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phaselockingvalue.cpp
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1//=============================================================================================================
15
16//=============================================================================================================
17// INCLUDES
18//=============================================================================================================
19
20#include "phaselockingvalue.h"
23#include "../network/network.h"
24
25#include <math/spectral.h>
26
27//=============================================================================================================
28// QT INCLUDES
29//=============================================================================================================
30
31#include <QDebug>
32#include <QtConcurrent>
33
34//=============================================================================================================
35// EIGEN INCLUDES
36//=============================================================================================================
37
38#include <unsupported/Eigen/FFT>
39
40//=============================================================================================================
41// USED NAMESPACES
42//=============================================================================================================
43
44using namespace CONNECTIVITYLIB;
45using namespace Eigen;
46using namespace UTILSLIB;
47
48//=============================================================================================================
49// DEFINE GLOBAL METHODS
50//=============================================================================================================
51
52//=============================================================================================================
53// DEFINE MEMBER METHODS
54//=============================================================================================================
55
59
60//*******************************************************************************************************
61
63{
64 // QElapsedTimer timer;
65 // qint64 iTime = 0;
66 // timer.start();
67
68 Network finalNetwork("PLV");
69
70 if (connectivitySettings.isEmpty()) {
71 qDebug() << "PhaseLockingValue::calculate - Input data is empty";
72 return finalNetwork;
73 }
74
76 connectivitySettings.clearIntermediateData();
77 }
78
79 finalNetwork.setSamplingFrequency(connectivitySettings.getSamplingFrequency());
80
81#ifdef EIGEN_FFTW_DEFAULT
82 fftw_make_planner_thread_safe();
83#endif
84
85 //Create nodes
86 int iNRows = connectivitySettings.at(0).matData.rows();
87 RowVectorXf rowVert = RowVectorXf::Zero(3);
88
89 for (int i = 0; i < iNRows; ++i) {
90 rowVert = RowVectorXf::Zero(3);
91
92 if (connectivitySettings.getNodePositions().rows() != 0 && i < connectivitySettings.getNodePositions().rows()) {
93 rowVert(0) = connectivitySettings.getNodePositions().row(i)(0);
94 rowVert(1) = connectivitySettings.getNodePositions().row(i)(1);
95 rowVert(2) = connectivitySettings.getNodePositions().row(i)(2);
96 }
97
98 finalNetwork.append(NetworkNode::SPtr(new NetworkNode(i, rowVert)));
99 }
100
101 // Check that iNfft >= signal length
102 int iSignalLength = connectivitySettings.at(0).matData.cols();
103 int iNfft = connectivitySettings.getFFTSize();
104
105 // Generate tapers
106 QPair<MatrixXd, VectorXd> tapers = Spectral::generateTapers(iSignalLength, connectivitySettings.getWindowType());
107
108 // Initialize
109 int iNFreqs = int(floor(iNfft / 2.0)) + 1;
110
111 // Check if start and bin amount need to be reset to full spectrum
112 if (m_iNumberBinStart == -1 ||
113 m_iNumberBinAmount == -1 ||
114 m_iNumberBinStart > iNFreqs ||
115 m_iNumberBinAmount > iNFreqs ||
117 qDebug() << "PhaseLockingValue::calculate - Resetting to full spectrum";
120 }
121
122 // Pass information about the FFT length. Use iNFreqs because we only use the half spectrum
123 finalNetwork.setFFTSize(iNFreqs);
125
126 QMutex mutex;
127
128 std::function<void(ConnectivitySettings::IntermediateTrialData&)> computeLambda = [&](ConnectivitySettings::IntermediateTrialData& inputData) {
129 compute(inputData,
130 connectivitySettings.getIntermediateSumData().vecPairCsdSum,
131 connectivitySettings.getIntermediateSumData().vecPairCsdNormalizedSum,
132 mutex,
133 iNRows,
134 iNFreqs,
135 iNfft,
136 tapers);
137 };
138
139 // iTime = timer.elapsed();
140 // qWarning() << "Preparation" << iTime;
141 // timer.restart();
142
143 // Compute PLV in parallel for all trials
144 QFuture<void> result = QtConcurrent::map(connectivitySettings.getTrialData(),
145 computeLambda);
146 result.waitForFinished();
147
148 // iTime = timer.elapsed();
149 // qWarning() << "ComputeSpectraPSDCSD" << iTime;
150 // timer.restart();
151
152 // Compute PLV
153 computePLV(connectivitySettings,
154 finalNetwork);
155
156 // iTime = timer.elapsed();
157 // qWarning() << "Compute" << iTime;
158 // timer.restart();
159
160 return finalNetwork;
161}
162
163//=============================================================================================================
164
166 QVector<QPair<int, Eigen::MatrixXcd>>& vecPairCsdSum,
167 QVector<QPair<int, MatrixXcd>>& vecPairCsdNormalizedSum,
168 QMutex& mutex,
169 int iNRows,
170 int iNFreqs,
171 int iNfft,
172 const QPair<MatrixXd, VectorXd>& tapers)
173{
174 if (inputData.vecPairCsdNormalized.size() == iNRows) {
175 //qDebug() << "PhaseLockingValue::compute - vecPairCsdNormalized was already computed for this trial.";
176 return;
177 }
178
179 int i;
180
181 // Calculate tapered spectra if not available already
182 // This code was copied and changed modified Utils/Spectra since we do not want to call the function due to time loss.
183 if (inputData.vecTapSpectra.isEmpty()) {
184 RowVectorXd vecInputFFT, rowData;
185 RowVectorXcd vecTmpFreq;
186
187 MatrixXcd matTapSpectrum(tapers.first.rows(), iNFreqs);
188
189 FFT<double> fft;
190 fft.SetFlag(fft.HalfSpectrum);
191
192 for (i = 0; i < iNRows; ++i) {
193 // Substract mean
194 rowData.array() = inputData.matData.row(i).array() - inputData.matData.row(i).mean();
195
196 // Calculate tapered spectra if not available already
197 for (int j = 0; j < tapers.first.rows(); j++) {
198 // Zero padd if necessary. The zero padding in Eigen's FFT is only working for column vectors.
199 if (rowData.cols() < iNfft) {
200 vecInputFFT.setZero(iNfft);
201 vecInputFFT.block(0, 0, 1, rowData.cols()) = rowData.cwiseProduct(tapers.first.row(j));
202 ;
203 } else {
204 vecInputFFT = rowData.cwiseProduct(tapers.first.row(j));
205 }
206
207 // FFT for freq domain returning the half spectrum and multiply taper weights
208 fft.fwd(vecTmpFreq, vecInputFFT, iNfft);
209 matTapSpectrum.row(j) = vecTmpFreq * tapers.second(j);
210 }
211
212 inputData.vecTapSpectra.append(matTapSpectrum);
213 }
214 }
215
216 // Compute CSD
217 if (inputData.vecPairCsd.isEmpty()) {
218 MatrixXcd matCsd = MatrixXcd(iNRows, m_iNumberBinAmount);
219
220 bool bNfftEven = false;
221 if (iNfft % 2 == 0) {
222 bNfftEven = true;
223 }
224
225 double denomCSD = sqrt(tapers.second.cwiseAbs2().sum()) * sqrt(tapers.second.cwiseAbs2().sum()) / 2.0;
226
227 for (i = 0; i < iNRows; ++i) {
228 for (int j = i; j < iNRows; ++j) {
229 // Compute CSD (average over tapers if necessary)
230 matCsd.row(j) = inputData.vecTapSpectra.at(i).block(0, m_iNumberBinStart, inputData.vecTapSpectra.at(i).rows(), m_iNumberBinAmount).cwiseProduct(inputData.vecTapSpectra.at(j).block(0, m_iNumberBinStart, inputData.vecTapSpectra.at(j).rows(), m_iNumberBinAmount).conjugate()).colwise().sum() / denomCSD;
231
232 // Divide first and last element by 2 due to half spectrum
233 if (m_iNumberBinStart == 0) {
234 matCsd.row(j)(0) /= 2.0;
235 }
236
237 if (bNfftEven && m_iNumberBinStart + m_iNumberBinAmount >= iNFreqs) {
238 matCsd.row(j).tail(1) /= 2.0;
239 }
240 }
241
242 inputData.vecPairCsd.append(QPair<int, MatrixXcd>(i, matCsd));
243 inputData.vecPairCsdNormalized.append(QPair<int, MatrixXcd>(i, matCsd.cwiseQuotient(matCsd.cwiseAbs())));
244 }
245
246 mutex.lock();
247
248 if (vecPairCsdSum.isEmpty()) {
249 vecPairCsdSum = inputData.vecPairCsd;
250 vecPairCsdNormalizedSum = inputData.vecPairCsdNormalized;
251 } else {
252 for (int j = 0; j < vecPairCsdSum.size(); ++j) {
253 vecPairCsdSum[j].second += inputData.vecPairCsd.at(j).second;
254 vecPairCsdNormalizedSum[j].second += inputData.vecPairCsdNormalized.at(j).second;
255 }
256 }
257
258 mutex.unlock();
259 } else {
260 if (inputData.vecPairCsdNormalized.isEmpty()) {
261 for (i = 0; i < iNRows; ++i) {
262 inputData.vecPairCsdNormalized.append(QPair<int, MatrixXcd>(i, inputData.vecPairCsd.at(i).second.cwiseQuotient(inputData.vecPairCsd.at(i).second.cwiseAbs())));
263 }
264
265 mutex.lock();
266
267 if (vecPairCsdNormalizedSum.isEmpty()) {
268 vecPairCsdNormalizedSum = inputData.vecPairCsdNormalized;
269 } else {
270 for (int j = 0; j < vecPairCsdNormalizedSum.size(); ++j) {
271 vecPairCsdNormalizedSum[j].second += inputData.vecPairCsdNormalized.at(j).second;
272 }
273 }
274
275 mutex.unlock();
276 }
277 }
278
280 inputData.vecPairCsd.clear();
281 inputData.vecTapSpectra.clear();
282 inputData.vecPairCsdNormalized.clear();
283 }
284}
285
286//=============================================================================================================
287
289 Network& finalNetwork)
290{
291 // Compute final PLV and create Network
292 MatrixXd matNom;
293 MatrixXd matWeight;
294 QSharedPointer<NetworkEdge> pEdge;
295 int j;
296
297 for (int i = 0; i < connectivitySettings.at(0).matData.rows(); ++i) {
298 matNom = connectivitySettings.getIntermediateSumData().vecPairCsdNormalizedSum.at(i).second.cwiseAbs() / connectivitySettings.size();
299
300 for (j = i; j < connectivitySettings.at(0).matData.rows(); ++j) {
301 matWeight = matNom.row(j).transpose();
302
303 pEdge = QSharedPointer<NetworkEdge>(new NetworkEdge(i, j, matWeight));
304
305 finalNetwork.getNodeAt(i)->append(pEdge);
306 finalNetwork.getNodeAt(j)->append(pEdge);
307 finalNetwork.append(pEdge);
308 }
309 }
310}
Multi-taper spectral estimation: tapered FFT, power and cross-spectral density, DPSS weighting.
Node of a connectivity CONNECTIVITYLIB::Network; carries a 3D position and the lists of incident (in ...
Weighted edge between two CONNECTIVITYLIB::NetworkNode instances; stores the full per-frequency weigh...
Graph container that stores the result of one functional-connectivity metric as nodes (sources/sensor...
Phase Locking Value (Lachaux, Rodriguez, Martinerie & Varela 1999) between every channel pair.
Functional connectivity metrics (coherence, PLV, cross-correlation, etc.).
Shared utilities (I/O helpers, spectral analysis, layout management, warp algorithms).
Aggregates trial data, spectral cache and node geometry shared by all CONNECTIVITYLIB metrics.
QList< IntermediateTrialData > & getTrialData()
const IntermediateTrialData & at(int i) const
const Eigen::MatrixX3f & getNodePositions() const
Per-trial intermediate frequency-domain data used during connectivity computation.
QVector< QPair< int, Eigen::MatrixXcd > > vecPairCsdNormalized
QVector< QPair< int, Eigen::MatrixXcd > > vecPairCsdNormalizedSum
QVector< QPair< int, Eigen::MatrixXcd > > vecPairCsdSum
static void computePLV(ConnectivitySettings &connectivitySettings, Network &finalNetwork)
static void compute(ConnectivitySettings::IntermediateTrialData &inputData, QVector< QPair< int, Eigen::MatrixXcd > > &vecPairCsdSum, QVector< QPair< int, Eigen::MatrixXcd > > &vecPairCsdNormalizedSum, QMutex &mutex, int iNRows, int iNFreqs, int iNfft, const QPair< Eigen::MatrixXd, Eigen::VectorXd > &tapers)
static Network calculate(ConnectivitySettings &connectivitySettings)
Graph container for one connectivity metric; nodes + weighted edges + threshold/visualisation state.
Definition network.h:106
void setUsedFreqBins(int iNumberFreqBins)
Definition network.cpp:493
void append(QSharedPointer< NetworkEdge > newEdge)
void setFFTSize(int iFFTSize)
Definition network.cpp:500
void setSamplingFrequency(float fSFreq)
Definition network.cpp:479
QSharedPointer< NetworkNode > getNodeAt(int i)
Definition network.cpp:143
Weighted, directional edge in a Network; carries per-frequency weights plus a band-averaged scalar.
Definition networkedge.h:85
Graph node carrying a 3D position and its incident in/out, full/thresholded edge lists.
Definition networknode.h:83
QSharedPointer< NetworkNode > SPtr
Definition networknode.h:85
static QPair< Eigen::MatrixXd, Eigen::VectorXd > generateTapers(int iSignalLength, const QString &sWindowType="hanning")
Definition spectral.cpp:270