Fast Fourier Transform of a real function
Mostrar comentarios más antiguos
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
Respuestas (1)
Walter Roberson
el 8 de Jul. de 2015
0 votos
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)
Categorías
Más información sobre Fourier Analysis and Filtering en Centro de ayuda y File Exchange.
Productos
el 7 de Jul. de 2015
el 8 de Jul. de 2015
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
