spectrogram and FT times test
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clear all
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close all
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clc
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[y, fs] = audioread("sound/modulator22.wav");
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times = [];
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item_num = 20;
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for j = 1:item_num
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localtime = [];
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for i = 0:1
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t0 = clock ();
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frequencySpectrum_noplot(y, fs, 0); %true does FFT, false DFT
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localtime(i+1) = etime (clock (), t0);
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endfor
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times = [times; localtime];
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endfor
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printf('Average DFT time: %d \n', mean(times(1:item_num, 1)))
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printf('Average FFT time: %d \n', mean(times(1:item_num, 2)))
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function [power, duration] = frequencySpectrum_noplot(signal, fs, pad)
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%%%%%%%%%%%%%%%%%%
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%function power = frequencySpectrum(signal, fs, pad)
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%
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% Task: Display the power spectrum (lin and log scale) of a given signal
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%
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% Input:
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% - signal: the input signal to process
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% - fs: the sampling rate
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% -pad: boolean if true, signal is padded with 0 to the next power of 2 -> FFT instead of DFT
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%
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% Output:
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% - power: the power spectrum
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%
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%
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% Guillaume Gibert, guillaume.gibert@ecam.fr
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% 25/04/2022
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%%%%%%%%%%%%%%%%%%
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n = length(signal); % number of samples
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if (pad)
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n = 2^nextpow2(n);
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end
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tic
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y = fft(signal, n);% compute DFT of input signal
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duration = toc;
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power = abs(y).^2/n; % power of the DFT
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[val, ind] = max(power); % find the mx value of DFT and its index
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t=0:1/fs:(n-1)/fs; % time range
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%pad signal with zeros
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if (pad)
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signal = [ signal; zeros( n-length(signal), 1)];
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end
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f = (0:n-1)*(fs/n); % frequency range
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BIN
sound/output.wav
BIN
sound/output.wav
Binary file not shown.
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@ -0,0 +1,9 @@
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clear all
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close all
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clc
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[y, fs] = audioread("sound/modulator22.wav");
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%frequencySpectrum(y, fs, 0); %true does FFT, false DFT
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step_size = 5; %ms
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window_size = 30;%ms
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spectrogram(y, fs, step_size, window_size)
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