annotate layer/SpectrogramLayer.cpp @ 1040:25b035362c44 spectrogram-minor-refactor

Truncate edges when about to paint beyond limits of cache
author Chris Cannam
date Wed, 03 Feb 2016 16:51:37 +0000
parents bfce7940c017
children fccee028a522
rev   line source
Chris@58 1 /* -*- c-basic-offset: 4 indent-tabs-mode: nil -*- vi:set ts=8 sts=4 sw=4: */
Chris@0 2
Chris@0 3 /*
Chris@59 4 Sonic Visualiser
Chris@59 5 An audio file viewer and annotation editor.
Chris@59 6 Centre for Digital Music, Queen Mary, University of London.
Chris@484 7 This file copyright 2006-2009 Chris Cannam and QMUL.
Chris@0 8
Chris@59 9 This program is free software; you can redistribute it and/or
Chris@59 10 modify it under the terms of the GNU General Public License as
Chris@59 11 published by the Free Software Foundation; either version 2 of the
Chris@59 12 License, or (at your option) any later version. See the file
Chris@59 13 COPYING included with this distribution for more information.
Chris@0 14 */
Chris@0 15
Chris@0 16 #include "SpectrogramLayer.h"
Chris@0 17
Chris@128 18 #include "view/View.h"
Chris@0 19 #include "base/Profiler.h"
Chris@0 20 #include "base/AudioLevel.h"
Chris@0 21 #include "base/Window.h"
Chris@24 22 #include "base/Pitch.h"
Chris@118 23 #include "base/Preferences.h"
Chris@167 24 #include "base/RangeMapper.h"
Chris@253 25 #include "base/LogRange.h"
Chris@376 26 #include "widgets/CommandHistory.h"
Chris@376 27 #include "ColourMapper.h"
Chris@283 28 #include "ImageRegionFinder.h"
Chris@484 29 #include "data/model/Dense3DModelPeakCache.h"
Chris@690 30 #include "PianoScale.h"
Chris@0 31
Chris@0 32 #include <QPainter>
Chris@0 33 #include <QImage>
Chris@0 34 #include <QPixmap>
Chris@0 35 #include <QRect>
Chris@92 36 #include <QApplication>
Chris@178 37 #include <QMessageBox>
Chris@283 38 #include <QMouseEvent>
Chris@316 39 #include <QTextStream>
Chris@1017 40 #include <QSettings>
Chris@0 41
Chris@0 42 #include <iostream>
Chris@0 43
Chris@0 44 #include <cassert>
Chris@0 45 #include <cmath>
Chris@0 46
Chris@545 47 #ifndef __GNUC__
Chris@545 48 #include <alloca.h>
Chris@545 49 #endif
Chris@545 50
Chris@1037 51 //#define DEBUG_SPECTROGRAM_REPAINT 1
Chris@1025 52
Chris@1025 53 using namespace std;
Chris@907 54
Chris@44 55 SpectrogramLayer::SpectrogramLayer(Configuration config) :
Chris@0 56 m_model(0),
Chris@0 57 m_channel(0),
Chris@0 58 m_windowSize(1024),
Chris@0 59 m_windowType(HanningWindow),
Chris@97 60 m_windowHopLevel(2),
Chris@109 61 m_zeroPadLevel(0),
Chris@107 62 m_fftSize(1024),
Chris@0 63 m_gain(1.0),
Chris@215 64 m_initialGain(1.0),
Chris@37 65 m_threshold(0.0),
Chris@215 66 m_initialThreshold(0.0),
Chris@9 67 m_colourRotation(0),
Chris@215 68 m_initialRotation(0),
Chris@119 69 m_minFrequency(10),
Chris@0 70 m_maxFrequency(8000),
Chris@135 71 m_initialMaxFrequency(8000),
Chris@0 72 m_colourScale(dBColourScale),
Chris@197 73 m_colourMap(0),
Chris@0 74 m_frequencyScale(LinearFrequencyScale),
Chris@37 75 m_binDisplay(AllBins),
Chris@862 76 m_normalization(NoNormalization),
Chris@133 77 m_lastEmittedZoomStep(-1),
Chris@390 78 m_synchronous(false),
Chris@608 79 m_haveDetailedScale(false),
Chris@193 80 m_exiting(false),
Chris@193 81 m_sliceableModel(0)
Chris@0 82 {
Chris@1017 83 QString colourConfigName = "spectrogram-colour";
Chris@1017 84 int colourConfigDefault = int(ColourMapper::Green);
Chris@1017 85
Chris@215 86 if (config == FullRangeDb) {
Chris@215 87 m_initialMaxFrequency = 0;
Chris@215 88 setMaxFrequency(0);
Chris@215 89 } else if (config == MelodicRange) {
Chris@0 90 setWindowSize(8192);
Chris@97 91 setWindowHopLevel(4);
Chris@215 92 m_initialMaxFrequency = 1500;
Chris@215 93 setMaxFrequency(1500);
Chris@215 94 setMinFrequency(40);
Chris@0 95 setColourScale(LinearColourScale);
Chris@215 96 setColourMap(ColourMapper::Sunset);
Chris@215 97 setFrequencyScale(LogFrequencyScale);
Chris@1017 98 colourConfigName = "spectrogram-melodic-colour";
Chris@1017 99 colourConfigDefault = int(ColourMapper::Sunset);
Chris@224 100 // setGain(20);
Chris@37 101 } else if (config == MelodicPeaks) {
Chris@37 102 setWindowSize(4096);
Chris@97 103 setWindowHopLevel(5);
Chris@135 104 m_initialMaxFrequency = 2000;
Chris@40 105 setMaxFrequency(2000);
Chris@37 106 setMinFrequency(40);
Chris@37 107 setFrequencyScale(LogFrequencyScale);
Chris@215 108 setColourScale(LinearColourScale);
Chris@37 109 setBinDisplay(PeakFrequencies);
Chris@862 110 setNormalization(NormalizeColumns);
Chris@1017 111 colourConfigName = "spectrogram-melodic-colour";
Chris@1017 112 colourConfigDefault = int(ColourMapper::Sunset);
Chris@0 113 }
Chris@110 114
Chris@1017 115 QSettings settings;
Chris@1017 116 settings.beginGroup("Preferences");
Chris@1017 117 setColourMap(settings.value(colourConfigName, colourConfigDefault).toInt());
Chris@1017 118 settings.endGroup();
Chris@1017 119
Chris@122 120 Preferences *prefs = Preferences::getInstance();
Chris@122 121 connect(prefs, SIGNAL(propertyChanged(PropertyContainer::PropertyName)),
Chris@122 122 this, SLOT(preferenceChanged(PropertyContainer::PropertyName)));
Chris@122 123 setWindowType(prefs->getWindowType());
Chris@122 124
Chris@197 125 initialisePalette();
Chris@0 126 }
Chris@0 127
Chris@0 128 SpectrogramLayer::~SpectrogramLayer()
Chris@0 129 {
Chris@130 130 invalidateFFTModels();
Chris@0 131 }
Chris@0 132
Chris@0 133 void
Chris@0 134 SpectrogramLayer::setModel(const DenseTimeValueModel *model)
Chris@0 135 {
Chris@682 136 // cerr << "SpectrogramLayer(" << this << "): setModel(" << model << ")" << endl;
Chris@34 137
Chris@110 138 if (model == m_model) return;
Chris@110 139
Chris@0 140 m_model = model;
Chris@130 141 invalidateFFTModels();
Chris@0 142
Chris@0 143 if (!m_model || !m_model->isOK()) return;
Chris@0 144
Chris@320 145 connectSignals(m_model);
Chris@0 146
Chris@0 147 connect(m_model, SIGNAL(modelChanged()), this, SLOT(cacheInvalid()));
Chris@906 148 connect(m_model, SIGNAL(modelChangedWithin(sv_frame_t, sv_frame_t)),
Chris@906 149 this, SLOT(cacheInvalid(sv_frame_t, sv_frame_t)));
Chris@0 150
Chris@0 151 emit modelReplaced();
Chris@110 152 }
Chris@115 153
Chris@0 154 Layer::PropertyList
Chris@0 155 SpectrogramLayer::getProperties() const
Chris@0 156 {
Chris@0 157 PropertyList list;
Chris@87 158 list.push_back("Colour");
Chris@87 159 list.push_back("Colour Scale");
Chris@87 160 list.push_back("Window Size");
Chris@97 161 list.push_back("Window Increment");
Chris@862 162 list.push_back("Normalization");
Chris@87 163 list.push_back("Bin Display");
Chris@87 164 list.push_back("Threshold");
Chris@87 165 list.push_back("Gain");
Chris@87 166 list.push_back("Colour Rotation");
Chris@153 167 // list.push_back("Min Frequency");
Chris@153 168 // list.push_back("Max Frequency");
Chris@87 169 list.push_back("Frequency Scale");
Chris@153 170 //// list.push_back("Zero Padding");
Chris@0 171 return list;
Chris@0 172 }
Chris@0 173
Chris@87 174 QString
Chris@87 175 SpectrogramLayer::getPropertyLabel(const PropertyName &name) const
Chris@87 176 {
Chris@87 177 if (name == "Colour") return tr("Colour");
Chris@87 178 if (name == "Colour Scale") return tr("Colour Scale");
Chris@87 179 if (name == "Window Size") return tr("Window Size");
Chris@112 180 if (name == "Window Increment") return tr("Window Overlap");
Chris@862 181 if (name == "Normalization") return tr("Normalization");
Chris@87 182 if (name == "Bin Display") return tr("Bin Display");
Chris@87 183 if (name == "Threshold") return tr("Threshold");
Chris@87 184 if (name == "Gain") return tr("Gain");
Chris@87 185 if (name == "Colour Rotation") return tr("Colour Rotation");
Chris@87 186 if (name == "Min Frequency") return tr("Min Frequency");
Chris@87 187 if (name == "Max Frequency") return tr("Max Frequency");
Chris@87 188 if (name == "Frequency Scale") return tr("Frequency Scale");
Chris@109 189 if (name == "Zero Padding") return tr("Smoothing");
Chris@87 190 return "";
Chris@87 191 }
Chris@87 192
Chris@335 193 QString
Chris@862 194 SpectrogramLayer::getPropertyIconName(const PropertyName &) const
Chris@335 195 {
Chris@335 196 return "";
Chris@335 197 }
Chris@335 198
Chris@0 199 Layer::PropertyType
Chris@0 200 SpectrogramLayer::getPropertyType(const PropertyName &name) const
Chris@0 201 {
Chris@87 202 if (name == "Gain") return RangeProperty;
Chris@87 203 if (name == "Colour Rotation") return RangeProperty;
Chris@87 204 if (name == "Threshold") return RangeProperty;
Chris@109 205 if (name == "Zero Padding") return ToggleProperty;
Chris@0 206 return ValueProperty;
Chris@0 207 }
Chris@0 208
Chris@0 209 QString
Chris@0 210 SpectrogramLayer::getPropertyGroupName(const PropertyName &name) const
Chris@0 211 {
Chris@153 212 if (name == "Bin Display" ||
Chris@153 213 name == "Frequency Scale") return tr("Bins");
Chris@87 214 if (name == "Window Size" ||
Chris@109 215 name == "Window Increment" ||
Chris@109 216 name == "Zero Padding") return tr("Window");
Chris@87 217 if (name == "Colour" ||
Chris@87 218 name == "Threshold" ||
Chris@87 219 name == "Colour Rotation") return tr("Colour");
Chris@862 220 if (name == "Normalization" ||
Chris@153 221 name == "Gain" ||
Chris@87 222 name == "Colour Scale") return tr("Scale");
Chris@0 223 return QString();
Chris@0 224 }
Chris@0 225
Chris@0 226 int
Chris@0 227 SpectrogramLayer::getPropertyRangeAndValue(const PropertyName &name,
Chris@216 228 int *min, int *max, int *deflt) const
Chris@0 229 {
Chris@216 230 int val = 0;
Chris@216 231
Chris@216 232 int garbage0, garbage1, garbage2;
Chris@55 233 if (!min) min = &garbage0;
Chris@55 234 if (!max) max = &garbage1;
Chris@216 235 if (!deflt) deflt = &garbage2;
Chris@10 236
Chris@87 237 if (name == "Gain") {
Chris@0 238
Chris@0 239 *min = -50;
Chris@0 240 *max = 50;
Chris@0 241
Chris@906 242 *deflt = int(lrint(log10(m_initialGain) * 20.0));
Chris@216 243 if (*deflt < *min) *deflt = *min;
Chris@216 244 if (*deflt > *max) *deflt = *max;
Chris@216 245
Chris@906 246 val = int(lrint(log10(m_gain) * 20.0));
Chris@216 247 if (val < *min) val = *min;
Chris@216 248 if (val > *max) val = *max;
Chris@0 249
Chris@87 250 } else if (name == "Threshold") {
Chris@37 251
Chris@37 252 *min = -50;
Chris@37 253 *max = 0;
Chris@37 254
Chris@906 255 *deflt = int(lrint(AudioLevel::multiplier_to_dB(m_initialThreshold)));
Chris@216 256 if (*deflt < *min) *deflt = *min;
Chris@216 257 if (*deflt > *max) *deflt = *max;
Chris@216 258
Chris@906 259 val = int(lrint(AudioLevel::multiplier_to_dB(m_threshold)));
Chris@216 260 if (val < *min) val = *min;
Chris@216 261 if (val > *max) val = *max;
Chris@37 262
Chris@87 263 } else if (name == "Colour Rotation") {
Chris@9 264
Chris@9 265 *min = 0;
Chris@9 266 *max = 256;
Chris@216 267 *deflt = m_initialRotation;
Chris@216 268
Chris@216 269 val = m_colourRotation;
Chris@9 270
Chris@87 271 } else if (name == "Colour Scale") {
Chris@0 272
Chris@0 273 *min = 0;
Chris@176 274 *max = 4;
Chris@216 275 *deflt = int(dBColourScale);
Chris@216 276
Chris@216 277 val = (int)m_colourScale;
Chris@0 278
Chris@87 279 } else if (name == "Colour") {
Chris@0 280
Chris@0 281 *min = 0;
Chris@196 282 *max = ColourMapper::getColourMapCount() - 1;
Chris@216 283 *deflt = 0;
Chris@216 284
Chris@216 285 val = m_colourMap;
Chris@0 286
Chris@87 287 } else if (name == "Window Size") {
Chris@0 288
Chris@0 289 *min = 0;
Chris@0 290 *max = 10;
Chris@216 291 *deflt = 5;
Chris@0 292
Chris@216 293 val = 0;
Chris@0 294 int ws = m_windowSize;
Chris@216 295 while (ws > 32) { ws >>= 1; val ++; }
Chris@0 296
Chris@97 297 } else if (name == "Window Increment") {
Chris@0 298
Chris@0 299 *min = 0;
Chris@97 300 *max = 5;
Chris@216 301 *deflt = 2;
Chris@216 302
Chris@216 303 val = m_windowHopLevel;
Chris@0 304
Chris@109 305 } else if (name == "Zero Padding") {
Chris@109 306
Chris@109 307 *min = 0;
Chris@109 308 *max = 1;
Chris@216 309 *deflt = 0;
Chris@109 310
Chris@216 311 val = m_zeroPadLevel > 0 ? 1 : 0;
Chris@109 312
Chris@87 313 } else if (name == "Min Frequency") {
Chris@37 314
Chris@37 315 *min = 0;
Chris@37 316 *max = 9;
Chris@216 317 *deflt = 1;
Chris@37 318
Chris@37 319 switch (m_minFrequency) {
Chris@216 320 case 0: default: val = 0; break;
Chris@216 321 case 10: val = 1; break;
Chris@216 322 case 20: val = 2; break;
Chris@216 323 case 40: val = 3; break;
Chris@216 324 case 100: val = 4; break;
Chris@216 325 case 250: val = 5; break;
Chris@216 326 case 500: val = 6; break;
Chris@216 327 case 1000: val = 7; break;
Chris@216 328 case 4000: val = 8; break;
Chris@216 329 case 10000: val = 9; break;
Chris@37 330 }
Chris@37 331
Chris@87 332 } else if (name == "Max Frequency") {
Chris@0 333
Chris@0 334 *min = 0;
Chris@0 335 *max = 9;
Chris@216 336 *deflt = 6;
Chris@0 337
Chris@0 338 switch (m_maxFrequency) {
Chris@216 339 case 500: val = 0; break;
Chris@216 340 case 1000: val = 1; break;
Chris@216 341 case 1500: val = 2; break;
Chris@216 342 case 2000: val = 3; break;
Chris@216 343 case 4000: val = 4; break;
Chris@216 344 case 6000: val = 5; break;
Chris@216 345 case 8000: val = 6; break;
Chris@216 346 case 12000: val = 7; break;
Chris@216 347 case 16000: val = 8; break;
Chris@216 348 default: val = 9; break;
Chris@0 349 }
Chris@0 350
Chris@87 351 } else if (name == "Frequency Scale") {
Chris@0 352
Chris@0 353 *min = 0;
Chris@0 354 *max = 1;
Chris@216 355 *deflt = int(LinearFrequencyScale);
Chris@216 356 val = (int)m_frequencyScale;
Chris@0 357
Chris@87 358 } else if (name == "Bin Display") {
Chris@35 359
Chris@35 360 *min = 0;
Chris@35 361 *max = 2;
Chris@216 362 *deflt = int(AllBins);
Chris@216 363 val = (int)m_binDisplay;
Chris@35 364
Chris@862 365 } else if (name == "Normalization") {
Chris@36 366
Chris@862 367 *min = 0;
Chris@862 368 *max = 3;
Chris@862 369 *deflt = int(NoNormalization);
Chris@862 370 val = (int)m_normalization;
Chris@120 371
Chris@0 372 } else {
Chris@216 373 val = Layer::getPropertyRangeAndValue(name, min, max, deflt);
Chris@0 374 }
Chris@0 375
Chris@216 376 return val;
Chris@0 377 }
Chris@0 378
Chris@0 379 QString
Chris@0 380 SpectrogramLayer::getPropertyValueLabel(const PropertyName &name,
Chris@9 381 int value) const
Chris@0 382 {
Chris@87 383 if (name == "Colour") {
Chris@196 384 return ColourMapper::getColourMapName(value);
Chris@0 385 }
Chris@87 386 if (name == "Colour Scale") {
Chris@0 387 switch (value) {
Chris@0 388 default:
Chris@37 389 case 0: return tr("Linear");
Chris@37 390 case 1: return tr("Meter");
Chris@215 391 case 2: return tr("dBV^2");
Chris@215 392 case 3: return tr("dBV");
Chris@119 393 case 4: return tr("Phase");
Chris@0 394 }
Chris@0 395 }
Chris@862 396 if (name == "Normalization") {
Chris@862 397 return ""; // icon only
Chris@862 398 }
Chris@87 399 if (name == "Window Size") {
Chris@0 400 return QString("%1").arg(32 << value);
Chris@0 401 }
Chris@97 402 if (name == "Window Increment") {
Chris@0 403 switch (value) {
Chris@0 404 default:
Chris@112 405 case 0: return tr("None");
Chris@112 406 case 1: return tr("25 %");
Chris@112 407 case 2: return tr("50 %");
Chris@112 408 case 3: return tr("75 %");
Chris@112 409 case 4: return tr("87.5 %");
Chris@112 410 case 5: return tr("93.75 %");
Chris@0 411 }
Chris@0 412 }
Chris@109 413 if (name == "Zero Padding") {
Chris@109 414 if (value == 0) return tr("None");
Chris@109 415 return QString("%1x").arg(value + 1);
Chris@109 416 }
Chris@87 417 if (name == "Min Frequency") {
Chris@37 418 switch (value) {
Chris@37 419 default:
Chris@38 420 case 0: return tr("No min");
Chris@37 421 case 1: return tr("10 Hz");
Chris@37 422 case 2: return tr("20 Hz");
Chris@37 423 case 3: return tr("40 Hz");
Chris@37 424 case 4: return tr("100 Hz");
Chris@37 425 case 5: return tr("250 Hz");
Chris@37 426 case 6: return tr("500 Hz");
Chris@37 427 case 7: return tr("1 KHz");
Chris@37 428 case 8: return tr("4 KHz");
Chris@37 429 case 9: return tr("10 KHz");
Chris@37 430 }
Chris@37 431 }
Chris@87 432 if (name == "Max Frequency") {
Chris@0 433 switch (value) {
Chris@0 434 default:
Chris@0 435 case 0: return tr("500 Hz");
Chris@0 436 case 1: return tr("1 KHz");
Chris@0 437 case 2: return tr("1.5 KHz");
Chris@0 438 case 3: return tr("2 KHz");
Chris@0 439 case 4: return tr("4 KHz");
Chris@0 440 case 5: return tr("6 KHz");
Chris@0 441 case 6: return tr("8 KHz");
Chris@0 442 case 7: return tr("12 KHz");
Chris@0 443 case 8: return tr("16 KHz");
Chris@38 444 case 9: return tr("No max");
Chris@0 445 }
Chris@0 446 }
Chris@87 447 if (name == "Frequency Scale") {
Chris@0 448 switch (value) {
Chris@0 449 default:
Chris@0 450 case 0: return tr("Linear");
Chris@0 451 case 1: return tr("Log");
Chris@0 452 }
Chris@0 453 }
Chris@87 454 if (name == "Bin Display") {
Chris@35 455 switch (value) {
Chris@35 456 default:
Chris@37 457 case 0: return tr("All Bins");
Chris@37 458 case 1: return tr("Peak Bins");
Chris@37 459 case 2: return tr("Frequencies");
Chris@35 460 }
Chris@35 461 }
Chris@0 462 return tr("<unknown>");
Chris@0 463 }
Chris@0 464
Chris@862 465 QString
Chris@862 466 SpectrogramLayer::getPropertyValueIconName(const PropertyName &name,
Chris@862 467 int value) const
Chris@862 468 {
Chris@862 469 if (name == "Normalization") {
Chris@862 470 switch(value) {
Chris@862 471 default:
Chris@862 472 case 0: return "normalise-none";
Chris@862 473 case 1: return "normalise-columns";
Chris@862 474 case 2: return "normalise";
Chris@862 475 case 3: return "normalise-hybrid";
Chris@862 476 }
Chris@862 477 }
Chris@862 478 return "";
Chris@862 479 }
Chris@862 480
Chris@167 481 RangeMapper *
Chris@167 482 SpectrogramLayer::getNewPropertyRangeMapper(const PropertyName &name) const
Chris@167 483 {
Chris@167 484 if (name == "Gain") {
Chris@167 485 return new LinearRangeMapper(-50, 50, -25, 25, tr("dB"));
Chris@167 486 }
Chris@167 487 if (name == "Threshold") {
Chris@167 488 return new LinearRangeMapper(-50, 0, -50, 0, tr("dB"));
Chris@167 489 }
Chris@167 490 return 0;
Chris@167 491 }
Chris@167 492
Chris@0 493 void
Chris@0 494 SpectrogramLayer::setProperty(const PropertyName &name, int value)
Chris@0 495 {
Chris@87 496 if (name == "Gain") {
Chris@906 497 setGain(float(pow(10, float(value)/20.0)));
Chris@87 498 } else if (name == "Threshold") {
Chris@37 499 if (value == -50) setThreshold(0.0);
Chris@906 500 else setThreshold(float(AudioLevel::dB_to_multiplier(value)));
Chris@87 501 } else if (name == "Colour Rotation") {
Chris@9 502 setColourRotation(value);
Chris@87 503 } else if (name == "Colour") {
Chris@197 504 setColourMap(value);
Chris@87 505 } else if (name == "Window Size") {
Chris@0 506 setWindowSize(32 << value);
Chris@97 507 } else if (name == "Window Increment") {
Chris@97 508 setWindowHopLevel(value);
Chris@109 509 } else if (name == "Zero Padding") {
Chris@109 510 setZeroPadLevel(value > 0.1 ? 3 : 0);
Chris@87 511 } else if (name == "Min Frequency") {
Chris@37 512 switch (value) {
Chris@37 513 default:
Chris@37 514 case 0: setMinFrequency(0); break;
Chris@37 515 case 1: setMinFrequency(10); break;
Chris@37 516 case 2: setMinFrequency(20); break;
Chris@37 517 case 3: setMinFrequency(40); break;
Chris@37 518 case 4: setMinFrequency(100); break;
Chris@37 519 case 5: setMinFrequency(250); break;
Chris@37 520 case 6: setMinFrequency(500); break;
Chris@37 521 case 7: setMinFrequency(1000); break;
Chris@37 522 case 8: setMinFrequency(4000); break;
Chris@37 523 case 9: setMinFrequency(10000); break;
Chris@37 524 }
Chris@133 525 int vs = getCurrentVerticalZoomStep();
Chris@133 526 if (vs != m_lastEmittedZoomStep) {
Chris@133 527 emit verticalZoomChanged();
Chris@133 528 m_lastEmittedZoomStep = vs;
Chris@133 529 }
Chris@87 530 } else if (name == "Max Frequency") {
Chris@0 531 switch (value) {
Chris@0 532 case 0: setMaxFrequency(500); break;
Chris@0 533 case 1: setMaxFrequency(1000); break;
Chris@0 534 case 2: setMaxFrequency(1500); break;
Chris@0 535 case 3: setMaxFrequency(2000); break;
Chris@0 536 case 4: setMaxFrequency(4000); break;
Chris@0 537 case 5: setMaxFrequency(6000); break;
Chris@0 538 case 6: setMaxFrequency(8000); break;
Chris@0 539 case 7: setMaxFrequency(12000); break;
Chris@0 540 case 8: setMaxFrequency(16000); break;
Chris@0 541 default:
Chris@0 542 case 9: setMaxFrequency(0); break;
Chris@0 543 }
Chris@133 544 int vs = getCurrentVerticalZoomStep();
Chris@133 545 if (vs != m_lastEmittedZoomStep) {
Chris@133 546 emit verticalZoomChanged();
Chris@133 547 m_lastEmittedZoomStep = vs;
Chris@133 548 }
Chris@87 549 } else if (name == "Colour Scale") {
Chris@0 550 switch (value) {
Chris@0 551 default:
Chris@0 552 case 0: setColourScale(LinearColourScale); break;
Chris@0 553 case 1: setColourScale(MeterColourScale); break;
Chris@215 554 case 2: setColourScale(dBSquaredColourScale); break;
Chris@215 555 case 3: setColourScale(dBColourScale); break;
Chris@119 556 case 4: setColourScale(PhaseColourScale); break;
Chris@0 557 }
Chris@87 558 } else if (name == "Frequency Scale") {
Chris@0 559 switch (value) {
Chris@0 560 default:
Chris@0 561 case 0: setFrequencyScale(LinearFrequencyScale); break;
Chris@0 562 case 1: setFrequencyScale(LogFrequencyScale); break;
Chris@0 563 }
Chris@87 564 } else if (name == "Bin Display") {
Chris@35 565 switch (value) {
Chris@35 566 default:
Chris@37 567 case 0: setBinDisplay(AllBins); break;
Chris@37 568 case 1: setBinDisplay(PeakBins); break;
Chris@37 569 case 2: setBinDisplay(PeakFrequencies); break;
Chris@35 570 }
Chris@862 571 } else if (name == "Normalization") {
Chris@862 572 switch (value) {
Chris@862 573 default:
Chris@862 574 case 0: setNormalization(NoNormalization); break;
Chris@862 575 case 1: setNormalization(NormalizeColumns); break;
Chris@862 576 case 2: setNormalization(NormalizeVisibleArea); break;
Chris@862 577 case 3: setNormalization(NormalizeHybrid); break;
Chris@862 578 }
Chris@0 579 }
Chris@0 580 }
Chris@0 581
Chris@0 582 void
Chris@478 583 SpectrogramLayer::invalidateImageCaches()
Chris@95 584 {
Chris@478 585 for (ViewImageCache::iterator i = m_imageCaches.begin();
Chris@478 586 i != m_imageCaches.end(); ++i) {
Chris@1030 587 i->second.invalidate();
Chris@95 588 }
Chris@95 589 }
Chris@95 590
Chris@95 591 void
Chris@122 592 SpectrogramLayer::preferenceChanged(PropertyContainer::PropertyName name)
Chris@122 593 {
Chris@587 594 SVDEBUG << "SpectrogramLayer::preferenceChanged(" << name << ")" << endl;
Chris@122 595
Chris@122 596 if (name == "Window Type") {
Chris@122 597 setWindowType(Preferences::getInstance()->getWindowType());
Chris@122 598 return;
Chris@122 599 }
Chris@490 600 if (name == "Spectrogram Y Smoothing") {
Chris@490 601 invalidateImageCaches();
Chris@490 602 invalidateMagnitudes();
Chris@490 603 emit layerParametersChanged();
Chris@490 604 }
Chris@490 605 if (name == "Spectrogram X Smoothing") {
Chris@478 606 invalidateImageCaches();
Chris@122 607 invalidateMagnitudes();
Chris@122 608 emit layerParametersChanged();
Chris@122 609 }
Chris@122 610 if (name == "Tuning Frequency") {
Chris@122 611 emit layerParametersChanged();
Chris@122 612 }
Chris@122 613 }
Chris@122 614
Chris@122 615 void
Chris@0 616 SpectrogramLayer::setChannel(int ch)
Chris@0 617 {
Chris@0 618 if (m_channel == ch) return;
Chris@0 619
Chris@478 620 invalidateImageCaches();
Chris@0 621 m_channel = ch;
Chris@130 622 invalidateFFTModels();
Chris@9 623
Chris@0 624 emit layerParametersChanged();
Chris@0 625 }
Chris@0 626
Chris@0 627 int
Chris@0 628 SpectrogramLayer::getChannel() const
Chris@0 629 {
Chris@0 630 return m_channel;
Chris@0 631 }
Chris@0 632
Chris@0 633 void
Chris@805 634 SpectrogramLayer::setWindowSize(int ws)
Chris@0 635 {
Chris@0 636 if (m_windowSize == ws) return;
Chris@0 637
Chris@478 638 invalidateImageCaches();
Chris@0 639
Chris@0 640 m_windowSize = ws;
Chris@109 641 m_fftSize = ws * (m_zeroPadLevel + 1);
Chris@0 642
Chris@130 643 invalidateFFTModels();
Chris@9 644
Chris@9 645 emit layerParametersChanged();
Chris@0 646 }
Chris@0 647
Chris@805 648 int
Chris@0 649 SpectrogramLayer::getWindowSize() const
Chris@0 650 {
Chris@0 651 return m_windowSize;
Chris@0 652 }
Chris@0 653
Chris@0 654 void
Chris@805 655 SpectrogramLayer::setWindowHopLevel(int v)
Chris@0 656 {
Chris@97 657 if (m_windowHopLevel == v) return;
Chris@0 658
Chris@478 659 invalidateImageCaches();
Chris@0 660
Chris@97 661 m_windowHopLevel = v;
Chris@0 662
Chris@130 663 invalidateFFTModels();
Chris@9 664
Chris@9 665 emit layerParametersChanged();
Chris@9 666
Chris@110 667 // fillCache();
Chris@0 668 }
Chris@0 669
Chris@805 670 int
Chris@97 671 SpectrogramLayer::getWindowHopLevel() const
Chris@0 672 {
Chris@97 673 return m_windowHopLevel;
Chris@0 674 }
Chris@0 675
Chris@0 676 void
Chris@805 677 SpectrogramLayer::setZeroPadLevel(int v)
Chris@109 678 {
Chris@109 679 if (m_zeroPadLevel == v) return;
Chris@109 680
Chris@478 681 invalidateImageCaches();
Chris@109 682
Chris@109 683 m_zeroPadLevel = v;
Chris@109 684 m_fftSize = m_windowSize * (v + 1);
Chris@110 685
Chris@130 686 invalidateFFTModels();
Chris@109 687
Chris@109 688 emit layerParametersChanged();
Chris@109 689 }
Chris@109 690
Chris@805 691 int
Chris@109 692 SpectrogramLayer::getZeroPadLevel() const
Chris@109 693 {
Chris@109 694 return m_zeroPadLevel;
Chris@109 695 }
Chris@109 696
Chris@109 697 void
Chris@0 698 SpectrogramLayer::setWindowType(WindowType w)
Chris@0 699 {
Chris@0 700 if (m_windowType == w) return;
Chris@0 701
Chris@478 702 invalidateImageCaches();
Chris@0 703
Chris@0 704 m_windowType = w;
Chris@110 705
Chris@130 706 invalidateFFTModels();
Chris@9 707
Chris@9 708 emit layerParametersChanged();
Chris@0 709 }
Chris@0 710
Chris@0 711 WindowType
Chris@0 712 SpectrogramLayer::getWindowType() const
Chris@0 713 {
Chris@0 714 return m_windowType;
Chris@0 715 }
Chris@0 716
Chris@0 717 void
Chris@0 718 SpectrogramLayer::setGain(float gain)
Chris@0 719 {
Chris@587 720 // SVDEBUG << "SpectrogramLayer::setGain(" << gain << ") (my gain is now "
Chris@585 721 // << m_gain << ")" << endl;
Chris@55 722
Chris@40 723 if (m_gain == gain) return;
Chris@0 724
Chris@478 725 invalidateImageCaches();
Chris@0 726
Chris@0 727 m_gain = gain;
Chris@0 728
Chris@9 729 emit layerParametersChanged();
Chris@0 730 }
Chris@0 731
Chris@0 732 float
Chris@0 733 SpectrogramLayer::getGain() const
Chris@0 734 {
Chris@0 735 return m_gain;
Chris@0 736 }
Chris@0 737
Chris@0 738 void
Chris@37 739 SpectrogramLayer::setThreshold(float threshold)
Chris@37 740 {
Chris@40 741 if (m_threshold == threshold) return;
Chris@37 742
Chris@478 743 invalidateImageCaches();
Chris@37 744
Chris@37 745 m_threshold = threshold;
Chris@37 746
Chris@37 747 emit layerParametersChanged();
Chris@37 748 }
Chris@37 749
Chris@37 750 float
Chris@37 751 SpectrogramLayer::getThreshold() const
Chris@37 752 {
Chris@37 753 return m_threshold;
Chris@37 754 }
Chris@37 755
Chris@37 756 void
Chris@805 757 SpectrogramLayer::setMinFrequency(int mf)
Chris@37 758 {
Chris@37 759 if (m_minFrequency == mf) return;
Chris@37 760
Chris@587 761 // SVDEBUG << "SpectrogramLayer::setMinFrequency: " << mf << endl;
Chris@187 762
Chris@478 763 invalidateImageCaches();
Chris@119 764 invalidateMagnitudes();
Chris@37 765
Chris@37 766 m_minFrequency = mf;
Chris@37 767
Chris@37 768 emit layerParametersChanged();
Chris@37 769 }
Chris@37 770
Chris@805 771 int
Chris@37 772 SpectrogramLayer::getMinFrequency() const
Chris@37 773 {
Chris@37 774 return m_minFrequency;
Chris@37 775 }
Chris@37 776
Chris@37 777 void
Chris@805 778 SpectrogramLayer::setMaxFrequency(int mf)
Chris@0 779 {
Chris@0 780 if (m_maxFrequency == mf) return;
Chris@0 781
Chris@587 782 // SVDEBUG << "SpectrogramLayer::setMaxFrequency: " << mf << endl;
Chris@187 783
Chris@478 784 invalidateImageCaches();
Chris@119 785 invalidateMagnitudes();
Chris@0 786
Chris@0 787 m_maxFrequency = mf;
Chris@0 788
Chris@9 789 emit layerParametersChanged();
Chris@0 790 }
Chris@0 791
Chris@805 792 int
Chris@0 793 SpectrogramLayer::getMaxFrequency() const
Chris@0 794 {
Chris@0 795 return m_maxFrequency;
Chris@0 796 }
Chris@0 797
Chris@0 798 void
Chris@9 799 SpectrogramLayer::setColourRotation(int r)
Chris@9 800 {
Chris@478 801 invalidateImageCaches();
Chris@9 802
Chris@9 803 if (r < 0) r = 0;
Chris@9 804 if (r > 256) r = 256;
Chris@9 805 int distance = r - m_colourRotation;
Chris@9 806
Chris@9 807 if (distance != 0) {
Chris@197 808 rotatePalette(-distance);
Chris@9 809 m_colourRotation = r;
Chris@9 810 }
Chris@9 811
Chris@9 812 emit layerParametersChanged();
Chris@9 813 }
Chris@9 814
Chris@9 815 void
Chris@0 816 SpectrogramLayer::setColourScale(ColourScale colourScale)
Chris@0 817 {
Chris@0 818 if (m_colourScale == colourScale) return;
Chris@0 819
Chris@478 820 invalidateImageCaches();
Chris@0 821
Chris@0 822 m_colourScale = colourScale;
Chris@0 823
Chris@9 824 emit layerParametersChanged();
Chris@0 825 }
Chris@0 826
Chris@0 827 SpectrogramLayer::ColourScale
Chris@0 828 SpectrogramLayer::getColourScale() const
Chris@0 829 {
Chris@0 830 return m_colourScale;
Chris@0 831 }
Chris@0 832
Chris@0 833 void
Chris@197 834 SpectrogramLayer::setColourMap(int map)
Chris@0 835 {
Chris@197 836 if (m_colourMap == map) return;
Chris@0 837
Chris@478 838 invalidateImageCaches();
Chris@0 839
Chris@197 840 m_colourMap = map;
Chris@197 841 initialisePalette();
Chris@9 842
Chris@0 843 emit layerParametersChanged();
Chris@0 844 }
Chris@0 845
Chris@196 846 int
Chris@197 847 SpectrogramLayer::getColourMap() const
Chris@0 848 {
Chris@197 849 return m_colourMap;
Chris@0 850 }
Chris@0 851
Chris@0 852 void
Chris@0 853 SpectrogramLayer::setFrequencyScale(FrequencyScale frequencyScale)
Chris@0 854 {
Chris@0 855 if (m_frequencyScale == frequencyScale) return;
Chris@0 856
Chris@478 857 invalidateImageCaches();
Chris@0 858 m_frequencyScale = frequencyScale;
Chris@9 859
Chris@9 860 emit layerParametersChanged();
Chris@0 861 }
Chris@0 862
Chris@0 863 SpectrogramLayer::FrequencyScale
Chris@0 864 SpectrogramLayer::getFrequencyScale() const
Chris@0 865 {
Chris@0 866 return m_frequencyScale;
Chris@0 867 }
Chris@0 868
Chris@0 869 void
Chris@37 870 SpectrogramLayer::setBinDisplay(BinDisplay binDisplay)
Chris@35 871 {
Chris@37 872 if (m_binDisplay == binDisplay) return;
Chris@35 873
Chris@478 874 invalidateImageCaches();
Chris@37 875 m_binDisplay = binDisplay;
Chris@35 876
Chris@35 877 emit layerParametersChanged();
Chris@35 878 }
Chris@35 879
Chris@37 880 SpectrogramLayer::BinDisplay
Chris@37 881 SpectrogramLayer::getBinDisplay() const
Chris@35 882 {
Chris@37 883 return m_binDisplay;
Chris@35 884 }
Chris@35 885
Chris@35 886 void
Chris@862 887 SpectrogramLayer::setNormalization(Normalization n)
Chris@36 888 {
Chris@862 889 if (m_normalization == n) return;
Chris@36 890
Chris@478 891 invalidateImageCaches();
Chris@119 892 invalidateMagnitudes();
Chris@862 893 m_normalization = n;
Chris@36 894
Chris@36 895 emit layerParametersChanged();
Chris@36 896 }
Chris@36 897
Chris@862 898 SpectrogramLayer::Normalization
Chris@862 899 SpectrogramLayer::getNormalization() const
Chris@36 900 {
Chris@862 901 return m_normalization;
Chris@36 902 }
Chris@36 903
Chris@36 904 void
Chris@918 905 SpectrogramLayer::setLayerDormant(const LayerGeometryProvider *v, bool dormant)
Chris@29 906 {
Chris@33 907 if (dormant) {
Chris@33 908
Chris@331 909 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@985 910 cerr << "SpectrogramLayer::setLayerDormant(" << dormant << ")"
Chris@585 911 << endl;
Chris@331 912 #endif
Chris@331 913
Chris@131 914 if (isLayerDormant(v)) {
Chris@131 915 return;
Chris@131 916 }
Chris@131 917
Chris@131 918 Layer::setLayerDormant(v, true);
Chris@33 919
Chris@920 920 const View *view = v->getView();
Chris@920 921
Chris@478 922 invalidateImageCaches();
Chris@988 923
Chris@1030 924 m_imageCaches.erase(view->getId());
Chris@1030 925
Chris@1030 926 if (m_fftModels.find(view->getId()) != m_fftModels.end()) {
Chris@1030 927
Chris@1030 928 if (m_sliceableModel == m_fftModels[view->getId()]) {
Chris@193 929 bool replaced = false;
Chris@193 930 for (ViewFFTMap::iterator i = m_fftModels.begin();
Chris@193 931 i != m_fftModels.end(); ++i) {
Chris@985 932 if (i->second != m_sliceableModel) {
Chris@985 933 emit sliceableModelReplaced(m_sliceableModel, i->second);
Chris@193 934 replaced = true;
Chris@193 935 break;
Chris@193 936 }
Chris@193 937 }
Chris@193 938 if (!replaced) emit sliceableModelReplaced(m_sliceableModel, 0);
Chris@193 939 }
Chris@193 940
Chris@1030 941 delete m_fftModels[view->getId()];
Chris@1030 942 m_fftModels.erase(view->getId());
Chris@1030 943
Chris@1030 944 delete m_peakCaches[view->getId()];
Chris@1030 945 m_peakCaches.erase(view->getId());
Chris@114 946 }
Chris@33 947
Chris@33 948 } else {
Chris@33 949
Chris@131 950 Layer::setLayerDormant(v, false);
Chris@33 951 }
Chris@29 952 }
Chris@29 953
Chris@29 954 void
Chris@0 955 SpectrogramLayer::cacheInvalid()
Chris@0 956 {
Chris@391 957 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@985 958 cerr << "SpectrogramLayer::cacheInvalid()" << endl;
Chris@391 959 #endif
Chris@391 960
Chris@478 961 invalidateImageCaches();
Chris@119 962 invalidateMagnitudes();
Chris@0 963 }
Chris@0 964
Chris@0 965 void
Chris@1037 966 SpectrogramLayer::cacheInvalid(
Chris@1037 967 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1037 968 sv_frame_t from, sv_frame_t to
Chris@1037 969 #else
Chris@1037 970 sv_frame_t , sv_frame_t
Chris@1037 971 #endif
Chris@1037 972 )
Chris@0 973 {
Chris@391 974 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@985 975 cerr << "SpectrogramLayer::cacheInvalid(" << from << ", " << to << ")" << endl;
Chris@391 976 #endif
Chris@391 977
Chris@1030 978 // We used to call invalidateMagnitudes(from, to) to invalidate
Chris@1030 979 // only those caches whose views contained some of the (from, to)
Chris@1030 980 // range. That's the right thing to do; it has been lost in
Chris@1030 981 // pulling out the image cache code, but it might not matter very
Chris@1030 982 // much, since the underlying models for spectrogram layers don't
Chris@1030 983 // change very often. Let's see.
Chris@1030 984 invalidateImageCaches();
Chris@391 985 invalidateMagnitudes();
Chris@0 986 }
Chris@0 987
Chris@224 988 bool
Chris@224 989 SpectrogramLayer::hasLightBackground() const
Chris@224 990 {
Chris@287 991 return ColourMapper(m_colourMap, 1.f, 255.f).hasLightBackground();
Chris@224 992 }
Chris@224 993
Chris@0 994 void
Chris@197 995 SpectrogramLayer::initialisePalette()
Chris@0 996 {
Chris@10 997 int formerRotation = m_colourRotation;
Chris@10 998
Chris@197 999 if (m_colourMap == (int)ColourMapper::BlackOnWhite) {
Chris@197 1000 m_palette.setColour(NO_VALUE, Qt::white);
Chris@38 1001 } else {
Chris@197 1002 m_palette.setColour(NO_VALUE, Qt::black);
Chris@38 1003 }
Chris@0 1004
Chris@197 1005 ColourMapper mapper(m_colourMap, 1.f, 255.f);
Chris@196 1006
Chris@0 1007 for (int pixel = 1; pixel < 256; ++pixel) {
Chris@907 1008 m_palette.setColour((unsigned char)pixel, mapper.map(pixel));
Chris@0 1009 }
Chris@9 1010
Chris@196 1011 m_crosshairColour = mapper.getContrastingColour();
Chris@196 1012
Chris@9 1013 m_colourRotation = 0;
Chris@197 1014 rotatePalette(m_colourRotation - formerRotation);
Chris@10 1015 m_colourRotation = formerRotation;
Chris@478 1016
Chris@478 1017 m_drawBuffer = QImage();
Chris@9 1018 }
Chris@9 1019
Chris@9 1020 void
Chris@197 1021 SpectrogramLayer::rotatePalette(int distance)
Chris@9 1022 {
Chris@31 1023 QColor newPixels[256];
Chris@9 1024
Chris@197 1025 newPixels[NO_VALUE] = m_palette.getColour(NO_VALUE);
Chris@9 1026
Chris@9 1027 for (int pixel = 1; pixel < 256; ++pixel) {
Chris@9 1028 int target = pixel + distance;
Chris@9 1029 while (target < 1) target += 255;
Chris@9 1030 while (target > 255) target -= 255;
Chris@907 1031 newPixels[target] = m_palette.getColour((unsigned char)pixel);
Chris@9 1032 }
Chris@9 1033
Chris@9 1034 for (int pixel = 0; pixel < 256; ++pixel) {
Chris@907 1035 m_palette.setColour((unsigned char)pixel, newPixels[pixel]);
Chris@9 1036 }
Chris@478 1037
Chris@478 1038 m_drawBuffer = QImage();
Chris@0 1039 }
Chris@0 1040
Chris@38 1041 unsigned char
Chris@918 1042 SpectrogramLayer::getDisplayValue(LayerGeometryProvider *v, double input) const
Chris@38 1043 {
Chris@38 1044 int value;
Chris@37 1045
Chris@907 1046 double min = 0.0;
Chris@907 1047 double max = 1.0;
Chris@120 1048
Chris@862 1049 if (m_normalization == NormalizeVisibleArea) {
Chris@1030 1050 min = m_viewMags[v->getId()].getMin();
Chris@1030 1051 max = m_viewMags[v->getId()].getMax();
Chris@862 1052 } else if (m_normalization != NormalizeColumns) {
Chris@224 1053 if (m_colourScale == LinearColourScale //||
Chris@224 1054 // m_colourScale == MeterColourScale) {
Chris@224 1055 ) {
Chris@907 1056 max = 0.1;
Chris@120 1057 }
Chris@120 1058 }
Chris@120 1059
Chris@907 1060 double thresh = -80.0;
Chris@907 1061
Chris@907 1062 if (max == 0.0) max = 1.0;
Chris@907 1063 if (max == min) min = max - 0.0001;
Chris@119 1064
Chris@40 1065 switch (m_colourScale) {
Chris@40 1066
Chris@40 1067 default:
Chris@40 1068 case LinearColourScale:
Chris@907 1069 value = int(((input - min) / (max - min)) * 255.0) + 1;
Chris@40 1070 break;
Chris@40 1071
Chris@40 1072 case MeterColourScale:
Chris@210 1073 value = AudioLevel::multiplier_to_preview
Chris@210 1074 ((input - min) / (max - min), 254) + 1;
Chris@40 1075 break;
Chris@119 1076
Chris@210 1077 case dBSquaredColourScale:
Chris@215 1078 input = ((input - min) * (input - min)) / ((max - min) * (max - min));
Chris@907 1079 if (input > 0.0) {
Chris@907 1080 input = 10.0 * log10(input);
Chris@133 1081 } else {
Chris@133 1082 input = thresh;
Chris@133 1083 }
Chris@907 1084 if (min > 0.0) {
Chris@907 1085 thresh = 10.0 * log10(min * min);
Chris@907 1086 if (thresh < -80.0) thresh = -80.0;
Chris@119 1087 }
Chris@119 1088 input = (input - thresh) / (-thresh);
Chris@907 1089 if (input < 0.0) input = 0.0;
Chris@907 1090 if (input > 1.0) input = 1.0;
Chris@907 1091 value = int(input * 255.0) + 1;
Chris@119 1092 break;
Chris@40 1093
Chris@215 1094 case dBColourScale:
Chris@215 1095 //!!! experiment with normalizing the visible area this way.
Chris@215 1096 //In any case, we need to have some indication of what the dB
Chris@215 1097 //scale is relative to.
Chris@215 1098 input = (input - min) / (max - min);
Chris@907 1099 if (input > 0.0) {
Chris@907 1100 input = 10.0 * log10(input);
Chris@215 1101 } else {
Chris@215 1102 input = thresh;
Chris@215 1103 }
Chris@907 1104 if (min > 0.0) {
Chris@907 1105 thresh = 10.0 * log10(min);
Chris@907 1106 if (thresh < -80.0) thresh = -80.0;
Chris@215 1107 }
Chris@215 1108 input = (input - thresh) / (-thresh);
Chris@907 1109 if (input < 0.0) input = 0.0;
Chris@907 1110 if (input > 1.0) input = 1.0;
Chris@907 1111 value = int(input * 255.0) + 1;
Chris@215 1112 break;
Chris@215 1113
Chris@40 1114 case PhaseColourScale:
Chris@40 1115 value = int((input * 127.0 / M_PI) + 128);
Chris@40 1116 break;
Chris@0 1117 }
Chris@210 1118
Chris@38 1119 if (value > UCHAR_MAX) value = UCHAR_MAX;
Chris@38 1120 if (value < 0) value = 0;
Chris@907 1121 return (unsigned char)value;
Chris@0 1122 }
Chris@0 1123
Chris@905 1124 double
Chris@40 1125 SpectrogramLayer::getEffectiveMinFrequency() const
Chris@40 1126 {
Chris@907 1127 sv_samplerate_t sr = m_model->getSampleRate();
Chris@905 1128 double minf = double(sr) / m_fftSize;
Chris@40 1129
Chris@40 1130 if (m_minFrequency > 0.0) {
Chris@805 1131 int minbin = int((double(m_minFrequency) * m_fftSize) / sr + 0.01);
Chris@40 1132 if (minbin < 1) minbin = 1;
Chris@107 1133 minf = minbin * sr / m_fftSize;
Chris@40 1134 }
Chris@40 1135
Chris@40 1136 return minf;
Chris@40 1137 }
Chris@40 1138
Chris@905 1139 double
Chris@40 1140 SpectrogramLayer::getEffectiveMaxFrequency() const
Chris@40 1141 {
Chris@907 1142 sv_samplerate_t sr = m_model->getSampleRate();
Chris@905 1143 double maxf = double(sr) / 2;
Chris@40 1144
Chris@40 1145 if (m_maxFrequency > 0.0) {
Chris@805 1146 int maxbin = int((double(m_maxFrequency) * m_fftSize) / sr + 0.1);
Chris@107 1147 if (maxbin > m_fftSize / 2) maxbin = m_fftSize / 2;
Chris@107 1148 maxf = maxbin * sr / m_fftSize;
Chris@40 1149 }
Chris@40 1150
Chris@40 1151 return maxf;
Chris@40 1152 }
Chris@40 1153
Chris@0 1154 bool
Chris@918 1155 SpectrogramLayer::getYBinRange(LayerGeometryProvider *v, int y, double &q0, double &q1) const
Chris@0 1156 {
Chris@382 1157 Profiler profiler("SpectrogramLayer::getYBinRange");
Chris@382 1158
Chris@918 1159 int h = v->getPaintHeight();
Chris@0 1160 if (y < 0 || y >= h) return false;
Chris@0 1161
Chris@907 1162 sv_samplerate_t sr = m_model->getSampleRate();
Chris@905 1163 double minf = getEffectiveMinFrequency();
Chris@905 1164 double maxf = getEffectiveMaxFrequency();
Chris@0 1165
Chris@38 1166 bool logarithmic = (m_frequencyScale == LogFrequencyScale);
Chris@38 1167
Chris@44 1168 q0 = v->getFrequencyForY(y, minf, maxf, logarithmic);
Chris@44 1169 q1 = v->getFrequencyForY(y - 1, minf, maxf, logarithmic);
Chris@38 1170
Chris@490 1171 // Now map these on to ("proportions of") actual bins, using raw
Chris@490 1172 // FFT size (unsmoothed)
Chris@490 1173
Chris@490 1174 q0 = (q0 * m_fftSize) / sr;
Chris@490 1175 q1 = (q1 * m_fftSize) / sr;
Chris@0 1176
Chris@0 1177 return true;
Chris@0 1178 }
Chris@486 1179
Chris@486 1180 bool
Chris@918 1181 SpectrogramLayer::getSmoothedYBinRange(LayerGeometryProvider *v, int y, double &q0, double &q1) const
Chris@486 1182 {
Chris@486 1183 Profiler profiler("SpectrogramLayer::getSmoothedYBinRange");
Chris@486 1184
Chris@918 1185 int h = v->getPaintHeight();
Chris@486 1186 if (y < 0 || y >= h) return false;
Chris@486 1187
Chris@907 1188 sv_samplerate_t sr = m_model->getSampleRate();
Chris@905 1189 double minf = getEffectiveMinFrequency();
Chris@905 1190 double maxf = getEffectiveMaxFrequency();
Chris@486 1191
Chris@486 1192 bool logarithmic = (m_frequencyScale == LogFrequencyScale);
Chris@486 1193
Chris@486 1194 q0 = v->getFrequencyForY(y, minf, maxf, logarithmic);
Chris@486 1195 q1 = v->getFrequencyForY(y - 1, minf, maxf, logarithmic);
Chris@486 1196
Chris@490 1197 // Now map these on to ("proportions of") actual bins, using raw
Chris@490 1198 // FFT size (unsmoothed)
Chris@490 1199
Chris@490 1200 q0 = (q0 * getFFTSize(v)) / sr;
Chris@490 1201 q1 = (q1 * getFFTSize(v)) / sr;
Chris@486 1202
Chris@486 1203 return true;
Chris@486 1204 }
Chris@38 1205
Chris@0 1206 bool
Chris@918 1207 SpectrogramLayer::getXBinRange(LayerGeometryProvider *v, int x, double &s0, double &s1) const
Chris@0 1208 {
Chris@907 1209 sv_frame_t modelStart = m_model->getStartFrame();
Chris@907 1210 sv_frame_t modelEnd = m_model->getEndFrame();
Chris@0 1211
Chris@0 1212 // Each pixel column covers an exact range of sample frames:
Chris@907 1213 sv_frame_t f0 = v->getFrameForX(x) - modelStart;
Chris@907 1214 sv_frame_t f1 = v->getFrameForX(x + 1) - modelStart - 1;
Chris@20 1215
Chris@41 1216 if (f1 < int(modelStart) || f0 > int(modelEnd)) {
Chris@41 1217 return false;
Chris@41 1218 }
Chris@20 1219
Chris@0 1220 // And that range may be drawn from a possibly non-integral
Chris@0 1221 // range of spectrogram windows:
Chris@0 1222
Chris@805 1223 int windowIncrement = getWindowIncrement();
Chris@905 1224 s0 = double(f0) / windowIncrement;
Chris@905 1225 s1 = double(f1) / windowIncrement;
Chris@0 1226
Chris@0 1227 return true;
Chris@0 1228 }
Chris@0 1229
Chris@0 1230 bool
Chris@918 1231 SpectrogramLayer::getXBinSourceRange(LayerGeometryProvider *v, int x, RealTime &min, RealTime &max) const
Chris@0 1232 {
Chris@905 1233 double s0 = 0, s1 = 0;
Chris@44 1234 if (!getXBinRange(v, x, s0, s1)) return false;
Chris@0 1235
Chris@0 1236 int s0i = int(s0 + 0.001);
Chris@0 1237 int s1i = int(s1);
Chris@0 1238
Chris@0 1239 int windowIncrement = getWindowIncrement();
Chris@0 1240 int w0 = s0i * windowIncrement - (m_windowSize - windowIncrement)/2;
Chris@0 1241 int w1 = s1i * windowIncrement + windowIncrement +
Chris@0 1242 (m_windowSize - windowIncrement)/2 - 1;
Chris@0 1243
Chris@0 1244 min = RealTime::frame2RealTime(w0, m_model->getSampleRate());
Chris@0 1245 max = RealTime::frame2RealTime(w1, m_model->getSampleRate());
Chris@0 1246 return true;
Chris@0 1247 }
Chris@0 1248
Chris@0 1249 bool
Chris@918 1250 SpectrogramLayer::getYBinSourceRange(LayerGeometryProvider *v, int y, double &freqMin, double &freqMax)
Chris@0 1251 const
Chris@0 1252 {
Chris@905 1253 double q0 = 0, q1 = 0;
Chris@44 1254 if (!getYBinRange(v, y, q0, q1)) return false;
Chris@0 1255
Chris@0 1256 int q0i = int(q0 + 0.001);
Chris@0 1257 int q1i = int(q1);
Chris@0 1258
Chris@907 1259 sv_samplerate_t sr = m_model->getSampleRate();
Chris@0 1260
Chris@0 1261 for (int q = q0i; q <= q1i; ++q) {
Chris@121 1262 if (q == q0i) freqMin = (sr * q) / m_fftSize;
Chris@121 1263 if (q == q1i) freqMax = (sr * (q+1)) / m_fftSize;
Chris@0 1264 }
Chris@0 1265 return true;
Chris@0 1266 }
Chris@35 1267
Chris@35 1268 bool
Chris@918 1269 SpectrogramLayer::getAdjustedYBinSourceRange(LayerGeometryProvider *v, int x, int y,
Chris@905 1270 double &freqMin, double &freqMax,
Chris@905 1271 double &adjFreqMin, double &adjFreqMax)
Chris@35 1272 const
Chris@35 1273 {
Chris@277 1274 if (!m_model || !m_model->isOK() || !m_model->isReady()) {
Chris@277 1275 return false;
Chris@277 1276 }
Chris@277 1277
Chris@130 1278 FFTModel *fft = getFFTModel(v);
Chris@114 1279 if (!fft) return false;
Chris@110 1280
Chris@905 1281 double s0 = 0, s1 = 0;
Chris@44 1282 if (!getXBinRange(v, x, s0, s1)) return false;
Chris@35 1283
Chris@905 1284 double q0 = 0, q1 = 0;
Chris@44 1285 if (!getYBinRange(v, y, q0, q1)) return false;
Chris@35 1286
Chris@35 1287 int s0i = int(s0 + 0.001);
Chris@35 1288 int s1i = int(s1);
Chris@35 1289
Chris@35 1290 int q0i = int(q0 + 0.001);
Chris@35 1291 int q1i = int(q1);
Chris@35 1292
Chris@907 1293 sv_samplerate_t sr = m_model->getSampleRate();
Chris@35 1294
Chris@35 1295 bool haveAdj = false;
Chris@35 1296
Chris@37 1297 bool peaksOnly = (m_binDisplay == PeakBins ||
Chris@37 1298 m_binDisplay == PeakFrequencies);
Chris@37 1299
Chris@35 1300 for (int q = q0i; q <= q1i; ++q) {
Chris@35 1301
Chris@35 1302 for (int s = s0i; s <= s1i; ++s) {
Chris@35 1303
Chris@905 1304 double binfreq = (double(sr) * q) / m_windowSize;
Chris@35 1305 if (q == q0i) freqMin = binfreq;
Chris@35 1306 if (q == q1i) freqMax = binfreq;
Chris@37 1307
Chris@114 1308 if (peaksOnly && !fft->isLocalPeak(s, q)) continue;
Chris@38 1309
Chris@907 1310 if (!fft->isOverThreshold(s, q, float(m_threshold * double(m_fftSize)/2.0))) continue;
Chris@907 1311
Chris@907 1312 double freq = binfreq;
Chris@40 1313
Chris@114 1314 if (s < int(fft->getWidth()) - 1) {
Chris@38 1315
Chris@277 1316 fft->estimateStableFrequency(s, q, freq);
Chris@35 1317
Chris@38 1318 if (!haveAdj || freq < adjFreqMin) adjFreqMin = freq;
Chris@38 1319 if (!haveAdj || freq > adjFreqMax) adjFreqMax = freq;
Chris@35 1320
Chris@35 1321 haveAdj = true;
Chris@35 1322 }
Chris@35 1323 }
Chris@35 1324 }
Chris@35 1325
Chris@35 1326 if (!haveAdj) {
Chris@40 1327 adjFreqMin = adjFreqMax = 0.0;
Chris@35 1328 }
Chris@35 1329
Chris@35 1330 return haveAdj;
Chris@35 1331 }
Chris@0 1332
Chris@0 1333 bool
Chris@918 1334 SpectrogramLayer::getXYBinSourceRange(LayerGeometryProvider *v, int x, int y,
Chris@905 1335 double &min, double &max,
Chris@905 1336 double &phaseMin, double &phaseMax) const
Chris@0 1337 {
Chris@277 1338 if (!m_model || !m_model->isOK() || !m_model->isReady()) {
Chris@277 1339 return false;
Chris@277 1340 }
Chris@277 1341
Chris@905 1342 double q0 = 0, q1 = 0;
Chris@44 1343 if (!getYBinRange(v, y, q0, q1)) return false;
Chris@0 1344
Chris@905 1345 double s0 = 0, s1 = 0;
Chris@44 1346 if (!getXBinRange(v, x, s0, s1)) return false;
Chris@0 1347
Chris@0 1348 int q0i = int(q0 + 0.001);
Chris@0 1349 int q1i = int(q1);
Chris@0 1350
Chris@0 1351 int s0i = int(s0 + 0.001);
Chris@0 1352 int s1i = int(s1);
Chris@0 1353
Chris@37 1354 bool rv = false;
Chris@37 1355
Chris@805 1356 int zp = getZeroPadLevel(v);
Chris@122 1357 q0i *= zp + 1;
Chris@122 1358 q1i *= zp + 1;
Chris@122 1359
Chris@130 1360 FFTModel *fft = getFFTModel(v);
Chris@0 1361
Chris@114 1362 if (fft) {
Chris@114 1363
Chris@114 1364 int cw = fft->getWidth();
Chris@114 1365 int ch = fft->getHeight();
Chris@0 1366
Chris@110 1367 min = 0.0;
Chris@110 1368 max = 0.0;
Chris@110 1369 phaseMin = 0.0;
Chris@110 1370 phaseMax = 0.0;
Chris@110 1371 bool have = false;
Chris@0 1372
Chris@110 1373 for (int q = q0i; q <= q1i; ++q) {
Chris@110 1374 for (int s = s0i; s <= s1i; ++s) {
Chris@110 1375 if (s >= 0 && q >= 0 && s < cw && q < ch) {
Chris@117 1376
Chris@905 1377 double value;
Chris@38 1378
Chris@114 1379 value = fft->getPhaseAt(s, q);
Chris@110 1380 if (!have || value < phaseMin) { phaseMin = value; }
Chris@110 1381 if (!have || value > phaseMax) { phaseMax = value; }
Chris@91 1382
Chris@907 1383 value = fft->getMagnitudeAt(s, q) / (m_fftSize/2.0);
Chris@110 1384 if (!have || value < min) { min = value; }
Chris@110 1385 if (!have || value > max) { max = value; }
Chris@110 1386
Chris@110 1387 have = true;
Chris@110 1388 }
Chris@110 1389 }
Chris@110 1390 }
Chris@110 1391
Chris@110 1392 if (have) {
Chris@110 1393 rv = true;
Chris@110 1394 }
Chris@0 1395 }
Chris@0 1396
Chris@37 1397 return rv;
Chris@0 1398 }
Chris@0 1399
Chris@805 1400 int
Chris@918 1401 SpectrogramLayer::getZeroPadLevel(const LayerGeometryProvider *v) const
Chris@114 1402 {
Chris@114 1403 //!!! tidy all this stuff
Chris@114 1404
Chris@114 1405 if (m_binDisplay != AllBins) return 0;
Chris@221 1406
Chris@221 1407 Preferences::SpectrogramSmoothing smoothing =
Chris@221 1408 Preferences::getInstance()->getSpectrogramSmoothing();
Chris@221 1409
Chris@221 1410 if (smoothing == Preferences::NoSpectrogramSmoothing ||
Chris@221 1411 smoothing == Preferences::SpectrogramInterpolated) return 0;
Chris@221 1412
Chris@114 1413 if (m_frequencyScale == LogFrequencyScale) return 3;
Chris@114 1414
Chris@907 1415 sv_samplerate_t sr = m_model->getSampleRate();
Chris@114 1416
Chris@805 1417 int maxbin = m_fftSize / 2;
Chris@114 1418 if (m_maxFrequency > 0) {
Chris@184 1419 maxbin = int((double(m_maxFrequency) * m_fftSize) / sr + 0.1);
Chris@184 1420 if (maxbin > m_fftSize / 2) maxbin = m_fftSize / 2;
Chris@114 1421 }
Chris@114 1422
Chris@805 1423 int minbin = 1;
Chris@114 1424 if (m_minFrequency > 0) {
Chris@114 1425 minbin = int((double(m_minFrequency) * m_fftSize) / sr + 0.1);
Chris@114 1426 if (minbin < 1) minbin = 1;
Chris@184 1427 if (minbin >= maxbin) minbin = maxbin - 1;
Chris@114 1428 }
Chris@114 1429
Chris@905 1430 double perPixel =
Chris@918 1431 double(v->getPaintHeight()) /
Chris@905 1432 double((maxbin - minbin) / (m_zeroPadLevel + 1));
Chris@118 1433
Chris@118 1434 if (perPixel > 2.8) {
Chris@118 1435 return 3; // 4x oversampling
Chris@118 1436 } else if (perPixel > 1.5) {
Chris@118 1437 return 1; // 2x
Chris@114 1438 } else {
Chris@118 1439 return 0; // 1x
Chris@114 1440 }
Chris@114 1441 }
Chris@114 1442
Chris@805 1443 int
Chris@918 1444 SpectrogramLayer::getFFTSize(const LayerGeometryProvider *v) const
Chris@114 1445 {
Chris@114 1446 return m_fftSize * (getZeroPadLevel(v) + 1);
Chris@114 1447 }
Chris@114 1448
Chris@130 1449 FFTModel *
Chris@918 1450 SpectrogramLayer::getFFTModel(const LayerGeometryProvider *v) const
Chris@114 1451 {
Chris@114 1452 if (!m_model) return 0;
Chris@114 1453
Chris@805 1454 int fftSize = getFFTSize(v);
Chris@114 1455
Chris@920 1456 const View *view = v->getView();
Chris@920 1457
Chris@1030 1458 if (m_fftModels.find(view->getId()) != m_fftModels.end()) {
Chris@1030 1459 if (m_fftModels[view->getId()] == 0) {
Chris@184 1460 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@985 1461 cerr << "SpectrogramLayer::getFFTModel(" << v << "): Found null model" << endl;
Chris@184 1462 #endif
Chris@184 1463 return 0;
Chris@184 1464 }
Chris@1030 1465 if (m_fftModels[view->getId()]->getHeight() != fftSize / 2 + 1) {
Chris@184 1466 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1030 1467 cerr << "SpectrogramLayer::getFFTModel(" << v << "): Found a model with the wrong height (" << m_fftModels[view->getId()]->getHeight() << ", wanted " << (fftSize / 2 + 1) << ")" << endl;
Chris@184 1468 #endif
Chris@1030 1469 delete m_fftModels[view->getId()];
Chris@1030 1470 m_fftModels.erase(view->getId());
Chris@1030 1471 delete m_peakCaches[view->getId()];
Chris@1030 1472 m_peakCaches.erase(view->getId());
Chris@184 1473 } else {
Chris@184 1474 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1030 1475 cerr << "SpectrogramLayer::getFFTModel(" << v << "): Found a good model of height " << m_fftModels[view->getId()]->getHeight() << endl;
Chris@184 1476 #endif
Chris@1030 1477 return m_fftModels[view->getId()];
Chris@114 1478 }
Chris@114 1479 }
Chris@114 1480
Chris@1030 1481 if (m_fftModels.find(view->getId()) == m_fftModels.end()) {
Chris@169 1482
Chris@169 1483 FFTModel *model = new FFTModel(m_model,
Chris@169 1484 m_channel,
Chris@169 1485 m_windowType,
Chris@169 1486 m_windowSize,
Chris@169 1487 getWindowIncrement(),
Chris@975 1488 fftSize);
Chris@169 1489
Chris@178 1490 if (!model->isOK()) {
Chris@178 1491 QMessageBox::critical
Chris@178 1492 (0, tr("FFT cache failed"),
Chris@178 1493 tr("Failed to create the FFT model for this spectrogram.\n"
Chris@178 1494 "There may be insufficient memory or disc space to continue."));
Chris@178 1495 delete model;
Chris@1030 1496 m_fftModels[view->getId()] = 0;
Chris@178 1497 return 0;
Chris@178 1498 }
Chris@178 1499
Chris@193 1500 if (!m_sliceableModel) {
Chris@248 1501 #ifdef DEBUG_SPECTROGRAM
Chris@682 1502 cerr << "SpectrogramLayer: emitting sliceableModelReplaced(0, " << model << ")" << endl;
Chris@248 1503 #endif
Chris@193 1504 ((SpectrogramLayer *)this)->sliceableModelReplaced(0, model);
Chris@193 1505 m_sliceableModel = model;
Chris@193 1506 }
Chris@193 1507
Chris@1030 1508 m_fftModels[view->getId()] = model;
Chris@114 1509 }
Chris@114 1510
Chris@1030 1511 return m_fftModels[view->getId()];
Chris@114 1512 }
Chris@114 1513
Chris@484 1514 Dense3DModelPeakCache *
Chris@918 1515 SpectrogramLayer::getPeakCache(const LayerGeometryProvider *v) const
Chris@484 1516 {
Chris@920 1517 const View *view = v->getView();
Chris@1030 1518 if (!m_peakCaches[view->getId()]) {
Chris@484 1519 FFTModel *f = getFFTModel(v);
Chris@484 1520 if (!f) return 0;
Chris@1030 1521 m_peakCaches[view->getId()] = new Dense3DModelPeakCache(f, 8);
Chris@484 1522 }
Chris@1030 1523 return m_peakCaches[view->getId()];
Chris@484 1524 }
Chris@484 1525
Chris@193 1526 const Model *
Chris@193 1527 SpectrogramLayer::getSliceableModel() const
Chris@193 1528 {
Chris@193 1529 if (m_sliceableModel) return m_sliceableModel;
Chris@193 1530 if (m_fftModels.empty()) return 0;
Chris@985 1531 m_sliceableModel = m_fftModels.begin()->second;
Chris@193 1532 return m_sliceableModel;
Chris@193 1533 }
Chris@193 1534
Chris@114 1535 void
Chris@130 1536 SpectrogramLayer::invalidateFFTModels()
Chris@114 1537 {
Chris@130 1538 for (ViewFFTMap::iterator i = m_fftModels.begin();
Chris@130 1539 i != m_fftModels.end(); ++i) {
Chris@985 1540 delete i->second;
Chris@114 1541 }
Chris@486 1542 for (PeakCacheMap::iterator i = m_peakCaches.begin();
Chris@486 1543 i != m_peakCaches.end(); ++i) {
Chris@486 1544 delete i->second;
Chris@486 1545 }
Chris@114 1546
Chris@130 1547 m_fftModels.clear();
Chris@486 1548 m_peakCaches.clear();
Chris@193 1549
Chris@193 1550 if (m_sliceableModel) {
Chris@682 1551 cerr << "SpectrogramLayer: emitting sliceableModelReplaced(" << m_sliceableModel << ", 0)" << endl;
Chris@193 1552 emit sliceableModelReplaced(m_sliceableModel, 0);
Chris@193 1553 m_sliceableModel = 0;
Chris@193 1554 }
Chris@114 1555 }
Chris@114 1556
Chris@0 1557 void
Chris@119 1558 SpectrogramLayer::invalidateMagnitudes()
Chris@119 1559 {
Chris@119 1560 m_viewMags.clear();
Chris@1025 1561 for (vector<MagnitudeRange>::iterator i = m_columnMags.begin();
Chris@119 1562 i != m_columnMags.end(); ++i) {
Chris@119 1563 *i = MagnitudeRange();
Chris@119 1564 }
Chris@119 1565 }
Chris@119 1566
Chris@119 1567 bool
Chris@918 1568 SpectrogramLayer::updateViewMagnitudes(LayerGeometryProvider *v) const
Chris@119 1569 {
Chris@119 1570 MagnitudeRange mag;
Chris@119 1571
Chris@918 1572 int x0 = 0, x1 = v->getPaintWidth();
Chris@905 1573 double s00 = 0, s01 = 0, s10 = 0, s11 = 0;
Chris@119 1574
Chris@203 1575 if (!getXBinRange(v, x0, s00, s01)) {
Chris@907 1576 s00 = s01 = double(m_model->getStartFrame()) / getWindowIncrement();
Chris@203 1577 }
Chris@203 1578
Chris@203 1579 if (!getXBinRange(v, x1, s10, s11)) {
Chris@907 1580 s10 = s11 = double(m_model->getEndFrame()) / getWindowIncrement();
Chris@203 1581 }
Chris@119 1582
Chris@1025 1583 int s0 = int(min(s00, s10) + 0.0001);
Chris@1025 1584 int s1 = int(max(s01, s11) + 0.0001);
Chris@203 1585
Chris@587 1586 // SVDEBUG << "SpectrogramLayer::updateViewMagnitudes: x0 = " << x0 << ", x1 = " << x1 << ", s00 = " << s00 << ", s11 = " << s11 << " s0 = " << s0 << ", s1 = " << s1 << endl;
Chris@119 1587
Chris@248 1588 if (int(m_columnMags.size()) <= s1) {
Chris@119 1589 m_columnMags.resize(s1 + 1);
Chris@119 1590 }
Chris@119 1591
Chris@119 1592 for (int s = s0; s <= s1; ++s) {
Chris@119 1593 if (m_columnMags[s].isSet()) {
Chris@119 1594 mag.sample(m_columnMags[s]);
Chris@119 1595 }
Chris@119 1596 }
Chris@119 1597
Chris@184 1598 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@985 1599 cerr << "SpectrogramLayer::updateViewMagnitudes returning from cols "
Chris@585 1600 << s0 << " -> " << s1 << " inclusive" << endl;
Chris@184 1601 #endif
Chris@119 1602
Chris@119 1603 if (!mag.isSet()) return false;
Chris@1030 1604 if (mag == m_viewMags[v->getId()]) return false;
Chris@1030 1605 m_viewMags[v->getId()] = mag;
Chris@119 1606 return true;
Chris@119 1607 }
Chris@119 1608
Chris@119 1609 void
Chris@389 1610 SpectrogramLayer::setSynchronousPainting(bool synchronous)
Chris@389 1611 {
Chris@389 1612 m_synchronous = synchronous;
Chris@389 1613 }
Chris@389 1614
Chris@1030 1615 ScrollableImageCache &
Chris@1030 1616 SpectrogramLayer::getImageCacheReference(const LayerGeometryProvider *view) const
Chris@1030 1617 {
Chris@1030 1618 if (m_imageCaches.find(view->getId()) == m_imageCaches.end()) {
Chris@1030 1619 m_imageCaches[view->getId()] = ScrollableImageCache(view);
Chris@1030 1620 }
Chris@1030 1621 return m_imageCaches.at(view->getId());
Chris@1030 1622 }
Chris@1030 1623
Chris@389 1624 void
Chris@916 1625 SpectrogramLayer::paint(LayerGeometryProvider *v, QPainter &paint, QRect rect) const
Chris@0 1626 {
Chris@334 1627 Profiler profiler("SpectrogramLayer::paint", false);
Chris@334 1628
Chris@0 1629 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 1630 cerr << "SpectrogramLayer::paint() entering: m_model is " << m_model << ", zoom level is " << v->getZoomLevel() << endl;
Chris@95 1631
Chris@1026 1632 cerr << "SpectrogramLayer::paint(): rect is " << rect.x() << "," << rect.y() << " " << rect.width() << "x" << rect.height() << endl;
Chris@0 1633 #endif
Chris@95 1634
Chris@907 1635 sv_frame_t startFrame = v->getStartFrame();
Chris@44 1636
Chris@0 1637 if (!m_model || !m_model->isOK() || !m_model->isReady()) {
Chris@0 1638 return;
Chris@0 1639 }
Chris@0 1640
Chris@47 1641 if (isLayerDormant(v)) {
Chris@587 1642 SVDEBUG << "SpectrogramLayer::paint(): Layer is dormant, making it undormant again" << endl;
Chris@29 1643 }
Chris@29 1644
Chris@48 1645 // Need to do this even if !isLayerDormant, as that could mean v
Chris@48 1646 // is not in the dormancy map at all -- we need it to be present
Chris@48 1647 // and accountable for when determining whether we need the cache
Chris@48 1648 // in the cache-fill thread above.
Chris@806 1649 //!!! no inter use cache-fill thread
Chris@131 1650 const_cast<SpectrogramLayer *>(this)->Layer::setLayerDormant(v, false);
Chris@48 1651
Chris@805 1652 int fftSize = getFFTSize(v);
Chris@920 1653
Chris@920 1654 const View *view = v->getView();
Chris@1030 1655 ScrollableImageCache &cache = getImageCacheReference(view);
Chris@95 1656
Chris@95 1657 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1030 1658 cerr << "SpectrogramLayer::paint(): image cache valid area from " << cache.getValidLeft() << " width " << cache.getValidWidth() << ", height " << cache.getSize().height() << endl;
Chris@1030 1659 if (rect.x() + rect.width() + 1 < cache.getValidLeft() ||
Chris@1030 1660 rect.x() > cache.getValidRight()) {
Chris@1030 1661 cerr << "SpectrogramLayer: NOTE: requested rect is not contiguous with cache valid area" << endl;
Chris@1030 1662 }
Chris@95 1663 #endif
Chris@95 1664
Chris@44 1665 int zoomLevel = v->getZoomLevel();
Chris@0 1666
Chris@1030 1667 int x0 = v->getXForViewX(rect.x());
Chris@1030 1668 int x1 = v->getXForViewX(rect.x() + rect.width());
Chris@1030 1669 if (x0 < 0) x0 = 0;
Chris@1030 1670 if (x1 > v->getPaintWidth()) x1 = v->getPaintWidth();
Chris@1022 1671
Chris@1022 1672 if (updateViewMagnitudes(v)) {
Chris@1022 1673 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1030 1674 cerr << "SpectrogramLayer: magnitude range changed to [" << m_viewMags[v->getId()].getMin() << "->" << m_viewMags[v->getId()].getMax() << "]" << endl;
Chris@1022 1675 #endif
Chris@1022 1676 if (m_normalization == NormalizeVisibleArea) {
Chris@1030 1677 cache.invalidate();
Chris@1022 1678 }
Chris@1022 1679 }
Chris@1030 1680
Chris@1030 1681 if (cache.getZoomLevel() != zoomLevel ||
Chris@1030 1682 cache.getSize() != v->getPaintSize()) {
Chris@1031 1683 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1031 1684 cerr << "SpectrogramLayer: resizing image cache from "
Chris@1031 1685 << cache.getSize().width() << "x" << cache.getSize().height()
Chris@1031 1686 << " to "
Chris@1031 1687 << v->getPaintSize().width() << "x" << v->getPaintSize().height()
Chris@1031 1688 << " and updating zoom level from " << cache.getZoomLevel()
Chris@1031 1689 << " to " << zoomLevel
Chris@1031 1690 << endl;
Chris@1031 1691 #endif
Chris@1030 1692 cache.resize(v->getPaintSize());
Chris@1031 1693 cache.setZoomLevel(zoomLevel);
Chris@1031 1694 cache.setStartFrame(startFrame);
Chris@1030 1695 }
Chris@1023 1696
Chris@1030 1697 if (cache.isValid()) {
Chris@482 1698
Chris@1030 1699 if (v->getXForFrame(cache.getStartFrame()) ==
Chris@1030 1700 v->getXForFrame(startFrame) &&
Chris@1030 1701 cache.getValidLeft() <= x0 &&
Chris@1030 1702 cache.getValidRight() >= x1) {
Chris@1022 1703
Chris@0 1704 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1030 1705 cerr << "SpectrogramLayer: image cache hit!" << endl;
Chris@0 1706 #endif
Chris@0 1707
Chris@1030 1708 paint.drawImage(rect, cache.getImage(), rect);
Chris@1030 1709
Chris@1030 1710 illuminateLocalFeatures(v, paint);
Chris@1030 1711 return;
Chris@1030 1712
Chris@1030 1713 } else {
Chris@1030 1714
Chris@1030 1715 // cache doesn't begin at the right frame or doesn't
Chris@1030 1716 // contain the complete view, but might be scrollable or
Chris@1030 1717 // partially usable
Chris@1022 1718
Chris@0 1719 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1030 1720 cerr << "SpectrogramLayer: scrolling the image cache if applicable" << endl;
Chris@0 1721 #endif
Chris@0 1722
Chris@1030 1723 cache.scrollTo(startFrame);
Chris@1030 1724
Chris@0 1725 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1031 1726 cerr << "SpectrogramLayer: after scrolling, cache valid from "
Chris@1030 1727 << cache.getValidLeft() << " width " << cache.getValidWidth()
Chris@1030 1728 << endl;
Chris@0 1729 #endif
Chris@1030 1730 }
Chris@0 1731 }
Chris@95 1732
Chris@1030 1733 bool rightToLeft = false;
Chris@1030 1734
Chris@1030 1735 if (!cache.isValid()) {
Chris@1028 1736 if (!m_synchronous) {
Chris@1028 1737 // When rendering the whole thing, start from somewhere near
Chris@1028 1738 // the middle so that the region of interest appears first
Chris@1038 1739
Chris@1038 1740 //!!! (perhaps we should have some cunning test to avoid
Chris@1038 1741 //!!! doing this if past repaints have appeared fast
Chris@1038 1742 //!!! enough to do the whole width in one shot)
Chris@1030 1743 if (x0 == 0 && x1 == v->getPaintWidth()) {
Chris@1037 1744 x0 = int(x1 * 0.3);
Chris@1030 1745 }
Chris@1028 1746 }
Chris@1030 1747 } else {
Chris@1030 1748 // When rendering only a part of the cache, we need to make
Chris@1030 1749 // sure that the part we're rendering is adjacent to (or
Chris@1030 1750 // overlapping) a valid area of cache, if we have one. The
Chris@1030 1751 // alternative is to ditch the valid area of cache and render
Chris@1030 1752 // only the requested area, but that's risky because this can
Chris@1030 1753 // happen when just waving the pointer over a small part of
Chris@1030 1754 // the view -- if we lose the partly-built cache every time
Chris@1030 1755 // the user does that, we'll never finish building it.
Chris@1030 1756 int left = x0;
Chris@1030 1757 int width = x1 - x0;
Chris@1030 1758 bool isLeftOfValidArea = false;
Chris@1031 1759 cache.adjustToTouchValidArea(left, width, isLeftOfValidArea);
Chris@1030 1760 x0 = left;
Chris@1030 1761 x1 = x0 + width;
Chris@1030 1762
Chris@1030 1763 // That call also told us whether we should be painting
Chris@1030 1764 // sub-regions of our target region in right-to-left order in
Chris@1030 1765 // order to ensure contiguity
Chris@1030 1766 rightToLeft = isLeftOfValidArea;
Chris@95 1767 }
Chris@1030 1768
Chris@224 1769 // We always paint the full height when refreshing the cache.
Chris@224 1770 // Smaller heights can be used when painting direct from cache
Chris@224 1771 // (further up in this function), but we want to ensure the cache
Chris@224 1772 // is coherent without having to worry about vertical matching of
Chris@224 1773 // required and valid areas as well as horizontal.
Chris@918 1774 int h = v->getPaintHeight();
Chris@1025 1775
Chris@1024 1776 int repaintWidth = x1 - x0;
Chris@0 1777
Chris@95 1778 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 1779 cerr << "SpectrogramLayer: x0 " << x0 << ", x1 " << x1
Chris@1026 1780 << ", repaintWidth " << repaintWidth << ", h " << h
Chris@1030 1781 << ", rightToLeft " << rightToLeft << endl;
Chris@95 1782 #endif
Chris@95 1783
Chris@907 1784 sv_samplerate_t sr = m_model->getSampleRate();
Chris@122 1785
Chris@122 1786 // Set minFreq and maxFreq to the frequency extents of the possibly
Chris@122 1787 // zero-padded visible bin range, and displayMinFreq and displayMaxFreq
Chris@122 1788 // to the actual scale frequency extents (presumably not zero padded).
Chris@253 1789
Chris@253 1790 // If we are zero padding, we want to use the zero-padded
Chris@253 1791 // equivalents of the bins that we would be using if not zero
Chris@253 1792 // padded, to avoid spaces at the top and bottom of the display.
Chris@253 1793
Chris@253 1794 // Note fftSize is the actual zero-padded fft size, m_fftSize the
Chris@253 1795 // nominal fft size.
Chris@35 1796
Chris@805 1797 int maxbin = m_fftSize / 2;
Chris@35 1798 if (m_maxFrequency > 0) {
Chris@253 1799 maxbin = int((double(m_maxFrequency) * m_fftSize) / sr + 0.001);
Chris@253 1800 if (maxbin > m_fftSize / 2) maxbin = m_fftSize / 2;
Chris@35 1801 }
Chris@111 1802
Chris@805 1803 int minbin = 1;
Chris@37 1804 if (m_minFrequency > 0) {
Chris@253 1805 minbin = int((double(m_minFrequency) * m_fftSize) / sr + 0.001);
Chris@682 1806 // cerr << "m_minFrequency = " << m_minFrequency << " -> minbin = " << minbin << endl;
Chris@40 1807 if (minbin < 1) minbin = 1;
Chris@184 1808 if (minbin >= maxbin) minbin = maxbin - 1;
Chris@37 1809 }
Chris@37 1810
Chris@253 1811 int zpl = getZeroPadLevel(v) + 1;
Chris@253 1812 minbin = minbin * zpl;
Chris@253 1813 maxbin = (maxbin + 1) * zpl - 1;
Chris@253 1814
Chris@905 1815 double minFreq = (double(minbin) * sr) / fftSize;
Chris@905 1816 double maxFreq = (double(maxbin) * sr) / fftSize;
Chris@905 1817
Chris@905 1818 double displayMinFreq = minFreq;
Chris@905 1819 double displayMaxFreq = maxFreq;
Chris@122 1820
Chris@122 1821 if (fftSize != m_fftSize) {
Chris@122 1822 displayMinFreq = getEffectiveMinFrequency();
Chris@122 1823 displayMaxFreq = getEffectiveMaxFrequency();
Chris@122 1824 }
Chris@122 1825
Chris@682 1826 // cerr << "(giving actual minFreq " << minFreq << " and display minFreq " << displayMinFreq << ")" << endl;
Chris@253 1827
Chris@518 1828 int increment = getWindowIncrement();
Chris@40 1829
Chris@40 1830 bool logarithmic = (m_frequencyScale == LogFrequencyScale);
Chris@1026 1831
Chris@1030 1832 MagnitudeRange overallMag = m_viewMags[v->getId()];
Chris@119 1833 bool overallMagChanged = false;
Chris@119 1834
Chris@137 1835 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 1836 cerr << "SpectrogramLayer: " << ((double(v->getFrameForX(1) - v->getFrameForX(0))) / increment) << " bin(s) per pixel" << endl;
Chris@137 1837 #endif
Chris@137 1838
Chris@1024 1839 if (repaintWidth == 0) {
Chris@1024 1840 SVDEBUG << "*** NOTE: repaintWidth == 0" << endl;
Chris@331 1841 }
Chris@331 1842
Chris@382 1843 Profiler outerprof("SpectrogramLayer::paint: all cols");
Chris@382 1844
Chris@481 1845 // The draw buffer contains a fragment at either our pixel
Chris@481 1846 // resolution (if there is more than one time-bin per pixel) or
Chris@481 1847 // time-bin resolution (if a time-bin spans more than one pixel).
Chris@481 1848 // We need to ensure that it starts and ends at points where a
Chris@481 1849 // time-bin boundary occurs at an exact pixel boundary, and with a
Chris@481 1850 // certain amount of overlap across existing pixels so that we can
Chris@481 1851 // scale and draw from it without smoothing errors at the edges.
Chris@481 1852
Chris@481 1853 // If (getFrameForX(x) / increment) * increment ==
Chris@481 1854 // getFrameForX(x), then x is a time-bin boundary. We want two
Chris@481 1855 // such boundaries at either side of the draw buffer -- one which
Chris@481 1856 // we draw up to, and one which we subsequently crop at.
Chris@481 1857
Chris@1039 1858 bool bufferIsBinResolution = false;
Chris@1039 1859 if (increment > zoomLevel) bufferIsBinResolution = true;
Chris@481 1860
Chris@907 1861 sv_frame_t leftBoundaryFrame = -1, leftCropFrame = -1;
Chris@907 1862 sv_frame_t rightBoundaryFrame = -1, rightCropFrame = -1;
Chris@481 1863
Chris@481 1864 int bufwid;
Chris@481 1865
Chris@1039 1866 if (bufferIsBinResolution) {
Chris@481 1867
Chris@482 1868 for (int x = x0; ; --x) {
Chris@907 1869 sv_frame_t f = v->getFrameForX(x);
Chris@481 1870 if ((f / increment) * increment == f) {
Chris@481 1871 if (leftCropFrame == -1) leftCropFrame = f;
Chris@1024 1872 else if (x < x0 - 2) {
Chris@1024 1873 leftBoundaryFrame = f;
Chris@1024 1874 break;
Chris@1024 1875 }
Chris@481 1876 }
Chris@481 1877 }
Chris@1024 1878 for (int x = x0 + repaintWidth; ; ++x) {
Chris@907 1879 sv_frame_t f = v->getFrameForX(x);
Chris@481 1880 if ((f / increment) * increment == f) {
Chris@481 1881 if (rightCropFrame == -1) rightCropFrame = f;
Chris@1024 1882 else if (x > x0 + repaintWidth + 2) {
Chris@1024 1883 rightBoundaryFrame = f;
Chris@1024 1884 break;
Chris@1024 1885 }
Chris@481 1886 }
Chris@481 1887 }
Chris@485 1888 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@481 1889 cerr << "Left: crop: " << leftCropFrame << " (bin " << leftCropFrame/increment << "); boundary: " << leftBoundaryFrame << " (bin " << leftBoundaryFrame/increment << ")" << endl;
Chris@481 1890 cerr << "Right: crop: " << rightCropFrame << " (bin " << rightCropFrame/increment << "); boundary: " << rightBoundaryFrame << " (bin " << rightBoundaryFrame/increment << ")" << endl;
Chris@485 1891 #endif
Chris@481 1892
Chris@907 1893 bufwid = int((rightBoundaryFrame - leftBoundaryFrame) / increment);
Chris@481 1894
Chris@481 1895 } else {
Chris@481 1896
Chris@1024 1897 bufwid = repaintWidth;
Chris@481 1898 }
Chris@481 1899
Chris@907 1900 vector<int> binforx(bufwid);
Chris@907 1901 vector<double> binfory(h);
Chris@907 1902
Chris@484 1903 bool usePeaksCache = false;
Chris@484 1904
Chris@1039 1905 if (bufferIsBinResolution) {
Chris@481 1906 for (int x = 0; x < bufwid; ++x) {
Chris@907 1907 binforx[x] = int(leftBoundaryFrame / increment) + x;
Chris@481 1908 }
Chris@481 1909 m_drawBuffer = QImage(bufwid, h, QImage::Format_Indexed8);
Chris@481 1910 } else {
Chris@481 1911 for (int x = 0; x < bufwid; ++x) {
Chris@905 1912 double s0 = 0, s1 = 0;
Chris@481 1913 if (getXBinRange(v, x + x0, s0, s1)) {
Chris@481 1914 binforx[x] = int(s0 + 0.0001);
Chris@481 1915 } else {
Chris@487 1916 binforx[x] = -1; //???
Chris@481 1917 }
Chris@481 1918 }
Chris@1031 1919 if (m_drawBuffer.width() < bufwid || m_drawBuffer.height() != h) {
Chris@481 1920 m_drawBuffer = QImage(bufwid, h, QImage::Format_Indexed8);
Chris@480 1921 }
Chris@484 1922 usePeaksCache = (increment * 8) < zoomLevel;
Chris@487 1923 if (m_colourScale == PhaseColourScale) usePeaksCache = false;
Chris@480 1924 }
Chris@481 1925
Chris@481 1926 for (int pixel = 0; pixel < 256; ++pixel) {
Chris@907 1927 m_drawBuffer.setColor((unsigned char)pixel,
Chris@907 1928 m_palette.getColour((unsigned char)pixel).rgb());
Chris@481 1929 }
Chris@481 1930
Chris@481 1931 m_drawBuffer.fill(0);
Chris@1024 1932 int attainedBufwid = bufwid;
Chris@1039 1933
Chris@1039 1934 double softTimeLimit;
Chris@1039 1935
Chris@1039 1936 if (m_synchronous) {
Chris@1039 1937
Chris@1039 1938 // must paint the whole thing for synchronous mode, so give
Chris@1039 1939 // "no timeout"
Chris@1039 1940 softTimeLimit = 0.0;
Chris@1039 1941
Chris@1039 1942 } else if (bufferIsBinResolution) {
Chris@1039 1943
Chris@1039 1944 // calculating boundaries later will be too fiddly for partial
Chris@1039 1945 // paints, and painting should be fast anyway when this is the
Chris@1039 1946 // case because it means we're well zoomed in
Chris@1039 1947 softTimeLimit = 0.0;
Chris@1039 1948
Chris@1039 1949 } else {
Chris@1039 1950
Chris@1039 1951 // neither limitation applies, so use a short soft limit
Chris@1039 1952
Chris@1039 1953 if (m_binDisplay == PeakFrequencies) {
Chris@1039 1954 softTimeLimit = 0.15;
Chris@1039 1955 } else {
Chris@1039 1956 softTimeLimit = 0.1;
Chris@1039 1957 }
Chris@1039 1958 }
Chris@1039 1959
Chris@488 1960 if (m_binDisplay != PeakFrequencies) {
Chris@488 1961
Chris@488 1962 for (int y = 0; y < h; ++y) {
Chris@905 1963 double q0 = 0, q1 = 0;
Chris@488 1964 if (!getSmoothedYBinRange(v, h-y-1, q0, q1)) {
Chris@488 1965 binfory[y] = -1;
Chris@488 1966 } else {
Chris@490 1967 binfory[y] = q0;
Chris@488 1968 }
Chris@480 1969 }
Chris@488 1970
Chris@1024 1971 attainedBufwid =
Chris@1026 1972 paintDrawBuffer(v, bufwid, h, binforx, binfory,
Chris@1026 1973 usePeaksCache,
Chris@1026 1974 overallMag, overallMagChanged,
Chris@1039 1975 rightToLeft,
Chris@1039 1976 softTimeLimit);
Chris@488 1977
Chris@488 1978 } else {
Chris@488 1979
Chris@1024 1980 attainedBufwid =
Chris@1024 1981 paintDrawBufferPeakFrequencies(v, bufwid, h, binforx,
Chris@1024 1982 minbin, maxbin,
Chris@1024 1983 displayMinFreq, displayMaxFreq,
Chris@1024 1984 logarithmic,
Chris@1026 1985 overallMag, overallMagChanged,
Chris@1039 1986 rightToLeft,
Chris@1039 1987 softTimeLimit);
Chris@480 1988 }
Chris@481 1989
Chris@1024 1990 int failedToRepaint = bufwid - attainedBufwid;
Chris@1031 1991
Chris@1031 1992 int paintedLeft = x0;
Chris@1031 1993 int paintedWidth = x1 - x0;
Chris@1031 1994
Chris@1025 1995 if (failedToRepaint > 0) {
Chris@1031 1996
Chris@1025 1997 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 1998 cerr << "SpectrogramLayer::paint(): Failed to repaint " << failedToRepaint << " of " << bufwid
Chris@1029 1999 << " columns in time (so managed to repaint " << bufwid - failedToRepaint << ")" << endl;
Chris@1025 2000 #endif
Chris@1031 2001
Chris@1031 2002 if (rightToLeft) {
Chris@1031 2003 paintedLeft += failedToRepaint;
Chris@1031 2004 }
Chris@1031 2005
Chris@1031 2006 paintedWidth -= failedToRepaint;
Chris@1031 2007
Chris@1031 2008 if (paintedWidth < 0) {
Chris@1031 2009 paintedWidth = 0;
Chris@1031 2010 }
Chris@1031 2011
Chris@1025 2012 } else if (failedToRepaint < 0) {
Chris@1024 2013 cerr << "WARNING: failedToRepaint < 0 (= " << failedToRepaint << ")"
Chris@1024 2014 << endl;
Chris@1024 2015 failedToRepaint = 0;
Chris@1024 2016 }
Chris@1031 2017
Chris@119 2018 if (overallMagChanged) {
Chris@1030 2019 m_viewMags[v->getId()] = overallMag;
Chris@209 2020 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1030 2021 cerr << "SpectrogramLayer: Overall mag is now [" << m_viewMags[v->getId()].getMin() << "->" << m_viewMags[v->getId()].getMax() << "] - will be updating" << endl;
Chris@209 2022 #endif
Chris@119 2023 }
Chris@119 2024
Chris@382 2025 outerprof.end();
Chris@382 2026
Chris@382 2027 Profiler profiler2("SpectrogramLayer::paint: draw image");
Chris@137 2028
Chris@1031 2029 if (paintedWidth > 0) {
Chris@1024 2030
Chris@224 2031 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1031 2032 cerr << "SpectrogramLayer: Copying " << paintedWidth << "x" << h
Chris@1031 2033 << " from draw buffer at " << paintedLeft - x0 << "," << 0
Chris@1031 2034 << " to " << paintedWidth << "x" << h << " on cache at "
Chris@585 2035 << x0 << "," << 0 << endl;
Chris@224 2036 #endif
Chris@224 2037
Chris@1039 2038 if (bufferIsBinResolution) {
Chris@1031 2039
Chris@481 2040 int scaledLeft = v->getXForFrame(leftBoundaryFrame);
Chris@481 2041 int scaledRight = v->getXForFrame(rightBoundaryFrame);
Chris@1031 2042
Chris@485 2043 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 2044 cerr << "SpectrogramLayer: Rescaling image from " << bufwid
Chris@481 2045 << "x" << h << " to "
Chris@481 2046 << scaledRight-scaledLeft << "x" << h << endl;
Chris@485 2047 #endif
Chris@1031 2048
Chris@490 2049 Preferences::SpectrogramXSmoothing xsmoothing =
Chris@490 2050 Preferences::getInstance()->getSpectrogramXSmoothing();
Chris@1026 2051
Chris@481 2052 QImage scaled = m_drawBuffer.scaled
Chris@481 2053 (scaledRight - scaledLeft, h,
Chris@490 2054 Qt::IgnoreAspectRatio,
Chris@490 2055 ((xsmoothing == Preferences::SpectrogramXInterpolated) ?
Chris@490 2056 Qt::SmoothTransformation : Qt::FastTransformation));
Chris@1026 2057
Chris@481 2058 int scaledLeftCrop = v->getXForFrame(leftCropFrame);
Chris@481 2059 int scaledRightCrop = v->getXForFrame(rightCropFrame);
Chris@1031 2060
Chris@485 2061 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 2062 cerr << "SpectrogramLayer: Drawing image region of width " << scaledRightCrop - scaledLeftCrop << " to "
Chris@481 2063 << scaledLeftCrop << " from " << scaledLeftCrop - scaledLeft << endl;
Chris@485 2064 #endif
Chris@1030 2065
Chris@1040 2066 int targetLeft = scaledLeftCrop;
Chris@1040 2067 if (targetLeft < 0) {
Chris@1040 2068 targetLeft = 0;
Chris@1040 2069 }
Chris@1040 2070
Chris@1040 2071 int targetWidth = scaledRightCrop - targetLeft;
Chris@1040 2072 if (targetLeft + targetWidth > cache.getSize().width()) {
Chris@1040 2073 targetWidth = cache.getSize().width() - targetLeft;
Chris@1040 2074 }
Chris@1031 2075
Chris@1040 2076 int sourceLeft = targetLeft - scaledLeft;
Chris@1040 2077 if (sourceLeft < 0) {
Chris@1040 2078 sourceLeft = 0;
Chris@1040 2079 }
Chris@1040 2080
Chris@1040 2081 int sourceWidth = targetWidth;
Chris@1040 2082
Chris@1040 2083 if (targetWidth > 0) {
Chris@1040 2084 cache.drawImage
Chris@1040 2085 (targetLeft,
Chris@1040 2086 targetWidth,
Chris@1040 2087 scaled,
Chris@1040 2088 sourceLeft,
Chris@1040 2089 sourceWidth);
Chris@1040 2090 }
Chris@1024 2091
Chris@481 2092 } else {
Chris@1024 2093
Chris@1031 2094 cache.drawImage(paintedLeft, paintedWidth,
Chris@1030 2095 m_drawBuffer,
Chris@1031 2096 paintedLeft - x0, paintedWidth);
Chris@481 2097 }
Chris@331 2098 }
Chris@331 2099
Chris@1026 2100 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1030 2101 cerr << "SpectrogramLayer: Cache valid area now from " << cache.getValidLeft()
Chris@1030 2102 << " width " << cache.getValidWidth() << ", height "
Chris@1030 2103 << cache.getSize().height() << endl;
Chris@1026 2104 #endif
Chris@1030 2105
Chris@1030 2106 QRect pr = rect & cache.getValidArea();
Chris@337 2107
Chris@337 2108 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 2109 cerr << "SpectrogramLayer: Copying " << pr.width() << "x" << pr.height()
Chris@337 2110 << " from cache at " << pr.x() << "," << pr.y()
Chris@585 2111 << " to window" << endl;
Chris@337 2112 #endif
Chris@337 2113
Chris@1030 2114 paint.drawImage(pr.x(), pr.y(), cache.getImage(),
Chris@479 2115 pr.x(), pr.y(), pr.width(), pr.height());
Chris@337 2116
Chris@389 2117 if (!m_synchronous) {
Chris@389 2118
Chris@862 2119 if ((m_normalization != NormalizeVisibleArea) || !overallMagChanged) {
Chris@1031 2120
Chris@1031 2121 QRect areaLeft(0, 0, cache.getValidLeft(), h);
Chris@1031 2122 QRect areaRight(cache.getValidRight(), 0,
Chris@1031 2123 cache.getSize().width() - cache.getValidRight(), h);
Chris@1031 2124
Chris@1031 2125 bool haveSpaceLeft = (areaLeft.width() > 0);
Chris@1031 2126 bool haveSpaceRight = (areaRight.width() > 0);
Chris@1031 2127
Chris@1031 2128 bool updateLeft = haveSpaceLeft;
Chris@1031 2129 bool updateRight = haveSpaceRight;
Chris@1031 2130
Chris@1031 2131 if (updateLeft && updateRight) {
Chris@1031 2132 if (rightToLeft) {
Chris@1031 2133 // we just did something adjoining the cache on
Chris@1031 2134 // its left side, so now do something on its right
Chris@1031 2135 updateLeft = false;
Chris@1031 2136 } else {
Chris@1031 2137 updateRight = false;
Chris@1031 2138 }
Chris@389 2139 }
Chris@389 2140
Chris@1031 2141 if (updateLeft) {
Chris@1031 2142 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1031 2143 cerr << "SpectrogramLayer::paint() updating left ("
Chris@1031 2144 << areaLeft.x() << ", "
Chris@1031 2145 << areaLeft.width() << ")" << endl;
Chris@1031 2146 #endif
Chris@1031 2147 v->updatePaintRect(areaLeft);
Chris@1031 2148 }
Chris@1031 2149
Chris@1031 2150 if (updateRight) {
Chris@389 2151 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@985 2152 cerr << "SpectrogramLayer::paint() updating right ("
Chris@1031 2153 << areaRight.x() << ", "
Chris@1031 2154 << areaRight.width() << ")" << endl;
Chris@389 2155 #endif
Chris@1031 2156 v->updatePaintRect(areaRight);
Chris@389 2157 }
Chris@1031 2158
Chris@389 2159 } else {
Chris@389 2160 // overallMagChanged
Chris@682 2161 cerr << "\noverallMagChanged - updating all\n" << endl;
Chris@1030 2162 cache.invalidate();
Chris@1030 2163 v->updatePaintRect(v->getPaintRect());
Chris@119 2164 }
Chris@95 2165 }
Chris@0 2166
Chris@121 2167 illuminateLocalFeatures(v, paint);
Chris@120 2168
Chris@0 2169 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@985 2170 cerr << "SpectrogramLayer::paint() returning" << endl;
Chris@0 2171 #endif
Chris@0 2172 }
Chris@0 2173
Chris@1024 2174 int
Chris@918 2175 SpectrogramLayer::paintDrawBufferPeakFrequencies(LayerGeometryProvider *v,
Chris@488 2176 int w,
Chris@488 2177 int h,
Chris@907 2178 const vector<int> &binforx,
Chris@488 2179 int minbin,
Chris@488 2180 int maxbin,
Chris@905 2181 double displayMinFreq,
Chris@905 2182 double displayMaxFreq,
Chris@491 2183 bool logarithmic,
Chris@491 2184 MagnitudeRange &overallMag,
Chris@1026 2185 bool &overallMagChanged,
Chris@1039 2186 bool rightToLeft,
Chris@1039 2187 double softTimeLimit) const
Chris@488 2188 {
Chris@488 2189 Profiler profiler("SpectrogramLayer::paintDrawBufferPeakFrequencies");
Chris@488 2190
Chris@488 2191 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 2192 cerr << "SpectrogramLayer::paintDrawBufferPeakFrequencies: minbin " << minbin << ", maxbin " << maxbin << "; w " << w << ", h " << h << endl;
Chris@488 2193 #endif
Chris@488 2194 if (minbin < 0) minbin = 0;
Chris@488 2195 if (maxbin < 0) maxbin = minbin+1;
Chris@488 2196
Chris@488 2197 FFTModel *fft = getFFTModel(v);
Chris@1024 2198 if (!fft) return 0;
Chris@488 2199
Chris@488 2200 FFTModel::PeakSet peakfreqs;
Chris@488 2201
Chris@848 2202 int psx = -1;
Chris@545 2203
Chris@545 2204 #ifdef __GNUC__
Chris@488 2205 float values[maxbin - minbin + 1];
Chris@545 2206 #else
Chris@545 2207 float *values = (float *)alloca((maxbin - minbin + 1) * sizeof(float));
Chris@545 2208 #endif
Chris@488 2209
Chris@1027 2210 int minColumns = 4;
Chris@1039 2211 bool haveTimeLimits = (softTimeLimit > 0.0);
Chris@1037 2212 double hardTimeLimit = softTimeLimit * 2.0;
Chris@1037 2213 bool overridingSoftLimit = false;
Chris@1027 2214 auto startTime = chrono::steady_clock::now();
Chris@1027 2215
Chris@1026 2216 int start = 0;
Chris@1026 2217 int finish = w;
Chris@1026 2218 int step = 1;
Chris@1026 2219
Chris@1026 2220 if (rightToLeft) {
Chris@1026 2221 start = w-1;
Chris@1026 2222 finish = -1;
Chris@1026 2223 step = -1;
Chris@1026 2224 }
Chris@1026 2225
Chris@1027 2226 int columnCount = 0;
Chris@1027 2227
Chris@1026 2228 for (int x = start; x != finish; x += step) {
Chris@488 2229
Chris@1027 2230 ++columnCount;
Chris@1027 2231
Chris@488 2232 if (binforx[x] < 0) continue;
Chris@488 2233
Chris@488 2234 int sx0 = binforx[x];
Chris@488 2235 int sx1 = sx0;
Chris@488 2236 if (x+1 < w) sx1 = binforx[x+1];
Chris@488 2237 if (sx0 < 0) sx0 = sx1 - 1;
Chris@488 2238 if (sx0 < 0) continue;
Chris@488 2239 if (sx1 <= sx0) sx1 = sx0 + 1;
Chris@488 2240
Chris@488 2241 for (int sx = sx0; sx < sx1; ++sx) {
Chris@488 2242
Chris@488 2243 if (sx < 0 || sx >= int(fft->getWidth())) continue;
Chris@488 2244
Chris@488 2245 MagnitudeRange mag;
Chris@488 2246
Chris@488 2247 if (sx != psx) {
Chris@488 2248 peakfreqs = fft->getPeakFrequencies(FFTModel::AllPeaks, sx,
Chris@488 2249 minbin, maxbin - 1);
Chris@488 2250 if (m_colourScale == PhaseColourScale) {
Chris@488 2251 fft->getPhasesAt(sx, values, minbin, maxbin - minbin + 1);
Chris@862 2252 } else if (m_normalization == NormalizeColumns) {
Chris@488 2253 fft->getNormalizedMagnitudesAt(sx, values, minbin, maxbin - minbin + 1);
Chris@862 2254 } else if (m_normalization == NormalizeHybrid) {
Chris@719 2255 fft->getNormalizedMagnitudesAt(sx, values, minbin, maxbin - minbin + 1);
Chris@905 2256 double max = fft->getMaximumMagnitudeAt(sx);
Chris@719 2257 if (max > 0.f) {
Chris@719 2258 for (int i = minbin; i <= maxbin; ++i) {
Chris@907 2259 values[i - minbin] = float(values[i - minbin] * log10(max));
Chris@719 2260 }
Chris@719 2261 }
Chris@488 2262 } else {
Chris@488 2263 fft->getMagnitudesAt(sx, values, minbin, maxbin - minbin + 1);
Chris@488 2264 }
Chris@488 2265 psx = sx;
Chris@488 2266 }
Chris@488 2267
Chris@488 2268 for (FFTModel::PeakSet::const_iterator pi = peakfreqs.begin();
Chris@488 2269 pi != peakfreqs.end(); ++pi) {
Chris@488 2270
Chris@488 2271 int bin = pi->first;
Chris@907 2272 double freq = pi->second;
Chris@488 2273
Chris@488 2274 if (bin < minbin) continue;
Chris@488 2275 if (bin > maxbin) break;
Chris@488 2276
Chris@907 2277 double value = values[bin - minbin];
Chris@488 2278
Chris@488 2279 if (m_colourScale != PhaseColourScale) {
Chris@862 2280 if (m_normalization != NormalizeColumns) {
Chris@907 2281 value /= (m_fftSize/2.0);
Chris@488 2282 }
Chris@907 2283 mag.sample(float(value));
Chris@488 2284 value *= m_gain;
Chris@488 2285 }
Chris@488 2286
Chris@905 2287 double y = v->getYForFrequency
Chris@488 2288 (freq, displayMinFreq, displayMaxFreq, logarithmic);
Chris@488 2289
Chris@558 2290 int iy = int(y + 0.5);
Chris@558 2291 if (iy < 0 || iy >= h) continue;
Chris@558 2292
Chris@558 2293 m_drawBuffer.setPixel(x, iy, getDisplayValue(v, value));
Chris@488 2294 }
Chris@488 2295
Chris@488 2296 if (mag.isSet()) {
Chris@488 2297 if (sx >= int(m_columnMags.size())) {
Chris@540 2298 #ifdef DEBUG_SPECTROGRAM
Chris@682 2299 cerr << "INTERNAL ERROR: " << sx << " >= "
Chris@488 2300 << m_columnMags.size()
Chris@488 2301 << " at SpectrogramLayer.cpp::paintDrawBuffer"
Chris@682 2302 << endl;
Chris@540 2303 #endif
Chris@490 2304 } else {
Chris@490 2305 m_columnMags[sx].sample(mag);
Chris@491 2306 if (overallMag.sample(mag)) overallMagChanged = true;
Chris@488 2307 }
Chris@488 2308 }
Chris@488 2309 }
Chris@1027 2310
Chris@1039 2311 if (haveTimeLimits) {
Chris@1027 2312 if (columnCount >= minColumns) {
Chris@1027 2313 auto t = chrono::steady_clock::now();
Chris@1027 2314 double diff = chrono::duration<double>(t - startTime).count();
Chris@1037 2315 if (diff > hardTimeLimit) {
Chris@1027 2316 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1037 2317 cerr << "SpectrogramLayer::paintDrawBufferPeakFrequencies: hard limit " << hardTimeLimit << " sec exceeded after "
Chris@1031 2318 << columnCount << " columns with time " << diff << endl;
Chris@1027 2319 #endif
Chris@1027 2320 return columnCount;
Chris@1037 2321 } else if (diff > softTimeLimit && !overridingSoftLimit) {
Chris@1037 2322 // If we're more than half way through by the time
Chris@1037 2323 // we reach the soft limit, ignore it (though
Chris@1037 2324 // still respect the hard limit, above). Otherwise
Chris@1037 2325 // respect the soft limit and return now.
Chris@1037 2326 if (columnCount > w/2) {
Chris@1037 2327 overridingSoftLimit = true;
Chris@1037 2328 } else {
Chris@1037 2329 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1037 2330 cerr << "SpectrogramLayer::paintDrawBufferPeakFrequencies: soft limit " << softTimeLimit << " sec exceeded after "
Chris@1037 2331 << columnCount << " columns with time " << diff << endl;
Chris@1037 2332 #endif
Chris@1037 2333 return columnCount;
Chris@1037 2334 }
Chris@1037 2335 }
Chris@1027 2336 }
Chris@1027 2337 }
Chris@488 2338 }
Chris@1024 2339
Chris@1027 2340 return columnCount;
Chris@488 2341 }
Chris@488 2342
Chris@1024 2343 int
Chris@918 2344 SpectrogramLayer::paintDrawBuffer(LayerGeometryProvider *v,
Chris@481 2345 int w,
Chris@481 2346 int h,
Chris@907 2347 const vector<int> &binforx,
Chris@907 2348 const vector<double> &binfory,
Chris@491 2349 bool usePeaksCache,
Chris@491 2350 MagnitudeRange &overallMag,
Chris@1026 2351 bool &overallMagChanged,
Chris@1039 2352 bool rightToLeft,
Chris@1039 2353 double softTimeLimit) const
Chris@480 2354 {
Chris@481 2355 Profiler profiler("SpectrogramLayer::paintDrawBuffer");
Chris@480 2356
Chris@490 2357 int minbin = int(binfory[0] + 0.0001);
Chris@907 2358 int maxbin = int(binfory[h-1]);
Chris@480 2359
Chris@485 2360 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 2361 cerr << "SpectrogramLayer::paintDrawBuffer: minbin " << minbin << ", maxbin " << maxbin << "; w " << w << ", h " << h << endl;
Chris@485 2362 #endif
Chris@480 2363 if (minbin < 0) minbin = 0;
Chris@480 2364 if (maxbin < 0) maxbin = minbin+1;
Chris@480 2365
Chris@484 2366 DenseThreeDimensionalModel *sourceModel = 0;
Chris@484 2367 FFTModel *fft = 0;
Chris@484 2368 int divisor = 1;
Chris@485 2369 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 2370 cerr << "SpectrogramLayer::paintDrawBuffer: Note: bin display = " << m_binDisplay << ", w = " << w << ", binforx[" << w-1 << "] = " << binforx[w-1] << ", binforx[0] = " << binforx[0] << endl;
Chris@485 2371 #endif
Chris@484 2372 if (usePeaksCache) { //!!!
Chris@484 2373 sourceModel = getPeakCache(v);
Chris@484 2374 divisor = 8;//!!!
Chris@484 2375 minbin = 0;
Chris@484 2376 maxbin = sourceModel->getHeight();
Chris@484 2377 } else {
Chris@484 2378 sourceModel = fft = getFFTModel(v);
Chris@484 2379 }
Chris@484 2380
Chris@1024 2381 if (!sourceModel) return 0;
Chris@484 2382
Chris@490 2383 bool interpolate = false;
Chris@490 2384 Preferences::SpectrogramSmoothing smoothing =
Chris@490 2385 Preferences::getInstance()->getSpectrogramSmoothing();
Chris@490 2386 if (smoothing == Preferences::SpectrogramInterpolated ||
Chris@490 2387 smoothing == Preferences::SpectrogramZeroPaddedAndInterpolated) {
Chris@490 2388 if (m_binDisplay != PeakBins &&
Chris@490 2389 m_binDisplay != PeakFrequencies) {
Chris@490 2390 interpolate = true;
Chris@490 2391 }
Chris@490 2392 }
Chris@490 2393
Chris@480 2394 int psx = -1;
Chris@545 2395
Chris@545 2396 #ifdef __GNUC__
Chris@490 2397 float autoarray[maxbin - minbin + 1];
Chris@545 2398 float peaks[h];
Chris@545 2399 #else
Chris@545 2400 float *autoarray = (float *)alloca((maxbin - minbin + 1) * sizeof(float));
Chris@545 2401 float *peaks = (float *)alloca(h * sizeof(float));
Chris@545 2402 #endif
Chris@545 2403
Chris@490 2404 const float *values = autoarray;
Chris@484 2405 DenseThreeDimensionalModel::Column c;
Chris@480 2406
Chris@1027 2407 int minColumns = 4;
Chris@1039 2408 bool haveTimeLimits = (softTimeLimit > 0.0);
Chris@1037 2409 double hardTimeLimit = softTimeLimit * 2.0;
Chris@1037 2410 bool overridingSoftLimit = false;
Chris@1027 2411 auto startTime = chrono::steady_clock::now();
Chris@1027 2412
Chris@1026 2413 int start = 0;
Chris@1026 2414 int finish = w;
Chris@1026 2415 int step = 1;
Chris@1026 2416
Chris@1026 2417 if (rightToLeft) {
Chris@1026 2418 start = w-1;
Chris@1026 2419 finish = -1;
Chris@1026 2420 step = -1;
Chris@1026 2421 }
Chris@1027 2422
Chris@1027 2423 int columnCount = 0;
Chris@1026 2424
Chris@1026 2425 for (int x = start; x != finish; x += step) {
Chris@1027 2426
Chris@1027 2427 ++columnCount;
Chris@480 2428
Chris@482 2429 if (binforx[x] < 0) continue;
Chris@482 2430
Chris@488 2431 // float columnGain = m_gain;
Chris@487 2432 float columnMax = 0.f;
Chris@487 2433
Chris@484 2434 int sx0 = binforx[x] / divisor;
Chris@483 2435 int sx1 = sx0;
Chris@484 2436 if (x+1 < w) sx1 = binforx[x+1] / divisor;
Chris@483 2437 if (sx0 < 0) sx0 = sx1 - 1;
Chris@483 2438 if (sx0 < 0) continue;
Chris@483 2439 if (sx1 <= sx0) sx1 = sx0 + 1;
Chris@483 2440
Chris@483 2441 for (int y = 0; y < h; ++y) peaks[y] = 0.f;
Chris@480 2442
Chris@483 2443 for (int sx = sx0; sx < sx1; ++sx) {
Chris@483 2444
Chris@518 2445 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@682 2446 // cerr << "sx = " << sx << endl;
Chris@518 2447 #endif
Chris@518 2448
Chris@484 2449 if (sx < 0 || sx >= int(sourceModel->getWidth())) continue;
Chris@483 2450
Chris@488 2451 MagnitudeRange mag;
Chris@488 2452
Chris@483 2453 if (sx != psx) {
Chris@484 2454 if (fft) {
Chris@485 2455 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 2456 // cerr << "Retrieving column " << sx << " from fft directly" << endl;
Chris@485 2457 #endif
Chris@487 2458 if (m_colourScale == PhaseColourScale) {
Chris@490 2459 fft->getPhasesAt(sx, autoarray, minbin, maxbin - minbin + 1);
Chris@862 2460 } else if (m_normalization == NormalizeColumns) {
Chris@490 2461 fft->getNormalizedMagnitudesAt(sx, autoarray, minbin, maxbin - minbin + 1);
Chris@862 2462 } else if (m_normalization == NormalizeHybrid) {
Chris@719 2463 fft->getNormalizedMagnitudesAt(sx, autoarray, minbin, maxbin - minbin + 1);
Chris@988 2464 float max = fft->getMaximumMagnitudeAt(sx);
Chris@988 2465 float scale = log10f(max + 1.f);
Chris@998 2466 // cout << "sx = " << sx << ", max = " << max << ", log10(max) = " << log10(max) << ", scale = " << scale << endl;
Chris@719 2467 for (int i = minbin; i <= maxbin; ++i) {
Chris@862 2468 autoarray[i - minbin] *= scale;
Chris@719 2469 }
Chris@487 2470 } else {
Chris@490 2471 fft->getMagnitudesAt(sx, autoarray, minbin, maxbin - minbin + 1);
Chris@487 2472 }
Chris@484 2473 } else {
Chris@485 2474 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1026 2475 // cerr << "Retrieving column " << sx << " from peaks cache" << endl;
Chris@485 2476 #endif
Chris@484 2477 c = sourceModel->getColumn(sx);
Chris@862 2478 if (m_normalization == NormalizeColumns ||
Chris@862 2479 m_normalization == NormalizeHybrid) {
Chris@487 2480 for (int y = 0; y < h; ++y) {
Chris@487 2481 if (c[y] > columnMax) columnMax = c[y];
Chris@487 2482 }
Chris@487 2483 }
Chris@1019 2484 values = c.data() + minbin;
Chris@484 2485 }
Chris@483 2486 psx = sx;
Chris@483 2487 }
Chris@483 2488
Chris@483 2489 for (int y = 0; y < h; ++y) {
Chris@480 2490
Chris@905 2491 double sy0 = binfory[y];
Chris@905 2492 double sy1 = sy0 + 1;
Chris@481 2493 if (y+1 < h) sy1 = binfory[y+1];
Chris@490 2494
Chris@907 2495 double value = 0.0;
Chris@907 2496
Chris@907 2497 if (interpolate && fabs(sy1 - sy0) < 1.0) {
Chris@490 2498
Chris@905 2499 double centre = (sy0 + sy1) / 2;
Chris@907 2500 double dist = (centre - 0.5) - rint(centre - 0.5);
Chris@490 2501 int bin = int(centre);
Chris@490 2502 int other = (dist < 0 ? (bin-1) : (bin+1));
Chris@490 2503 if (bin < minbin) bin = minbin;
Chris@490 2504 if (bin > maxbin) bin = maxbin;
Chris@490 2505 if (other < minbin || other > maxbin) other = bin;
Chris@907 2506 double prop = 1.0 - fabs(dist);
Chris@905 2507
Chris@905 2508 double v0 = values[bin - minbin];
Chris@905 2509 double v1 = values[other - minbin];
Chris@490 2510 if (m_binDisplay == PeakBins) {
Chris@490 2511 if (bin == minbin || bin == maxbin ||
Chris@490 2512 v0 < values[bin-minbin-1] ||
Chris@907 2513 v0 < values[bin-minbin+1]) v0 = 0.0;
Chris@490 2514 if (other == minbin || other == maxbin ||
Chris@490 2515 v1 < values[other-minbin-1] ||
Chris@907 2516 v1 < values[other-minbin+1]) v1 = 0.0;
Chris@489 2517 }
Chris@907 2518 if (v0 == 0.0 && v1 == 0.0) continue;
Chris@907 2519 value = prop * v0 + (1.0 - prop) * v1;
Chris@484 2520
Chris@488 2521 if (m_colourScale != PhaseColourScale) {
Chris@862 2522 if (m_normalization != NormalizeColumns &&
Chris@862 2523 m_normalization != NormalizeHybrid) {
Chris@907 2524 value /= (m_fftSize/2.0);
Chris@488 2525 }
Chris@907 2526 mag.sample(float(value));
Chris@488 2527 value *= m_gain;
Chris@488 2528 }
Chris@488 2529
Chris@907 2530 peaks[y] = float(value);
Chris@490 2531
Chris@490 2532 } else {
Chris@490 2533
Chris@490 2534 int by0 = int(sy0 + 0.0001);
Chris@490 2535 int by1 = int(sy1 + 0.0001);
Chris@490 2536 if (by1 < by0 + 1) by1 = by0 + 1;
Chris@490 2537
Chris@490 2538 for (int bin = by0; bin < by1; ++bin) {
Chris@490 2539
Chris@490 2540 value = values[bin - minbin];
Chris@490 2541 if (m_binDisplay == PeakBins) {
Chris@490 2542 if (bin == minbin || bin == maxbin ||
Chris@490 2543 value < values[bin-minbin-1] ||
Chris@490 2544 value < values[bin-minbin+1]) continue;
Chris@480 2545 }
Chris@490 2546
Chris@490 2547 if (m_colourScale != PhaseColourScale) {
Chris@862 2548 if (m_normalization != NormalizeColumns &&
Chris@862 2549 m_normalization != NormalizeHybrid) {
Chris@907 2550 value /= (m_fftSize/2.0);
Chris@490 2551 }
Chris@907 2552 mag.sample(float(value));
Chris@490 2553 value *= m_gain;
Chris@490 2554 }
Chris@490 2555
Chris@907 2556 if (value > peaks[y]) {
Chris@907 2557 peaks[y] = float(value); //!!! not right for phase!
Chris@907 2558 }
Chris@480 2559 }
Chris@480 2560 }
Chris@483 2561 }
Chris@488 2562
Chris@488 2563 if (mag.isSet()) {
Chris@488 2564 if (sx >= int(m_columnMags.size())) {
Chris@540 2565 #ifdef DEBUG_SPECTROGRAM
Chris@682 2566 cerr << "INTERNAL ERROR: " << sx << " >= "
Chris@488 2567 << m_columnMags.size()
Chris@488 2568 << " at SpectrogramLayer.cpp::paintDrawBuffer"
Chris@682 2569 << endl;
Chris@540 2570 #endif
Chris@490 2571 } else {
Chris@490 2572 m_columnMags[sx].sample(mag);
Chris@491 2573 if (overallMag.sample(mag)) overallMagChanged = true;
Chris@488 2574 }
Chris@488 2575 }
Chris@483 2576 }
Chris@483 2577
Chris@483 2578 for (int y = 0; y < h; ++y) {
Chris@483 2579
Chris@905 2580 double peak = peaks[y];
Chris@483 2581
Chris@488 2582 if (m_colourScale != PhaseColourScale &&
Chris@862 2583 (m_normalization == NormalizeColumns ||
Chris@862 2584 m_normalization == NormalizeHybrid) &&
Chris@488 2585 columnMax > 0.f) {
Chris@488 2586 peak /= columnMax;
Chris@862 2587 if (m_normalization == NormalizeHybrid) {
Chris@862 2588 peak *= log10(columnMax + 1.f);
Chris@719 2589 }
Chris@480 2590 }
Chris@483 2591
Chris@483 2592 unsigned char peakpix = getDisplayValue(v, peak);
Chris@480 2593
Chris@480 2594 m_drawBuffer.setPixel(x, h-y-1, peakpix);
Chris@480 2595 }
Chris@1025 2596
Chris@1039 2597 if (haveTimeLimits) {
Chris@1027 2598 if (columnCount >= minColumns) {
Chris@1025 2599 auto t = chrono::steady_clock::now();
Chris@1025 2600 double diff = chrono::duration<double>(t - startTime).count();
Chris@1037 2601 if (diff > hardTimeLimit) {
Chris@1025 2602 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1037 2603 cerr << "SpectrogramLayer::paintDrawBuffer: hard limit " << hardTimeLimit << " sec exceeded after "
Chris@1031 2604 << columnCount << " columns with time " << diff << endl;
Chris@1025 2605 #endif
Chris@1027 2606 return columnCount;
Chris@1037 2607 } else if (diff > softTimeLimit && !overridingSoftLimit) {
Chris@1037 2608 // If we're more than half way through by the time
Chris@1037 2609 // we reach the soft limit, ignore it (though
Chris@1037 2610 // still respect the hard limit, above). Otherwise
Chris@1037 2611 // respect the soft limit and return now.
Chris@1037 2612 if (columnCount > w/2) {
Chris@1037 2613 overridingSoftLimit = true;
Chris@1037 2614 } else {
Chris@1037 2615 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@1037 2616 cerr << "SpectrogramLayer::paintDrawBuffer: soft limit " << softTimeLimit << " sec exceeded after "
Chris@1037 2617 << columnCount << " columns with time " << diff << endl;
Chris@1037 2618 #endif
Chris@1037 2619 return columnCount;
Chris@1037 2620 }
Chris@1037 2621 }
Chris@1025 2622 }
Chris@1025 2623 }
Chris@480 2624 }
Chris@1024 2625
Chris@1027 2626 return columnCount;
Chris@480 2627 }
Chris@477 2628
Chris@121 2629 void
Chris@918 2630 SpectrogramLayer::illuminateLocalFeatures(LayerGeometryProvider *v, QPainter &paint) const
Chris@121 2631 {
Chris@382 2632 Profiler profiler("SpectrogramLayer::illuminateLocalFeatures");
Chris@382 2633
Chris@121 2634 QPoint localPos;
Chris@121 2635 if (!v->shouldIlluminateLocalFeatures(this, localPos) || !m_model) {
Chris@121 2636 return;
Chris@121 2637 }
Chris@121 2638
Chris@682 2639 // cerr << "SpectrogramLayer: illuminateLocalFeatures("
Chris@682 2640 // << localPos.x() << "," << localPos.y() << ")" << endl;
Chris@121 2641
Chris@905 2642 double s0, s1;
Chris@905 2643 double f0, f1;
Chris@121 2644
Chris@121 2645 if (getXBinRange(v, localPos.x(), s0, s1) &&
Chris@121 2646 getYBinSourceRange(v, localPos.y(), f0, f1)) {
Chris@121 2647
Chris@121 2648 int s0i = int(s0 + 0.001);
Chris@121 2649 int s1i = int(s1);
Chris@121 2650
Chris@121 2651 int x0 = v->getXForFrame(s0i * getWindowIncrement());
Chris@121 2652 int x1 = v->getXForFrame((s1i + 1) * getWindowIncrement());
Chris@121 2653
Chris@248 2654 int y1 = int(getYForFrequency(v, f1));
Chris@248 2655 int y0 = int(getYForFrequency(v, f0));
Chris@121 2656
Chris@682 2657 // cerr << "SpectrogramLayer: illuminate "
Chris@682 2658 // << x0 << "," << y1 << " -> " << x1 << "," << y0 << endl;
Chris@121 2659
Chris@287 2660 paint.setPen(v->getForeground());
Chris@133 2661
Chris@133 2662 //!!! should we be using paintCrosshairs for this?
Chris@133 2663
Chris@121 2664 paint.drawRect(x0, y1, x1 - x0 + 1, y0 - y1 + 1);
Chris@121 2665 }
Chris@121 2666 }
Chris@121 2667
Chris@905 2668 double
Chris@918 2669 SpectrogramLayer::getYForFrequency(const LayerGeometryProvider *v, double frequency) const
Chris@42 2670 {
Chris@44 2671 return v->getYForFrequency(frequency,
Chris@44 2672 getEffectiveMinFrequency(),
Chris@44 2673 getEffectiveMaxFrequency(),
Chris@44 2674 m_frequencyScale == LogFrequencyScale);
Chris@42 2675 }
Chris@42 2676
Chris@905 2677 double
Chris@918 2678 SpectrogramLayer::getFrequencyForY(const LayerGeometryProvider *v, int y) const
Chris@42 2679 {
Chris@44 2680 return v->getFrequencyForY(y,
Chris@44 2681 getEffectiveMinFrequency(),
Chris@44 2682 getEffectiveMaxFrequency(),
Chris@44 2683 m_frequencyScale == LogFrequencyScale);
Chris@42 2684 }
Chris@42 2685
Chris@0 2686 int
Chris@918 2687 SpectrogramLayer::getCompletion(LayerGeometryProvider *v) const
Chris@0 2688 {
Chris@920 2689 const View *view = v->getView();
Chris@920 2690
Chris@1030 2691 if (m_fftModels.find(view->getId()) == m_fftModels.end()) return 100;
Chris@1030 2692
Chris@1030 2693 int completion = m_fftModels[view->getId()]->getCompletion();
Chris@224 2694 #ifdef DEBUG_SPECTROGRAM_REPAINT
Chris@985 2695 cerr << "SpectrogramLayer::getCompletion: completion = " << completion << endl;
Chris@224 2696 #endif
Chris@0 2697 return completion;
Chris@0 2698 }
Chris@0 2699
Chris@583 2700 QString
Chris@918 2701 SpectrogramLayer::getError(LayerGeometryProvider *v) const
Chris@583 2702 {
Chris@920 2703 const View *view = v->getView();
Chris@1030 2704 if (m_fftModels.find(view->getId()) == m_fftModels.end()) return "";
Chris@1030 2705 return m_fftModels[view->getId()]->getError();
Chris@583 2706 }
Chris@583 2707
Chris@28 2708 bool
Chris@905 2709 SpectrogramLayer::getValueExtents(double &min, double &max,
Chris@101 2710 bool &logarithmic, QString &unit) const
Chris@79 2711 {
Chris@133 2712 if (!m_model) return false;
Chris@133 2713
Chris@907 2714 sv_samplerate_t sr = m_model->getSampleRate();
Chris@905 2715 min = double(sr) / m_fftSize;
Chris@905 2716 max = double(sr) / 2;
Chris@133 2717
Chris@101 2718 logarithmic = (m_frequencyScale == LogFrequencyScale);
Chris@79 2719 unit = "Hz";
Chris@79 2720 return true;
Chris@79 2721 }
Chris@79 2722
Chris@79 2723 bool
Chris@905 2724 SpectrogramLayer::getDisplayExtents(double &min, double &max) const
Chris@101 2725 {
Chris@101 2726 min = getEffectiveMinFrequency();
Chris@101 2727 max = getEffectiveMaxFrequency();
Chris@253 2728
Chris@587 2729 // SVDEBUG << "SpectrogramLayer::getDisplayExtents: " << min << "->" << max << endl;
Chris@101 2730 return true;
Chris@101 2731 }
Chris@101 2732
Chris@101 2733 bool
Chris@905 2734 SpectrogramLayer::setDisplayExtents(double min, double max)
Chris@120 2735 {
Chris@120 2736 if (!m_model) return false;
Chris@187 2737
Chris@587 2738 // SVDEBUG << "SpectrogramLayer::setDisplayExtents: " << min << "->" << max << endl;
Chris@187 2739
Chris@120 2740 if (min < 0) min = 0;
Chris@907 2741 if (max > m_model->getSampleRate()/2.0) max = m_model->getSampleRate()/2.0;
Chris@120 2742
Chris@907 2743 int minf = int(lrint(min));
Chris@907 2744 int maxf = int(lrint(max));
Chris@120 2745
Chris@120 2746 if (m_minFrequency == minf && m_maxFrequency == maxf) return true;
Chris@120 2747
Chris@478 2748 invalidateImageCaches();
Chris@120 2749 invalidateMagnitudes();
Chris@120 2750
Chris@120 2751 m_minFrequency = minf;
Chris@120 2752 m_maxFrequency = maxf;
Chris@120 2753
Chris@120 2754 emit layerParametersChanged();
Chris@120 2755
Chris@133 2756 int vs = getCurrentVerticalZoomStep();
Chris@133 2757 if (vs != m_lastEmittedZoomStep) {
Chris@133 2758 emit verticalZoomChanged();
Chris@133 2759 m_lastEmittedZoomStep = vs;
Chris@133 2760 }
Chris@133 2761
Chris@120 2762 return true;
Chris@120 2763 }
Chris@120 2764
Chris@120 2765 bool
Chris@918 2766 SpectrogramLayer::getYScaleValue(const LayerGeometryProvider *v, int y,
Chris@905 2767 double &value, QString &unit) const
Chris@261 2768 {
Chris@261 2769 value = getFrequencyForY(v, y);
Chris@261 2770 unit = "Hz";
Chris@261 2771 return true;
Chris@261 2772 }
Chris@261 2773
Chris@261 2774 bool
Chris@918 2775 SpectrogramLayer::snapToFeatureFrame(LayerGeometryProvider *,
Chris@907 2776 sv_frame_t &frame,
Chris@805 2777 int &resolution,
Chris@28 2778 SnapType snap) const
Chris@13 2779 {
Chris@13 2780 resolution = getWindowIncrement();
Chris@907 2781 sv_frame_t left = (frame / resolution) * resolution;
Chris@907 2782 sv_frame_t right = left + resolution;
Chris@28 2783
Chris@28 2784 switch (snap) {
Chris@28 2785 case SnapLeft: frame = left; break;
Chris@28 2786 case SnapRight: frame = right; break;
Chris@28 2787 case SnapNearest:
Chris@28 2788 case SnapNeighbouring:
Chris@28 2789 if (frame - left > right - frame) frame = right;
Chris@28 2790 else frame = left;
Chris@28 2791 break;
Chris@28 2792 }
Chris@28 2793
Chris@28 2794 return true;
Chris@28 2795 }
Chris@13 2796
Chris@283 2797 void
Chris@918 2798 SpectrogramLayer::measureDoubleClick(LayerGeometryProvider *v, QMouseEvent *e)
Chris@283 2799 {
Chris@920 2800 const View *view = v->getView();
Chris@1030 2801 ScrollableImageCache &cache = getImageCacheReference(view);
Chris@1030 2802
Chris@1030 2803 cerr << "cache width: " << cache.getSize().width() << ", height: "
Chris@1030 2804 << cache.getSize().height() << endl;
Chris@1030 2805
Chris@1030 2806 QImage image = cache.getImage();
Chris@283 2807
Chris@283 2808 ImageRegionFinder finder;
Chris@283 2809 QRect rect = finder.findRegionExtents(&image, e->pos());
Chris@283 2810 if (rect.isValid()) {
Chris@283 2811 MeasureRect mr;
Chris@283 2812 setMeasureRectFromPixrect(v, mr, rect);
Chris@283 2813 CommandHistory::getInstance()->addCommand
Chris@283 2814 (new AddMeasurementRectCommand(this, mr));
Chris@283 2815 }
Chris@283 2816 }
Chris@283 2817
Chris@77 2818 bool
Chris@918 2819 SpectrogramLayer::getCrosshairExtents(LayerGeometryProvider *v, QPainter &paint,
Chris@77 2820 QPoint cursorPos,
Chris@1025 2821 vector<QRect> &extents) const
Chris@77 2822 {
Chris@918 2823 QRect vertical(cursorPos.x() - 12, 0, 12, v->getPaintHeight());
Chris@77 2824 extents.push_back(vertical);
Chris@77 2825
Chris@77 2826 QRect horizontal(0, cursorPos.y(), cursorPos.x(), 1);
Chris@77 2827 extents.push_back(horizontal);
Chris@77 2828
Chris@608 2829 int sw = getVerticalScaleWidth(v, m_haveDetailedScale, paint);
Chris@264 2830
Chris@280 2831 QRect freq(sw, cursorPos.y() - paint.fontMetrics().ascent() - 2,
Chris@280 2832 paint.fontMetrics().width("123456 Hz") + 2,
Chris@280 2833 paint.fontMetrics().height());
Chris@280 2834 extents.push_back(freq);
Chris@264 2835
Chris@279 2836 QRect pitch(sw, cursorPos.y() + 2,
Chris@279 2837 paint.fontMetrics().width("C#10+50c") + 2,
Chris@279 2838 paint.fontMetrics().height());
Chris@279 2839 extents.push_back(pitch);
Chris@279 2840
Chris@280 2841 QRect rt(cursorPos.x(),
Chris@918 2842 v->getPaintHeight() - paint.fontMetrics().height() - 2,
Chris@280 2843 paint.fontMetrics().width("1234.567 s"),
Chris@280 2844 paint.fontMetrics().height());
Chris@280 2845 extents.push_back(rt);
Chris@280 2846
Chris@280 2847 int w(paint.fontMetrics().width("1234567890") + 2);
Chris@280 2848 QRect frame(cursorPos.x() - w - 2,
Chris@918 2849 v->getPaintHeight() - paint.fontMetrics().height() - 2,
Chris@280 2850 w,
Chris@280 2851 paint.fontMetrics().height());
Chris@280 2852 extents.push_back(frame);
Chris@280 2853
Chris@77 2854 return true;
Chris@77 2855 }
Chris@77 2856
Chris@77 2857 void
Chris@918 2858 SpectrogramLayer::paintCrosshairs(LayerGeometryProvider *v, QPainter &paint,
Chris@77 2859 QPoint cursorPos) const
Chris@77 2860 {
Chris@77 2861 paint.save();
Chris@283 2862
Chris@608 2863 int sw = getVerticalScaleWidth(v, m_haveDetailedScale, paint);
Chris@283 2864
Chris@282 2865 QFont fn = paint.font();
Chris@282 2866 if (fn.pointSize() > 8) {
Chris@282 2867 fn.setPointSize(fn.pointSize() - 1);
Chris@282 2868 paint.setFont(fn);
Chris@282 2869 }
Chris@77 2870 paint.setPen(m_crosshairColour);
Chris@77 2871
Chris@77 2872 paint.drawLine(0, cursorPos.y(), cursorPos.x() - 1, cursorPos.y());
Chris@918 2873 paint.drawLine(cursorPos.x(), 0, cursorPos.x(), v->getPaintHeight());
Chris@77 2874
Chris@905 2875 double fundamental = getFrequencyForY(v, cursorPos.y());
Chris@77 2876
Chris@278 2877 v->drawVisibleText(paint,
Chris@278 2878 sw + 2,
Chris@278 2879 cursorPos.y() - 2,
Chris@278 2880 QString("%1 Hz").arg(fundamental),
Chris@278 2881 View::OutlinedText);
Chris@278 2882
Chris@279 2883 if (Pitch::isFrequencyInMidiRange(fundamental)) {
Chris@279 2884 QString pitchLabel = Pitch::getPitchLabelForFrequency(fundamental);
Chris@279 2885 v->drawVisibleText(paint,
Chris@279 2886 sw + 2,
Chris@279 2887 cursorPos.y() + paint.fontMetrics().ascent() + 2,
Chris@279 2888 pitchLabel,
Chris@279 2889 View::OutlinedText);
Chris@279 2890 }
Chris@279 2891
Chris@907 2892 sv_frame_t frame = v->getFrameForX(cursorPos.x());
Chris@279 2893 RealTime rt = RealTime::frame2RealTime(frame, m_model->getSampleRate());
Chris@280 2894 QString rtLabel = QString("%1 s").arg(rt.toText(true).c_str());
Chris@280 2895 QString frameLabel = QString("%1").arg(frame);
Chris@280 2896 v->drawVisibleText(paint,
Chris@280 2897 cursorPos.x() - paint.fontMetrics().width(frameLabel) - 2,
Chris@918 2898 v->getPaintHeight() - 2,
Chris@280 2899 frameLabel,
Chris@280 2900 View::OutlinedText);
Chris@280 2901 v->drawVisibleText(paint,
Chris@280 2902 cursorPos.x() + 2,
Chris@918 2903 v->getPaintHeight() - 2,
Chris@280 2904 rtLabel,
Chris@280 2905 View::OutlinedText);
Chris@264 2906
Chris@77 2907 int harmonic = 2;
Chris@77 2908
Chris@77 2909 while (harmonic < 100) {
Chris@77 2910
Chris@907 2911 int hy = int(lrint(getYForFrequency(v, fundamental * harmonic)));
Chris@918 2912 if (hy < 0 || hy > v->getPaintHeight()) break;
Chris@77 2913
Chris@77 2914 int len = 7;
Chris@77 2915
Chris@77 2916 if (harmonic % 2 == 0) {
Chris@77 2917 if (harmonic % 4 == 0) {
Chris@77 2918 len = 12;
Chris@77 2919 } else {
Chris@77 2920 len = 10;
Chris@77 2921 }
Chris@77 2922 }
Chris@77 2923
Chris@77 2924 paint.drawLine(cursorPos.x() - len,
Chris@907 2925 hy,
Chris@77 2926 cursorPos.x(),
Chris@907 2927 hy);
Chris@77 2928
Chris@77 2929 ++harmonic;
Chris@77 2930 }
Chris@77 2931
Chris@77 2932 paint.restore();
Chris@77 2933 }
Chris@77 2934
Chris@25 2935 QString
Chris@918 2936 SpectrogramLayer::getFeatureDescription(LayerGeometryProvider *v, QPoint &pos) const
Chris@25 2937 {
Chris@25 2938 int x = pos.x();
Chris@25 2939 int y = pos.y();
Chris@0 2940
Chris@25 2941 if (!m_model || !m_model->isOK()) return "";
Chris@0 2942
Chris@905 2943 double magMin = 0, magMax = 0;
Chris@905 2944 double phaseMin = 0, phaseMax = 0;
Chris@905 2945 double freqMin = 0, freqMax = 0;
Chris@905 2946 double adjFreqMin = 0, adjFreqMax = 0;
Chris@25 2947 QString pitchMin, pitchMax;
Chris@0 2948 RealTime rtMin, rtMax;
Chris@0 2949
Chris@38 2950 bool haveValues = false;
Chris@0 2951
Chris@44 2952 if (!getXBinSourceRange(v, x, rtMin, rtMax)) {
Chris@38 2953 return "";
Chris@38 2954 }
Chris@44 2955 if (getXYBinSourceRange(v, x, y, magMin, magMax, phaseMin, phaseMax)) {
Chris@38 2956 haveValues = true;
Chris@38 2957 }
Chris@0 2958
Chris@35 2959 QString adjFreqText = "", adjPitchText = "";
Chris@35 2960
Chris@38 2961 if (m_binDisplay == PeakFrequencies) {
Chris@35 2962
Chris@44 2963 if (!getAdjustedYBinSourceRange(v, x, y, freqMin, freqMax,
Chris@38 2964 adjFreqMin, adjFreqMax)) {
Chris@38 2965 return "";
Chris@38 2966 }
Chris@35 2967
Chris@35 2968 if (adjFreqMin != adjFreqMax) {
Chris@65 2969 adjFreqText = tr("Peak Frequency:\t%1 - %2 Hz\n")
Chris@35 2970 .arg(adjFreqMin).arg(adjFreqMax);
Chris@35 2971 } else {
Chris@65 2972 adjFreqText = tr("Peak Frequency:\t%1 Hz\n")
Chris@35 2973 .arg(adjFreqMin);
Chris@38 2974 }
Chris@38 2975
Chris@38 2976 QString pmin = Pitch::getPitchLabelForFrequency(adjFreqMin);
Chris@38 2977 QString pmax = Pitch::getPitchLabelForFrequency(adjFreqMax);
Chris@38 2978
Chris@38 2979 if (pmin != pmax) {
Chris@65 2980 adjPitchText = tr("Peak Pitch:\t%3 - %4\n").arg(pmin).arg(pmax);
Chris@38 2981 } else {
Chris@65 2982 adjPitchText = tr("Peak Pitch:\t%2\n").arg(pmin);
Chris@35 2983 }
Chris@35 2984
Chris@35 2985 } else {
Chris@35 2986
Chris@44 2987 if (!getYBinSourceRange(v, y, freqMin, freqMax)) return "";
Chris@35 2988 }
Chris@35 2989
Chris@25 2990 QString text;
Chris@25 2991
Chris@25 2992 if (rtMin != rtMax) {
Chris@25 2993 text += tr("Time:\t%1 - %2\n")
Chris@25 2994 .arg(rtMin.toText(true).c_str())
Chris@25 2995 .arg(rtMax.toText(true).c_str());
Chris@25 2996 } else {
Chris@25 2997 text += tr("Time:\t%1\n")
Chris@25 2998 .arg(rtMin.toText(true).c_str());
Chris@0 2999 }
Chris@0 3000
Chris@25 3001 if (freqMin != freqMax) {
Chris@65 3002 text += tr("%1Bin Frequency:\t%2 - %3 Hz\n%4Bin Pitch:\t%5 - %6\n")
Chris@65 3003 .arg(adjFreqText)
Chris@25 3004 .arg(freqMin)
Chris@25 3005 .arg(freqMax)
Chris@65 3006 .arg(adjPitchText)
Chris@65 3007 .arg(Pitch::getPitchLabelForFrequency(freqMin))
Chris@65 3008 .arg(Pitch::getPitchLabelForFrequency(freqMax));
Chris@65 3009 } else {
Chris@65 3010 text += tr("%1Bin Frequency:\t%2 Hz\n%3Bin Pitch:\t%4\n")
Chris@35 3011 .arg(adjFreqText)
Chris@25 3012 .arg(freqMin)
Chris@65 3013 .arg(adjPitchText)
Chris@65 3014 .arg(Pitch::getPitchLabelForFrequency(freqMin));
Chris@25 3015 }
Chris@25 3016
Chris@38 3017 if (haveValues) {
Chris@905 3018 double dbMin = AudioLevel::multiplier_to_dB(magMin);
Chris@905 3019 double dbMax = AudioLevel::multiplier_to_dB(magMax);
Chris@43 3020 QString dbMinString;
Chris@43 3021 QString dbMaxString;
Chris@43 3022 if (dbMin == AudioLevel::DB_FLOOR) {
Chris@43 3023 dbMinString = tr("-Inf");
Chris@43 3024 } else {
Chris@907 3025 dbMinString = QString("%1").arg(lrint(dbMin));
Chris@43 3026 }
Chris@43 3027 if (dbMax == AudioLevel::DB_FLOOR) {
Chris@43 3028 dbMaxString = tr("-Inf");
Chris@43 3029 } else {
Chris@907 3030 dbMaxString = QString("%1").arg(lrint(dbMax));
Chris@43 3031 }
Chris@907 3032 if (lrint(dbMin) != lrint(dbMax)) {
Chris@199 3033 text += tr("dB:\t%1 - %2").arg(dbMinString).arg(dbMaxString);
Chris@25 3034 } else {
Chris@199 3035 text += tr("dB:\t%1").arg(dbMinString);
Chris@25 3036 }
Chris@38 3037 if (phaseMin != phaseMax) {
Chris@38 3038 text += tr("\nPhase:\t%1 - %2").arg(phaseMin).arg(phaseMax);
Chris@38 3039 } else {
Chris@38 3040 text += tr("\nPhase:\t%1").arg(phaseMin);
Chris@38 3041 }
Chris@25 3042 }
Chris@25 3043
Chris@25 3044 return text;
Chris@0 3045 }
Chris@25 3046
Chris@0 3047 int
Chris@40 3048 SpectrogramLayer::getColourScaleWidth(QPainter &paint) const
Chris@40 3049 {
Chris@40 3050 int cw;
Chris@40 3051
Chris@119 3052 cw = paint.fontMetrics().width("-80dB");
Chris@119 3053
Chris@40 3054 return cw;
Chris@40 3055 }
Chris@40 3056
Chris@40 3057 int
Chris@918 3058 SpectrogramLayer::getVerticalScaleWidth(LayerGeometryProvider *, bool detailed, QPainter &paint) const
Chris@0 3059 {
Chris@0 3060 if (!m_model || !m_model->isOK()) return 0;
Chris@0 3061
Chris@607 3062 int cw = 0;
Chris@607 3063 if (detailed) cw = getColourScaleWidth(paint);
Chris@40 3064
Chris@0 3065 int tw = paint.fontMetrics().width(QString("%1")
Chris@0 3066 .arg(m_maxFrequency > 0 ?
Chris@0 3067 m_maxFrequency - 1 :
Chris@0 3068 m_model->getSampleRate() / 2));
Chris@0 3069
Chris@234 3070 int fw = paint.fontMetrics().width(tr("43Hz"));
Chris@0 3071 if (tw < fw) tw = fw;
Chris@40 3072
Chris@40 3073 int tickw = (m_frequencyScale == LogFrequencyScale ? 10 : 4);
Chris@0 3074
Chris@40 3075 return cw + tickw + tw + 13;
Chris@0 3076 }
Chris@0 3077
Chris@0 3078 void
Chris@918 3079 SpectrogramLayer::paintVerticalScale(LayerGeometryProvider *v, bool detailed, QPainter &paint, QRect rect) const
Chris@0 3080 {
Chris@0 3081 if (!m_model || !m_model->isOK()) {
Chris@0 3082 return;
Chris@0 3083 }
Chris@0 3084
Chris@382 3085 Profiler profiler("SpectrogramLayer::paintVerticalScale");
Chris@122 3086
Chris@120 3087 //!!! cache this?
Chris@120 3088
Chris@0 3089 int h = rect.height(), w = rect.width();
Chris@0 3090
Chris@40 3091 int tickw = (m_frequencyScale == LogFrequencyScale ? 10 : 4);
Chris@40 3092 int pkw = (m_frequencyScale == LogFrequencyScale ? 10 : 0);
Chris@40 3093
Chris@805 3094 int bins = m_fftSize / 2;
Chris@907 3095 sv_samplerate_t sr = m_model->getSampleRate();
Chris@0 3096
Chris@0 3097 if (m_maxFrequency > 0) {
Chris@107 3098 bins = int((double(m_maxFrequency) * m_fftSize) / sr + 0.1);
Chris@107 3099 if (bins > m_fftSize / 2) bins = m_fftSize / 2;
Chris@0 3100 }
Chris@0 3101
Chris@607 3102 int cw = 0;
Chris@607 3103
Chris@607 3104 if (detailed) cw = getColourScaleWidth(paint);
Chris@119 3105 int cbw = paint.fontMetrics().width("dB");
Chris@40 3106
Chris@0 3107 int py = -1;
Chris@0 3108 int textHeight = paint.fontMetrics().height();
Chris@0 3109 int toff = -textHeight + paint.fontMetrics().ascent() + 2;
Chris@0 3110
Chris@607 3111 if (detailed && (h > textHeight * 3 + 10)) {
Chris@119 3112
Chris@119 3113 int topLines = 2;
Chris@119 3114 if (m_colourScale == PhaseColourScale) topLines = 1;
Chris@119 3115
Chris@119 3116 int ch = h - textHeight * (topLines + 1) - 8;
Chris@119 3117 // paint.drawRect(4, textHeight + 4, cw - 1, ch + 1);
Chris@119 3118 paint.drawRect(4 + cw - cbw, textHeight * topLines + 4, cbw - 1, ch + 1);
Chris@40 3119
Chris@40 3120 QString top, bottom;
Chris@1030 3121 double min = m_viewMags[v->getId()].getMin();
Chris@1030 3122 double max = m_viewMags[v->getId()].getMax();
Chris@905 3123
Chris@905 3124 double dBmin = AudioLevel::multiplier_to_dB(min);
Chris@905 3125 double dBmax = AudioLevel::multiplier_to_dB(max);
Chris@119 3126
Chris@120 3127 if (dBmax < -60.f) dBmax = -60.f;
Chris@907 3128 else top = QString("%1").arg(lrint(dBmax));
Chris@120 3129
Chris@120 3130 if (dBmin < dBmax - 60.f) dBmin = dBmax - 60.f;
Chris@907 3131 bottom = QString("%1").arg(lrint(dBmin));
Chris@119 3132
Chris@119 3133 //!!! & phase etc
Chris@119 3134
Chris@119 3135 if (m_colourScale != PhaseColourScale) {
Chris@119 3136 paint.drawText((cw + 6 - paint.fontMetrics().width("dBFS")) / 2,
Chris@119 3137 2 + textHeight + toff, "dBFS");
Chris@119 3138 }
Chris@119 3139
Chris@119 3140 // paint.drawText((cw + 6 - paint.fontMetrics().width(top)) / 2,
Chris@119 3141 paint.drawText(3 + cw - cbw - paint.fontMetrics().width(top),
Chris@119 3142 2 + textHeight * topLines + toff + textHeight/2, top);
Chris@119 3143
Chris@119 3144 paint.drawText(3 + cw - cbw - paint.fontMetrics().width(bottom),
Chris@119 3145 h + toff - 3 - textHeight/2, bottom);
Chris@40 3146
Chris@40 3147 paint.save();
Chris@40 3148 paint.setBrush(Qt::NoBrush);
Chris@119 3149
Chris@119 3150 int lasty = 0;
Chris@119 3151 int lastdb = 0;
Chris@119 3152
Chris@40 3153 for (int i = 0; i < ch; ++i) {
Chris@119 3154
Chris@905 3155 double dBval = dBmin + (((dBmax - dBmin) * i) / (ch - 1));
Chris@119 3156 int idb = int(dBval);
Chris@119 3157
Chris@905 3158 double value = AudioLevel::dB_to_multiplier(dBval);
Chris@119 3159 int colour = getDisplayValue(v, value * m_gain);
Chris@210 3160
Chris@907 3161 paint.setPen(m_palette.getColour((unsigned char)colour));
Chris@119 3162
Chris@119 3163 int y = textHeight * topLines + 4 + ch - i;
Chris@119 3164
Chris@119 3165 paint.drawLine(5 + cw - cbw, y, cw + 2, y);
Chris@119 3166
Chris@119 3167 if (i == 0) {
Chris@119 3168 lasty = y;
Chris@119 3169 lastdb = idb;
Chris@119 3170 } else if (i < ch - paint.fontMetrics().ascent() &&
Chris@120 3171 idb != lastdb &&
Chris@119 3172 ((abs(y - lasty) > textHeight &&
Chris@119 3173 idb % 10 == 0) ||
Chris@119 3174 (abs(y - lasty) > paint.fontMetrics().ascent() &&
Chris@119 3175 idb % 5 == 0))) {
Chris@287 3176 paint.setPen(v->getBackground());
Chris@119 3177 QString text = QString("%1").arg(idb);
Chris@119 3178 paint.drawText(3 + cw - cbw - paint.fontMetrics().width(text),
Chris@119 3179 y + toff + textHeight/2, text);
Chris@287 3180 paint.setPen(v->getForeground());
Chris@119 3181 paint.drawLine(5 + cw - cbw, y, 8 + cw - cbw, y);
Chris@119 3182 lasty = y;
Chris@119 3183 lastdb = idb;
Chris@119 3184 }
Chris@40 3185 }
Chris@40 3186 paint.restore();
Chris@40 3187 }
Chris@40 3188
Chris@40 3189 paint.drawLine(cw + 7, 0, cw + 7, h);
Chris@40 3190
Chris@0 3191 int bin = -1;
Chris@0 3192
Chris@918 3193 for (int y = 0; y < v->getPaintHeight(); ++y) {
Chris@0 3194
Chris@905 3195 double q0, q1;
Chris@918 3196 if (!getYBinRange(v, v->getPaintHeight() - y, q0, q1)) continue;
Chris@0 3197
Chris@0 3198 int vy;
Chris@0 3199
Chris@0 3200 if (int(q0) > bin) {
Chris@0 3201 vy = y;
Chris@0 3202 bin = int(q0);
Chris@0 3203 } else {
Chris@0 3204 continue;
Chris@0 3205 }
Chris@0 3206
Chris@907 3207 int freq = int((sr * bin) / m_fftSize);
Chris@0 3208
Chris@0 3209 if (py >= 0 && (vy - py) < textHeight - 1) {
Chris@40 3210 if (m_frequencyScale == LinearFrequencyScale) {
Chris@40 3211 paint.drawLine(w - tickw, h - vy, w, h - vy);
Chris@40 3212 }
Chris@0 3213 continue;
Chris@0 3214 }
Chris@0 3215
Chris@0 3216 QString text = QString("%1").arg(freq);
Chris@234 3217 if (bin == 1) text = tr("%1Hz").arg(freq); // bin 0 is DC
Chris@40 3218 paint.drawLine(cw + 7, h - vy, w - pkw - 1, h - vy);
Chris@0 3219
Chris@0 3220 if (h - vy - textHeight >= -2) {
Chris@1025 3221 int tx = w - 3 - paint.fontMetrics().width(text) - max(tickw, pkw);
Chris@0 3222 paint.drawText(tx, h - vy + toff, text);
Chris@0 3223 }
Chris@0 3224
Chris@0 3225 py = vy;
Chris@0 3226 }
Chris@40 3227
Chris@40 3228 if (m_frequencyScale == LogFrequencyScale) {
Chris@40 3229
Chris@277 3230 // piano keyboard
Chris@277 3231
Chris@690 3232 PianoScale().paintPianoVertical
Chris@690 3233 (v, paint, QRect(w - pkw - 1, 0, pkw, h),
Chris@690 3234 getEffectiveMinFrequency(), getEffectiveMaxFrequency());
Chris@40 3235 }
Chris@608 3236
Chris@608 3237 m_haveDetailedScale = detailed;
Chris@0 3238 }
Chris@0 3239
Chris@187 3240 class SpectrogramRangeMapper : public RangeMapper
Chris@187 3241 {
Chris@187 3242 public:
Chris@901 3243 SpectrogramRangeMapper(sv_samplerate_t sr, int /* fftsize */) :
Chris@901 3244 m_dist(sr / 2),
Chris@901 3245 m_s2(sqrt(sqrt(2))) { }
Chris@187 3246 ~SpectrogramRangeMapper() { }
Chris@187 3247
Chris@901 3248 virtual int getPositionForValue(double value) const {
Chris@901 3249
Chris@901 3250 double dist = m_dist;
Chris@187 3251
Chris@187 3252 int n = 0;
Chris@187 3253
Chris@901 3254 while (dist > (value + 0.00001) && dist > 0.1) {
Chris@187 3255 dist /= m_s2;
Chris@187 3256 ++n;
Chris@187 3257 }
Chris@187 3258
Chris@187 3259 return n;
Chris@187 3260 }
Chris@724 3261
Chris@901 3262 virtual int getPositionForValueUnclamped(double value) const {
Chris@724 3263 // We don't really support this
Chris@724 3264 return getPositionForValue(value);
Chris@724 3265 }
Chris@187 3266
Chris@901 3267 virtual double getValueForPosition(int position) const {
Chris@187 3268
Chris@187 3269 // Vertical zoom step 0 shows the entire range from DC ->
Chris@187 3270 // Nyquist frequency. Step 1 shows 2^(1/4) of the range of
Chris@187 3271 // step 0, and so on until the visible range is smaller than
Chris@187 3272 // the frequency step between bins at the current fft size.
Chris@187 3273
Chris@901 3274 double dist = m_dist;
Chris@187 3275
Chris@187 3276 int n = 0;
Chris@187 3277 while (n < position) {
Chris@187 3278 dist /= m_s2;
Chris@187 3279 ++n;
Chris@187 3280 }
Chris@187 3281
Chris@187 3282 return dist;
Chris@187 3283 }
Chris@187 3284
Chris@901 3285 virtual double getValueForPositionUnclamped(int position) const {
Chris@724 3286 // We don't really support this
Chris@724 3287 return getValueForPosition(position);
Chris@724 3288 }
Chris@724 3289
Chris@187 3290 virtual QString getUnit() const { return "Hz"; }
Chris@187 3291
Chris@187 3292 protected:
Chris@901 3293 double m_dist;
Chris@901 3294 double m_s2;
Chris@187 3295 };
Chris@187 3296
Chris@133 3297 int
Chris@133 3298 SpectrogramLayer::getVerticalZoomSteps(int &defaultStep) const
Chris@133 3299 {
Chris@135 3300 if (!m_model) return 0;
Chris@187 3301
Chris@907 3302 sv_samplerate_t sr = m_model->getSampleRate();
Chris@187 3303
Chris@187 3304 SpectrogramRangeMapper mapper(sr, m_fftSize);
Chris@187 3305
Chris@905 3306 // int maxStep = mapper.getPositionForValue((double(sr) / m_fftSize) + 0.001);
Chris@187 3307 int maxStep = mapper.getPositionForValue(0);
Chris@905 3308 int minStep = mapper.getPositionForValue(double(sr) / 2);
Chris@250 3309
Chris@805 3310 int initialMax = m_initialMaxFrequency;
Chris@907 3311 if (initialMax == 0) initialMax = int(sr / 2);
Chris@250 3312
Chris@250 3313 defaultStep = mapper.getPositionForValue(initialMax) - minStep;
Chris@250 3314
Chris@587 3315 // SVDEBUG << "SpectrogramLayer::getVerticalZoomSteps: " << maxStep - minStep << " (" << maxStep <<"-" << minStep << "), default is " << defaultStep << " (from initial max freq " << initialMax << ")" << endl;
Chris@187 3316
Chris@187 3317 return maxStep - minStep;
Chris@133 3318 }
Chris@133 3319
Chris@133 3320 int
Chris@133 3321 SpectrogramLayer::getCurrentVerticalZoomStep() const
Chris@133 3322 {
Chris@133 3323 if (!m_model) return 0;
Chris@133 3324
Chris@905 3325 double dmin, dmax;
Chris@133 3326 getDisplayExtents(dmin, dmax);
Chris@133 3327
Chris@187 3328 SpectrogramRangeMapper mapper(m_model->getSampleRate(), m_fftSize);
Chris@187 3329 int n = mapper.getPositionForValue(dmax - dmin);
Chris@587 3330 // SVDEBUG << "SpectrogramLayer::getCurrentVerticalZoomStep: " << n << endl;
Chris@133 3331 return n;
Chris@133 3332 }
Chris@133 3333
Chris@133 3334 void
Chris@133 3335 SpectrogramLayer::setVerticalZoomStep(int step)
Chris@133 3336 {
Chris@187 3337 if (!m_model) return;
Chris@187 3338
Chris@905 3339 double dmin = m_minFrequency, dmax = m_maxFrequency;
Chris@253 3340 // getDisplayExtents(dmin, dmax);
Chris@253 3341
Chris@682 3342 // cerr << "current range " << dmin << " -> " << dmax << ", range " << dmax-dmin << ", mid " << (dmax + dmin)/2 << endl;
Chris@133 3343
Chris@907 3344 sv_samplerate_t sr = m_model->getSampleRate();
Chris@187 3345 SpectrogramRangeMapper mapper(sr, m_fftSize);
Chris@905 3346 double newdist = mapper.getValueForPosition(step);
Chris@905 3347
Chris@905 3348 double newmin, newmax;
Chris@253 3349
Chris@253 3350 if (m_frequencyScale == LogFrequencyScale) {
Chris@253 3351
Chris@253 3352 // need to pick newmin and newmax such that
Chris@253 3353 //
Chris@253 3354 // (log(newmin) + log(newmax)) / 2 == logmid
Chris@253 3355 // and
Chris@253 3356 // newmax - newmin = newdist
Chris@253 3357 //
Chris@253 3358 // so log(newmax - newdist) + log(newmax) == 2logmid
Chris@253 3359 // log(newmax(newmax - newdist)) == 2logmid
Chris@253 3360 // newmax.newmax - newmax.newdist == exp(2logmid)
Chris@253 3361 // newmax^2 + (-newdist)newmax + -exp(2logmid) == 0
Chris@253 3362 // quadratic with a = 1, b = -newdist, c = -exp(2logmid), all known
Chris@253 3363 //
Chris@253 3364 // positive root
Chris@253 3365 // newmax = (newdist + sqrt(newdist^2 + 4exp(2logmid))) / 2
Chris@253 3366 //
Chris@253 3367 // but logmid = (log(dmin) + log(dmax)) / 2
Chris@253 3368 // so exp(2logmid) = exp(log(dmin) + log(dmax))
Chris@253 3369 // = exp(log(dmin.dmax))
Chris@253 3370 // = dmin.dmax
Chris@253 3371 // so newmax = (newdist + sqrtf(newdist^2 + 4dmin.dmax)) / 2
Chris@253 3372
Chris@907 3373 newmax = (newdist + sqrt(newdist*newdist + 4*dmin*dmax)) / 2;
Chris@253 3374 newmin = newmax - newdist;
Chris@253 3375
Chris@682 3376 // cerr << "newmin = " << newmin << ", newmax = " << newmax << endl;
Chris@253 3377
Chris@253 3378 } else {
Chris@905 3379 double dmid = (dmax + dmin) / 2;
Chris@253 3380 newmin = dmid - newdist / 2;
Chris@253 3381 newmax = dmid + newdist / 2;
Chris@253 3382 }
Chris@187 3383
Chris@905 3384 double mmin, mmax;
Chris@187 3385 mmin = 0;
Chris@905 3386 mmax = double(sr) / 2;
Chris@133 3387
Chris@187 3388 if (newmin < mmin) {
Chris@187 3389 newmax += (mmin - newmin);
Chris@187 3390 newmin = mmin;
Chris@187 3391 }
Chris@187 3392 if (newmax > mmax) {
Chris@187 3393 newmax = mmax;
Chris@187 3394 }
Chris@133 3395
Chris@587 3396 // SVDEBUG << "SpectrogramLayer::setVerticalZoomStep: " << step << ": " << newmin << " -> " << newmax << " (range " << newdist << ")" << endl;
Chris@253 3397
Chris@907 3398 setMinFrequency(int(lrint(newmin)));
Chris@907 3399 setMaxFrequency(int(lrint(newmax)));
Chris@187 3400 }
Chris@187 3401
Chris@187 3402 RangeMapper *
Chris@187 3403 SpectrogramLayer::getNewVerticalZoomRangeMapper() const
Chris@187 3404 {
Chris@187 3405 if (!m_model) return 0;
Chris@187 3406 return new SpectrogramRangeMapper(m_model->getSampleRate(), m_fftSize);
Chris@133 3407 }
Chris@133 3408
Chris@273 3409 void
Chris@918 3410 SpectrogramLayer::updateMeasureRectYCoords(LayerGeometryProvider *v, const MeasureRect &r) const
Chris@273 3411 {
Chris@273 3412 int y0 = 0;
Chris@907 3413 if (r.startY > 0.0) y0 = int(getYForFrequency(v, r.startY));
Chris@273 3414
Chris@273 3415 int y1 = y0;
Chris@907 3416 if (r.endY > 0.0) y1 = int(getYForFrequency(v, r.endY));
Chris@273 3417
Chris@587 3418 // SVDEBUG << "SpectrogramLayer::updateMeasureRectYCoords: start " << r.startY << " -> " << y0 << ", end " << r.endY << " -> " << y1 << endl;
Chris@273 3419
Chris@273 3420 r.pixrect = QRect(r.pixrect.x(), y0, r.pixrect.width(), y1 - y0);
Chris@273 3421 }
Chris@273 3422
Chris@273 3423 void
Chris@918 3424 SpectrogramLayer::setMeasureRectYCoord(LayerGeometryProvider *v, MeasureRect &r, bool start, int y) const
Chris@273 3425 {
Chris@273 3426 if (start) {
Chris@273 3427 r.startY = getFrequencyForY(v, y);
Chris@273 3428 r.endY = r.startY;
Chris@273 3429 } else {
Chris@273 3430 r.endY = getFrequencyForY(v, y);
Chris@273 3431 }
Chris@587 3432 // SVDEBUG << "SpectrogramLayer::setMeasureRectYCoord: start " << r.startY << " <- " << y << ", end " << r.endY << " <- " << y << endl;
Chris@273 3433
Chris@273 3434 }
Chris@273 3435
Chris@316 3436 void
Chris@316 3437 SpectrogramLayer::toXml(QTextStream &stream,
Chris@316 3438 QString indent, QString extraAttributes) const
Chris@6 3439 {
Chris@6 3440 QString s;
Chris@6 3441
Chris@6 3442 s += QString("channel=\"%1\" "
Chris@6 3443 "windowSize=\"%2\" "
Chris@153 3444 "windowHopLevel=\"%3\" "
Chris@153 3445 "gain=\"%4\" "
Chris@153 3446 "threshold=\"%5\" ")
Chris@6 3447 .arg(m_channel)
Chris@6 3448 .arg(m_windowSize)
Chris@97 3449 .arg(m_windowHopLevel)
Chris@37 3450 .arg(m_gain)
Chris@37 3451 .arg(m_threshold);
Chris@37 3452
Chris@37 3453 s += QString("minFrequency=\"%1\" "
Chris@37 3454 "maxFrequency=\"%2\" "
Chris@37 3455 "colourScale=\"%3\" "
Chris@37 3456 "colourScheme=\"%4\" "
Chris@37 3457 "colourRotation=\"%5\" "
Chris@37 3458 "frequencyScale=\"%6\" "
Chris@761 3459 "binDisplay=\"%7\" ")
Chris@37 3460 .arg(m_minFrequency)
Chris@6 3461 .arg(m_maxFrequency)
Chris@6 3462 .arg(m_colourScale)
Chris@197 3463 .arg(m_colourMap)
Chris@37 3464 .arg(m_colourRotation)
Chris@35 3465 .arg(m_frequencyScale)
Chris@761 3466 .arg(m_binDisplay);
Chris@761 3467
Chris@761 3468 s += QString("normalizeColumns=\"%1\" "
Chris@761 3469 "normalizeVisibleArea=\"%2\" "
Chris@761 3470 "normalizeHybrid=\"%3\" ")
Chris@862 3471 .arg(m_normalization == NormalizeColumns ? "true" : "false")
Chris@862 3472 .arg(m_normalization == NormalizeVisibleArea ? "true" : "false")
Chris@862 3473 .arg(m_normalization == NormalizeHybrid ? "true" : "false");
Chris@6 3474
Chris@316 3475 Layer::toXml(stream, indent, extraAttributes + " " + s);
Chris@6 3476 }
Chris@6 3477
Chris@11 3478 void
Chris@11 3479 SpectrogramLayer::setProperties(const QXmlAttributes &attributes)
Chris@11 3480 {
Chris@11 3481 bool ok = false;
Chris@11 3482
Chris@11 3483 int channel = attributes.value("channel").toInt(&ok);
Chris@11 3484 if (ok) setChannel(channel);
Chris@11 3485
Chris@805 3486 int windowSize = attributes.value("windowSize").toUInt(&ok);
Chris@11 3487 if (ok) setWindowSize(windowSize);
Chris@11 3488
Chris@805 3489 int windowHopLevel = attributes.value("windowHopLevel").toUInt(&ok);
Chris@97 3490 if (ok) setWindowHopLevel(windowHopLevel);
Chris@97 3491 else {
Chris@805 3492 int windowOverlap = attributes.value("windowOverlap").toUInt(&ok);
Chris@97 3493 // a percentage value
Chris@97 3494 if (ok) {
Chris@97 3495 if (windowOverlap == 0) setWindowHopLevel(0);
Chris@97 3496 else if (windowOverlap == 25) setWindowHopLevel(1);
Chris@97 3497 else if (windowOverlap == 50) setWindowHopLevel(2);
Chris@97 3498 else if (windowOverlap == 75) setWindowHopLevel(3);
Chris@97 3499 else if (windowOverlap == 90) setWindowHopLevel(4);
Chris@97 3500 }
Chris@97 3501 }
Chris@11 3502
Chris@11 3503 float gain = attributes.value("gain").toFloat(&ok);
Chris@11 3504 if (ok) setGain(gain);
Chris@11 3505
Chris@37 3506 float threshold = attributes.value("threshold").toFloat(&ok);
Chris@37 3507 if (ok) setThreshold(threshold);
Chris@37 3508
Chris@805 3509 int minFrequency = attributes.value("minFrequency").toUInt(&ok);
Chris@187 3510 if (ok) {
Chris@587 3511 SVDEBUG << "SpectrogramLayer::setProperties: setting min freq to " << minFrequency << endl;
Chris@187 3512 setMinFrequency(minFrequency);
Chris@187 3513 }
Chris@37 3514
Chris@805 3515 int maxFrequency = attributes.value("maxFrequency").toUInt(&ok);
Chris@187 3516 if (ok) {
Chris@587 3517 SVDEBUG << "SpectrogramLayer::setProperties: setting max freq to " << maxFrequency << endl;
Chris@187 3518 setMaxFrequency(maxFrequency);
Chris@187 3519 }
Chris@11 3520
Chris@11 3521 ColourScale colourScale = (ColourScale)
Chris@11 3522 attributes.value("colourScale").toInt(&ok);
Chris@11 3523 if (ok) setColourScale(colourScale);
Chris@11 3524
Chris@197 3525 int colourMap = attributes.value("colourScheme").toInt(&ok);
Chris@197 3526 if (ok) setColourMap(colourMap);
Chris@11 3527
Chris@37 3528 int colourRotation = attributes.value("colourRotation").toInt(&ok);
Chris@37 3529 if (ok) setColourRotation(colourRotation);
Chris@37 3530
Chris@11 3531 FrequencyScale frequencyScale = (FrequencyScale)
Chris@11 3532 attributes.value("frequencyScale").toInt(&ok);
Chris@11 3533 if (ok) setFrequencyScale(frequencyScale);
Chris@35 3534
Chris@37 3535 BinDisplay binDisplay = (BinDisplay)
Chris@37 3536 attributes.value("binDisplay").toInt(&ok);
Chris@37 3537 if (ok) setBinDisplay(binDisplay);
Chris@36 3538
Chris@36 3539 bool normalizeColumns =
Chris@36 3540 (attributes.value("normalizeColumns").trimmed() == "true");
Chris@862 3541 if (normalizeColumns) {
Chris@862 3542 setNormalization(NormalizeColumns);
Chris@862 3543 }
Chris@153 3544
Chris@153 3545 bool normalizeVisibleArea =
Chris@153 3546 (attributes.value("normalizeVisibleArea").trimmed() == "true");
Chris@862 3547 if (normalizeVisibleArea) {
Chris@862 3548 setNormalization(NormalizeVisibleArea);
Chris@862 3549 }
Chris@761 3550
Chris@761 3551 bool normalizeHybrid =
Chris@761 3552 (attributes.value("normalizeHybrid").trimmed() == "true");
Chris@862 3553 if (normalizeHybrid) {
Chris@862 3554 setNormalization(NormalizeHybrid);
Chris@862 3555 }
Chris@11 3556 }
Chris@11 3557