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In the fft example on MATLAB help, why do we multiply by 2?

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David Cho
David Cho el 31 de Oct. de 2017
Comentada: Star Strider el 20 de Sept. de 2019
Hi, I found the following 'fft' example on MATLAB help (https://nl.mathworks.com/help/matlab/ref/fft.html)
Fs = 1000; % Sampling frequency
T = 1/Fs; % Sampling period
L = 1500; % Length of signal
t = (0:L-1)*T; % Time vector
X = 0.7*sin(2*pi*50*t) + sin(2*pi*120*t);
Y = fft(X);
P2 = abs(Y/L);
P1 = P2(1:L/2+1);
P1(2:end-1) = 2*P1(2:end-1); % don't know why we have to mutiply by 2 and why the range is from 2 to (end-1)
f = Fs*(0:(L/2))/L;
plot(f,P1)
My question lies in the line #9: P1(2:end-1) = 2*P1(2:end-1); I do not understand why we have to mutiply by 2 and why the range is from 2 to (end-1).
I shall be obliged if anyone could help on this question.
Thank you.
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kamrul islam sharek
kamrul islam sharek el 20 de Sept. de 2019
a=imread('grey.jpg');
g=fspecial('gaussian',256,10);
max(g(:))
gi=mat2gray(g);
max(g1(:));
af=fftshift(fft2(a));
agi= a.*gi;
fftshow(ag1)
ag1i=ifft2(ag1);
fftshow(ag1i)
my problem is line no 7.plewase help to getting out this problem
Star Strider
Star Strider el 20 de Sept. de 2019
Post this as a new Question, not here. Include the image.

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Star Strider
Star Strider el 31 de Oct. de 2017
The Fourier transform (link) by definition is two-sided, symmetrical about 0, with frequencies going from -Inf to +Inf. (In practice, the frequency content is limited by the signal length.) The energy at each frequency is represented equally on both the positive and negative halves of the spectrum at one-half the original signal energy (so the total energy remains the same).
Taking the one-sided Fourier transform, as done here, then requires that the amplitude of half the spectrum be multiplied by 2 in order to represent the signal amplitude accurately.
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David Cho
David Cho el 31 de Oct. de 2017
Thank you very much for your kind answer! It helped me a lot to understand the MATLAB 'fft' command more.
Star Strider
Star Strider el 31 de Oct. de 2017
As always, my pleasure!

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george veropoulos
george veropoulos el 9 de Jul. de 2018
Hi.. i have an other question the the quantity P2 = abs(Y/L) must multiply by Ts... i make a code to compare the FFt RESULTS with fourier transform
N=128; t=linspace(0,3,N); f=2*exp(-3*t); Ts=t(2)-t(1); Ws=2*pi/Ts; F=fft(f); Fp=F(1:N/2+1)*Ts;
W=Ws*(0:N/2)/N; Fa=2./(3+j*W);
plot(W/(2*pi),abs(Fa),'--',W/(2*pi),abs(Fp),'-'); xlabel('Frequency, Hz'), ylabel('|F(f)|');
legend('analytical','numerical')
when myltiply by Ts the resluts are same...
thank you George

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