What is the relation between DFT and PSD of a signal
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Mathematically the PSD of signal x(t) is the Fourier transform of Autocorrelation function of x(t)
2) But In MATLAB it is seen that the POWER SPECTRAL DENSITY (PSD) is directly obtained from the FFT of a signal x(t) as follows.
N = Number of data points or length of signal x(t), Nf = 2^nextpow2(N), Xk = fft (x, Nf), PSD = [ Xk * conj(Xk) ] / Nf, fs = Sampling frequency, f = fs * linspace (0, 1, Nf), Creates frequency vector, The graph of PSD Vs f is called PSD curve.
Does it mean that the DFT of x(t) directly gives PSD of x(t) ?
1 comentario
Image Analyst
el 7 de Sept. de 2012
No. Look: Xk * conj(Xk) - that's the square of the discrete Fourier Transform, not the Fourier Transform itself.
Respuesta aceptada
Honglei Chen
el 7 de Sept. de 2012
Editada: Honglei Chen
el 7 de Sept. de 2012
2 votos
It can be shown that PSD can alternatively be estimated by the square of magnitude of FFT. You should be able to find it in most spectral analysis text books, e.g., Kay's Modern Spectral Estimation, equation 4.2, pp 65
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Azzi Abdelmalek
el 7 de Sept. de 2012
Editada: Azzi Abdelmalek
el 8 de Sept. de 2012
2 votos
- The PSD shows how the power of your signal is distributed over your frequencies
- the FFT shows the amplitude and phase of each harmonic component of your signal
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