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I have some data in time domain, the time separation between each element is dt and my data are from 0 to N*dt sec,I want to see spectral of my data from .6e15 Hz to 1e15 Hz what must I do?

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let say you have the x in time already.

x%is given
fmin = 1e15;
fmax = 6*fmin;
numOfSamples = length(x);
f = linspace(fmin,fmax,numOfSamples);
t = 1 : numOfSamples;
y=fft(x);
plot(fftshift(y));
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X is a sin function for fixed w for example w=2*pi*2e15 we must have only on peak and a mirror peak with your code I see about 10 peaks. – peaceman Apr 2 '12 at 5:44
    
what did you try to do? put your code we will fix it. – 0x90 Apr 2 '12 at 6:31
    
I have electric field in one point and in time domain I want to see spectral behavior of my electric field I think your code will help me but I want to sure that it works properly, for testing it I put sin(2*pi*2e15.*t) instead of x I just want a plot that have a peak at sin frequency could you please change your code for doing this?(just fix the w and show only one peak)thanks a lot. – peaceman Apr 2 '12 at 6:40
    
@ehsan hope it now works for you, If you made it by yourself please upload your code. – 0x90 Apr 2 '12 at 17:35
    
I uploaded a code for test here:stackoverflow.com/q/9978436/976870 It uses discrete Fourier transform – peaceman Apr 2 '12 at 17:46
up vote 0 down vote accepted

Here is the code that I need:

NT=10000;%size of data that I have
ddx=2e-9;
dt=ddx/(3e8);%time separation between each element
i=sqrt(-1);
NFREQS=1000;%size of frequency array
lambdai=150e-9;
lambdaf=500e-9;
freqi=3e8/lambdai;%lower limit of frequency
freqf=3e8/lambdaf;%upper limit of frequency
freq=zeros(1,NFREQS);
for j=1:NFREQS
freq(j)=freqi-j*(freqi-freqf)/NFREQS;%frequency array
end
arg=2*pi*freq*dt;
lambda=linspace(lambdai,lambdaf,NFREQS);
    for n=1:NFREQS
    for j=1:NT
     Exf(n)=Exf(n)+Ex(j)*exp(-i*arg(n)*j);%Ex the data that I have and Exf is fft of it
    end
    end

plot(lambda,real(Epsilon));

This code calculates Fourier transform of Ex in range of 150e-9m t0 500e-9m

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