Continuous Time Fourier Transform of a signal matrix

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Anubhav Rohatgi
Anubhav Rohatgi le 28 Juil 2012
Réponse apportée : Juhi Maraskole le 16 Sep 2020
I have a matrix of 100 rows and 2 columns. Column 1 consists of time signal at frequency 50Hz (0.02 0.04 0.06...) column 2 is signal whose fft is to be determined. I would like to have a function that determines the Fourier transform of the signal at the frequency determined by the 1st column of the matrix.

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Réponse acceptée

Wayne King
Wayne King le 28 Juil 2012
Modifié(e) : Wayne King le 28 Juil 2012
If the first column of your matrix is just the time vector with increments of 0.02 seconds, then just take the Fourier transform of the 2nd column
Let X be your matrix
xdft = fft(X(:,2));
If the signal is real-valued, you only need 1/2 the DFT to examine the amplitude spectrum.
The frequency vector can be formed as follows:
freq = 0:50/100:25;
For example:
t = 0:0.02:(100*0.02)-0.02;
x = cos(2*pi*10*t)+randn(size(t));
X(:,1) = t';
X(:,2) = x';
% Now X is your matrix
xdft = fft(X(:,2));
xdft = xdft(1:length(xdft)/2+1);
freq = 0:50/100:25;
plot(freq,abs(xdft))
xlabel('Hz'); ylabel('Magnitude')
  1 commentaire
Anubhav Rohatgi
Anubhav Rohatgi le 28 Juil 2012
Thanks for your response, but I am not getting the results still here is my code:
x = data(:,2);
len = length(x)
t = 0:0.02:(len*0.02)-0.02;
xdft = fft(x);
xdft = xdft(1:length(xdft)/2+1);
freq = 0:50/len:25;
plot(freq,abs(xdft))
xlabel('Hz'); ylabel('Magnitude')
Output is a line of 0 magnitude and on the X axis
and getting a warning:::: Warning: Integer operands are required for colon operator when used as index > In test3 at 9
Datafile can be accessed from :::
https://docs.google.com/open?id=0BzuiGHpNJIxCTXZ1ek9Ob1c5azA

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Plus de réponses (3)

Wayne King
Wayne King le 28 Juil 2012
Modifié(e) : Wayne King le 28 Juil 2012
You stated in your original post that your matrix had an even number of elements, 100x2. In fact your matrix is 9079x2. You data also has a mean which is nonzero so that will make the 0 frequency component very large, it's better to remove the mean first.
x = data(:,2);
x = detrend(x,0);
len = length(x)
t = 0:0.02:(len*0.02)-0.02;
xdft = fft(x);
xdft = xdft(1:(length(xdft)+1)/2);
freq = 0:50/len:25;
plot(freq,abs(xdft))
xlabel('Hz'); ylabel('Magnitude')
  1 commentaire
Anubhav Rohatgi
Anubhav Rohatgi le 28 Juil 2012
Modifié(e) : Anubhav Rohatgi le 28 Juil 2012
Thanks alot .. you solved my problem. Thank you very very much...

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Anubhav Rohatgi
Anubhav Rohatgi le 28 Août 2012
Hi Wayne,
I have tried to solve the problem but the plot I get is not what I want. I have breathing data that is very periodic. I have attached the data link to this
https://docs.google.com/open?id=0BzuiGHpNJIxCTXZ1ek9Ob1c5azA
I want to get frequency peaks at around 3Hz.
Please help me.
Juhi Maraskole
Juhi Maraskole le 16 Sep 2020
x(t) = e-AT

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