249 lines
7.5 KiB
C++
249 lines
7.5 KiB
C++
/***************************************************************************
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* Copyright (C) 2008-2011 by Andrzej Rybczak *
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* electricityispower@gmail.com *
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* *
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* This program is free software; you can redistribute it and/or modify *
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* it under the terms of the GNU General Public License as published by *
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* the Free Software Foundation; either version 2 of the License, or *
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* (at your option) any later version. *
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* *
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* This program is distributed in the hope that it will be useful, *
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* but WITHOUT ANY WARRANTY; without even the implied warranty of *
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the *
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* GNU General Public License for more details. *
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* *
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* You should have received a copy of the GNU General Public License *
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* along with this program; if not, write to the *
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* Free Software Foundation, Inc., *
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* 51 Franklin St, Fifth Floor, Boston, MA 02110-1301, USA. *
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***************************************************************************/
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#include "visualizer.h"
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#ifdef ENABLE_VISUALIZER
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#include "global.h"
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#include <cerrno>
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#include <cmath>
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#include <cstring>
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#include <fstream>
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#include <limits>
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#include <fcntl.h>
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#include <sys/time.h>
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using Global::MainStartY;
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using Global::MainHeight;
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Visualizer *myVisualizer = new Visualizer;
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const int Visualizer::WindowTimeout = 1000/25; /* 25 fps */
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void Visualizer::Init()
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{
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w = new Window(0, MainStartY, COLS, MainHeight, "", Config.visualizer_color, brNone);
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ResetFD();
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itsSamples = Config.visualizer_in_stereo ? 4096 : 2048;
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# ifdef HAVE_FFTW3_H
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itsFFTResults = itsSamples/2+1;
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itsFreqsMagnitude = new unsigned[itsFFTResults];
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itsInput = static_cast<double *>(fftw_malloc(sizeof(double)*itsSamples));
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itsOutput = static_cast<fftw_complex *>(fftw_malloc(sizeof(fftw_complex)*itsFFTResults));
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itsPlan = fftw_plan_dft_r2c_1d(itsSamples, itsInput, itsOutput, FFTW_ESTIMATE);
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# endif // HAVE_FFTW3_H
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FindOutputID();
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isInitialized = 1;
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}
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void Visualizer::SwitchTo()
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{
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using Global::myScreen;
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using Global::myLockedScreen;
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if (myScreen == this)
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return;
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if (!isInitialized)
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Init();
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if (myLockedScreen)
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UpdateInactiveScreen(this);
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if (hasToBeResized || myLockedScreen)
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Resize();
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if (myScreen != this && myScreen->isTabbable())
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Global::myPrevScreen = myScreen;
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myScreen = this;
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w->Clear();
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SetFD();
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itsTimer.tv_sec = 0;
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itsTimer.tv_usec = 0;
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if (itsFifo >= 0)
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Global::wFooter->SetTimeout(WindowTimeout);
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Global::RedrawHeader = 1;
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}
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void Visualizer::Resize()
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{
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size_t x_offset, width;
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GetWindowResizeParams(x_offset, width);
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w->Resize(width, MainHeight);
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w->MoveTo(x_offset, MainStartY);
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hasToBeResized = 0;
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}
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std::basic_string<my_char_t> Visualizer::Title()
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{
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return U("Music visualizer");
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}
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void Visualizer::Update()
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{
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if (itsFifo < 0)
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return;
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// PCM in format 44100:16:1 (for mono visualization) and 44100:16:2 (for stereo visualization) is supported
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int16_t buf[itsSamples];
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ssize_t data = read(itsFifo, buf, sizeof(buf));
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if (data < 0) // no data available in fifo
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return;
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if (itsOutputID != -1 && Global::Timer.tv_sec > itsTimer.tv_sec+Config.visualizer_sync_interval)
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{
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Mpd.DisableOutput(itsOutputID);
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usleep(50000);
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Mpd.EnableOutput(itsOutputID);
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gettimeofday(&itsTimer, 0);
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}
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void (Visualizer::*draw)(int16_t *, ssize_t, size_t, size_t);
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# ifdef HAVE_FFTW3_H
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if (!Config.visualizer_use_wave)
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draw = &Visualizer::DrawFrequencySpectrum;
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else
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# endif // HAVE_FFTW3_H
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draw = &Visualizer::DrawSoundWave;
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w->Clear();
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ssize_t samples_read = data/sizeof(int16_t);
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if (Config.visualizer_in_stereo)
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{
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int16_t buf_left[samples_read/2], buf_right[samples_read/2];
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for (ssize_t i = 0, j = 0; i < samples_read; i += 2, ++j)
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{
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buf_left[j] = buf[i];
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buf_right[j] = buf[i+1];
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}
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size_t half_height = MainHeight/2;
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(this->*draw)(buf_left, samples_read/2, 0, half_height);
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(this->*draw)(buf_right, samples_read/2, half_height+(draw == &Visualizer::DrawSoundWave ? 1 : 0), half_height+(draw != &Visualizer::DrawSoundWave ? 1 : 0));
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}
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else
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(this->*draw)(buf, samples_read, 0, MainHeight);
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w->Refresh();
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}
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void Visualizer::SpacePressed()
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{
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# ifdef HAVE_FFTW3_H
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Config.visualizer_use_wave = !Config.visualizer_use_wave;
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ShowMessage("Visualization type: %s", Config.visualizer_use_wave ? "Sound wave" : "Frequency spectrum");
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# endif // HAVE_FFTW3_H
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}
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void Visualizer::DrawSoundWave(int16_t *buf, ssize_t samples, size_t y_offset, size_t height)
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{
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const int samples_per_col = samples/w->GetWidth();
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const int half_height = height/2;
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*w << fmtAltCharset;
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double prev_point_pos = 0;
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const size_t win_width = w->GetWidth();
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for (size_t i = 0; i < win_width; ++i)
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{
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double point_pos = 0;
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for (int j = 0; j < samples_per_col; ++j)
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point_pos += buf[i*samples_per_col+j];
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point_pos /= samples_per_col;
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point_pos /= std::numeric_limits<int16_t>::max();
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point_pos *= half_height;
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*w << XY(i, y_offset+half_height+point_pos) << '`';
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if (i && abs(prev_point_pos-point_pos) > 2)
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{
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// if gap is too big. intermediate values are needed
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// since without them all we see are blinking points
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const int breakpoint = std::max(prev_point_pos, point_pos);
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const int half = (prev_point_pos+point_pos)/2;
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for (int k = std::min(prev_point_pos, point_pos)+1; k < breakpoint; k += 2)
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*w << XY(i-(k < half), y_offset+half_height+k) << '`';
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}
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prev_point_pos = point_pos;
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}
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*w << fmtAltCharsetEnd;
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}
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#ifdef HAVE_FFTW3_H
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void Visualizer::DrawFrequencySpectrum(int16_t *buf, ssize_t samples, size_t y_offset, size_t height)
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{
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for (unsigned i = 0, j = 0; i < itsSamples; ++i)
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{
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if (j < samples)
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itsInput[i] = buf[j++];
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else
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itsInput[i] = 0;
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}
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fftw_execute(itsPlan);
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// count magnitude of each frequency and scale it to fit the screen
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for (unsigned i = 0; i < itsFFTResults; ++i)
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itsFreqsMagnitude[i] = sqrt(itsOutput[i][0]*itsOutput[i][0] + itsOutput[i][1]*itsOutput[i][1])/1e5*height/5;
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const size_t win_width = w->GetWidth();
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const int freqs_per_col = itsFFTResults/win_width /* cut bandwidth a little to achieve better look */ * 7/10;
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for (size_t i = 0; i < win_width; ++i)
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{
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size_t bar_height = 0;
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for (int j = 0; j < freqs_per_col; ++j)
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bar_height += itsFreqsMagnitude[i*freqs_per_col+j];
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bar_height = std::min(bar_height/freqs_per_col, height);
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mvwvline(w->Raw(), y_offset > 0 ? y_offset : height-bar_height, i, 0, bar_height);
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}
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}
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#endif // HAVE_FFTW3_H
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void Visualizer::SetFD()
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{
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if (itsFifo < 0 && (itsFifo = open(Config.visualizer_fifo_path.c_str(), O_RDONLY | O_NONBLOCK)) < 0)
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ShowMessage("Couldn't open \"%s\" for reading PCM data: %s", Config.visualizer_fifo_path.c_str(), strerror(errno));
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}
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void Visualizer::ResetFD()
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{
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itsFifo = -1;
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}
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void Visualizer::FindOutputID()
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{
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itsOutputID = -1;
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if (!Config.visualizer_output_name.empty())
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{
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MPD::OutputList outputs;
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Mpd.GetOutputs(outputs);
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for (unsigned i = 0; i < outputs.size(); ++i)
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if (outputs[i].first == Config.visualizer_output_name)
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itsOutputID = i;
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if (itsOutputID == -1)
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ShowMessage("There is no output named \"%s\"!", Config.visualizer_output_name.c_str());
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}
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}
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#endif // ENABLE_VISUALIZER
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