Fast Fourier Transform of a real function

7 Jul 2015
1 Answer
Updated 8 Jul 2015
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Hi! I got a question about the FFT properties; why FFT of a real function is not a real function as it is a property of Fourier transform? For example FFT of a gaussian function should be a gaussian, however, abs(fft(gaussian)) is a gaussian. thanks

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Answers (1)

Walter Roberson
Walter Roberson on 8 Jul 2015

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That is not a property of the Fourier transform. The fft of a real function is generally complex and is always hermitian. The complex part is absent only if everything is in phase (e.g., the sum of sines)

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amin rasoulof
amin rasoulof
on 7 Jul 2015

Answered:

Walter Roberson
Walter Roberson
on 8 Jul 2015

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