogram(params, CQSpectrogram::InterpolateLinear);
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301
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302 for (int i = 0; i < (int)m_postFilter.size(); ++i) {
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303 delete m_postFilter[i];
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304 }
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305 m_postFilter.clear();
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306 for (int i = 0; i < processingNotes; ++i) {
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307 m_postFilter.push_back(new MedianFilter<double>(3));
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308 }
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309 m_pianoRoll.clear();
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310 m_columnCount = 0;
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311 m_reducedColumnCount = 0;
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312 m_startTime = RealTime::zeroTime;
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313 }
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314
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315 Silvet::FeatureSet
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316 Silvet::process(const float *const *inputBuffers, Vamp::RealTime timestamp)
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317 {
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318 if (m_columnCount == 0) {
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319 m_startTime = timestamp;
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320 }
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321
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322 vector<double> data;
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323 for (int i = 0; i < m_blockSize; ++i) {
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324 data.push_back(inputBuffers[0][i]);
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325 }
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326
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327 if (m_resampler) {
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328 data = m_resampler->process(data.data(), data.size());
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329 }
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330
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331 Grid cqout = m_cq->process(data);
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332 FeatureSet fs = transcribe(cqout);
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333 return fs;
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334 }
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335
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336 Silvet::FeatureSet
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337 Silvet::getRemainingFeatures()
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338 {
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339 Grid cqout = m_cq->getRemainingOutput();
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340 FeatureSet fs = transcribe(cqout);
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341 return fs;
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342 }
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343
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344 Silvet::FeatureSet
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345 Silvet::transcribe(const Grid &cqout)
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346 {
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347 Grid filtered = preProcess(cqout);
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348
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349 FeatureSet fs;
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350
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351 if (filtered.empty()) return fs;
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352
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353 int width = filtered.size();
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354
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355 int iterations = 12; //!!! more might be good?
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356
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357 Grid pitchMatrix(width, vector<double>(processingNotes));
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358
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359 #pragma omp parallel for
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360 for (int i = 0; i < width; ++i) {
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361
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362 double sum = 0.0;
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363 for (int j = 0; j < processingHeight; ++j) {
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364 sum += filtered.at(i).at(j);
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365 }
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366
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367 // cerr << "sum: " << sum << endl;
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368
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369 if (sum < 1e-5) continue;
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370
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371 EM em(&m_instruments[m_instrument], m_hqMode);
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372
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373 for (int j = 0; j < iterations; ++j) {
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374 em.iterate(filtered.at(i).data());
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375 }
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376
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377 const float *pitches = em.getPitchDistribution();
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378
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379 //!!! note: check the CQ output (and most immediately, the sum values here) against the MATLAB implementation
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380
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381 for (int j = 0; j < processingNotes; ++j) {
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382 pitchMatrix[i][j] = pitches[j] * sum;
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383 }
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384 }
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385
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386 for (int i = 0; i < width; ++i) {
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387
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388 FeatureList noteFeatures = postProcess(pitchMatrix[i]);
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389
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390 for (FeatureList::const_iterator fi = noteFeatures.begin();
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391 fi != noteFeatures.end(); ++fi) {
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392 fs[m_notesOutputNo].push_back(*fi);
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393 }
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394 }
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395
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396 return fs;
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397 }
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398
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399 Silvet::Grid
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400 Silvet::preProcess(const Grid &in)
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401 {
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402 int width = in.size();
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403
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404 // reduce to 100 columns per second, or one column every 441 samples
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405
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406 int spacing = processingSampleRate / 100;
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407
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408 Grid out;
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409
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Chris@58
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410 // We count the CQ latency in terms of processing hops, but
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411 // actually it probably isn't an exact number of hops so this
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Chris@58
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412 // isn't quite accurate. But the small constant offset is
|
Chris@58
|
413 // practically irrelevant compared to the jitter from the 40ms
|
Chris@58
|
414 // frame size we reduce to in a moment
|
Chris@33
|
415 int latentColumns = m_cq->getLatency() / m_cq->getColumnHop();
|
Chris@33
|
416
|
Chris@32
|
417 for (int i = 0; i < width; ++i) {
|
Chris@32
|
418
|
Chris@33
|
419 if (m_columnCount < latentColumns) {
|
Chris@33
|
420 ++m_columnCount;
|
Chris@33
|
421 continue;
|
Chris@33
|
422 }
|
Chris@33
|
423
|
Chris@32
|
424 int prevSampleNo = (m_columnCount - 1) * m_cq->getColumnHop();
|
Chris@32
|
425 int sampleNo = m_columnCount * m_cq->getColumnHop();
|
Chris@32
|
426
|
Chris@32
|
427 bool select = (sampleNo / spacing != prevSampleNo / spacing);
|
Chris@32
|
428
|
Chris@32
|
429 if (select) {
|
Chris@32
|
430 vector<double> inCol = in[i];
|
Chris@32
|
431 vector<double> outCol(processingHeight);
|
Chris@32
|
432
|
Chris@32
|
433 // we reverse the column as we go (the CQ output is
|
Chris@32
|
434 // "upside-down", with high frequencies at the start of
|
Chris@32
|
435 // each column, and we want it the other way around) and
|
Chris@32
|
436 // then ignore the first 55 (lowest-frequency) bins,
|
Chris@32
|
437 // giving us 545 bins instead of 600
|
Chris@32
|
438
|
Chris@32
|
439 for (int j = 0; j < processingHeight; ++j) {
|
Chris@46
|
440 int ix = inCol.size() - j - 55;
|
Chris@46
|
441 outCol[j] = inCol[ix];
|
Chris@46
|
442 }
|
Chris@32
|
443
|
Chris@46
|
444 vector<double> noiseLevel1 =
|
Chris@46
|
445 MedianFilter<double>::filter(40, outCol);
|
Chris@46
|
446 for (int j = 0; j < processingHeight; ++j) {
|
Chris@46
|
447 noiseLevel1[j] = std::min(outCol[j], noiseLevel1[j]);
|
Chris@46
|
448 }
|
Chris@32
|
449
|
Chris@46
|
450 vector<double> noiseLevel2 =
|
Chris@46
|
451 MedianFilter<double>::filter(40, noiseLevel1);
|
Chris@46
|
452 for (int j = 0; j < processingHeight; ++j) {
|
Chris@46
|
453 outCol[j] = std::max(outCol[j] - noiseLevel2[j], 0.0);
|
Chris@32
|
454 }
|
Chris@32
|
455
|
Chris@32
|
456 // then we only use every fourth filtered column, for 25
|
Chris@32
|
457 // columns per second in the eventual grid
|
Chris@32
|
458
|
Chris@32
|
459 if (m_reducedColumnCount % 4 == 0) {
|
Chris@32
|
460 out.push_back(outCol);
|
Chris@32
|
461 }
|
Chris@32
|
462
|
Chris@32
|
463 ++m_reducedColumnCount;
|
Chris@32
|
464 }
|
Chris@32
|
465
|
Chris@32
|
466 ++m_columnCount;
|
Chris@32
|
467 }
|
Chris@32
|
468
|
Chris@32
|
469 return out;
|
Chris@32
|
470 }
|
Chris@32
|
471
|
Chris@41
|
472 Vamp::Plugin::FeatureList
|
Chris@41
|
473 Silvet::postProcess(const vector<double> &pitches)
|
Chris@41
|
474 {
|
Chris@41
|
475 vector<double> filtered;
|
Chris@41
|
476
|
Chris@41
|
477 for (int j = 0; j < processingNotes; ++j) {
|
Chris@55
|
478 m_postFilter[j]->push(pitches[j]);
|
Chris@41
|
479 filtered.push_back(m_postFilter[j]->get());
|
Chris@41
|
480 }
|
Chris@41
|
481
|
Chris@69
|
482 int postFilterLatency = int(m_postFilter[0]->getSize() / 2);
|
Chris@69
|
483
|
Chris@41
|
484 // Threshold for level and reduce number of candidate pitches
|
Chris@41
|
485
|
Chris@41
|
486 int polyphony = 5;
|
Chris@150
|
487
|
Chris@150
|
488 //!!! make this a parameter (was 4.8, try adjusting, compare levels against matlab code)
|
Chris@150
|
489 double threshold = 6;
|
Chris@154
|
490 // double threshold = 4.8;
|
Chris@41
|
491
|
Chris@41
|
492 typedef std::multimap<double, int> ValueIndexMap;
|
Chris@41
|
493
|
Chris@41
|
494 ValueIndexMap strengths;
|
Chris@41
|
495 for (int j = 0; j < processingNotes; ++j) {
|
Chris@41
|
496 strengths.insert(ValueIndexMap::value_type(filtered[j], j));
|
Chris@41
|
497 }
|
Chris@41
|
498
|
Chris@55
|
499 map<int, double> active;
|
Chris@41
|
500 ValueIndexMap::const_iterator si = strengths.end();
|
Chris@45
|
501 while (int(active.size()) < polyphony) {
|
Chris@41
|
502 --si;
|
Chris@41
|
503 if (si->first < threshold) break;
|
Chris@152
|
504 // cerr << si->second << " : " << si->first << endl;
|
Chris@55
|
505 active[si->second] = si->first;
|
Chris@45
|
506 if (si == strengths.begin()) break;
|
Chris@41
|
507 }
|
Chris@41
|
508
|
Chris@41
|
509 // Minimum duration pruning, and conversion to notes. We can only
|
Chris@41
|
510 // report notes that have just ended (i.e. that are absent in the
|
Chris@41
|
511 // latest active set but present in the last set in the piano
|
Chris@41
|
512 // roll) -- any notes that ended earlier will have been reported
|
Chris@41
|
513 // already, and if they haven't ended, we don't know their
|
Chris@41
|
514 // duration.
|
Chris@41
|
515
|
Chris@41
|
516 int width = m_pianoRoll.size();
|
Chris@41
|
517
|
Chris@150
|
518 //!!! adjust to only keep notes >= 100ms? or so
|
Chris@152
|
519 int durationThreshold = 3; // columns
|
Chris@41
|
520
|
Chris@41
|
521 FeatureList noteFeatures;
|
Chris@41
|
522
|
Chris@41
|
523 if (width < durationThreshold + 1) {
|
Chris@41
|
524 m_pianoRoll.push_back(active);
|
Chris@41
|
525 return noteFeatures;
|
Chris@41
|
526 }
|
Chris@41
|
527
|
Chris@41
|
528 // we have 25 columns per second
|
Chris@41
|
529 double columnDuration = 1.0 / 25.0;
|
Chris@41
|
530
|
Chris@150
|
531 //!!! try: 20ms intervals in intensive mode
|
Chris@150
|
532 //!!! try: repeated note detection? (look for change in first derivative of the pitch matrix)
|
Chris@150
|
533
|
Chris@55
|
534 for (map<int, double>::const_iterator ni = m_pianoRoll[width-1].begin();
|
Chris@41
|
535 ni != m_pianoRoll[width-1].end(); ++ni) {
|
Chris@41
|
536
|
Chris@55
|
537 int note = ni->first;
|
Chris@41
|
538
|
Chris@41
|
539 if (active.find(note) != active.end()) {
|
Chris@41
|
540 // the note is still playing
|
Chris@41
|
541 continue;
|
Chris@41
|
542 }
|
Chris@41
|
543
|
Chris@41
|
544 // the note was playing but just ended
|
Chris@41
|
545 int end = width;
|
Chris@41
|
546 int start = end-1;
|
Chris@41
|
547
|
Chris@57
|
548 double maxStrength = 0.0;
|
Chris@55
|
549
|
Chris@41
|
550 while (m_pianoRoll[start].find(note) != m_pianoRoll[start].end()) {
|
Chris@57
|
551 double strength = m_pianoRoll[start][note];
|
Chris@57
|
552 if (strength > maxStrength) {
|
Chris@57
|
553 maxStrength = strength;
|
Chris@57
|
554 }
|
Chris@41
|
555 --start;
|
Chris@41
|
556 }
|
Chris@41
|
557 ++start;
|
Chris@41
|
558
|
Chris@41
|
559 int duration = width - start;
|
Chris@62
|
560 // cerr << "duration " << duration << " for just-ended note " << note << endl;
|
Chris@41
|
561 if (duration < durationThreshold) {
|
Chris@41
|
562 // spurious
|
Chris@41
|
563 continue;
|
Chris@41
|
564 }
|
Chris@41
|
565
|
Chris@57
|
566 int velocity = maxStrength * 2;
|
Chris@55
|
567 if (velocity > 127) velocity = 127;
|
Chris@55
|
568
|
Chris@152
|
569 // cerr << "Found a genuine note, starting at " << columnDuration * start << " with duration " << columnDuration * duration << endl;
|
Chris@62
|
570
|
Chris@41
|
571 Feature nf;
|
Chris@41
|
572 nf.hasTimestamp = true;
|
Chris@69
|
573 nf.timestamp = RealTime::fromSeconds
|
Chris@150
|
574 (columnDuration * (start - postFilterLatency) + 0.02);
|
Chris@41
|
575 nf.hasDuration = true;
|
Chris@69
|
576 nf.duration = RealTime::fromSeconds
|
Chris@69
|
577 (columnDuration * duration);
|
Chris@41
|
578 nf.values.push_back(noteFrequency(note));
|
Chris@55
|
579 nf.values.push_back(velocity);
|
Chris@41
|
580 nf.label = noteName(note);
|
Chris@41
|
581 noteFeatures.push_back(nf);
|
Chris@41
|
582 }
|
Chris@41
|
583
|
Chris@41
|
584 m_pianoRoll.push_back(active);
|
Chris@41
|
585
|
Chris@62
|
586 // cerr << "returning " << noteFeatures.size() << " complete note(s) " << endl;
|
Chris@41
|
587
|
Chris@41
|
588 return noteFeatures;
|
Chris@41
|
589 }
|
Chris@41
|
590
|