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I am trying to understand the FFT algorithm and so far I think that I understand the main concept behind it. However I am confused as to the difference between 'framesize' and 'window'.

Based on my understanding, it seems that they are redundant with each other? For example, I present as input a block of samples with a framesize of 1024. So I have byte[1024] presented as input.

What then is the purpose of the windowing function? Since initially, I thought the purpose of the windowing function is to select the block of samples from the original data.

Thanks!

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3 Answers 3

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What then is the purpose of the windowing function?

It's to deal with so-called "spectral leakage": the FFT assumes an infinite series that repeats the given sample frame over and over again. If you have a sine wave that is an integral number of cycles within the sample frame, then all is good, and the FFT gives you a nice narrow peak at the proper frequency. But if you have a sine wave that is not an integral number of cycles, there's a discontinuity between the last and first sample, and the FFT gives you false harmonics.

Windowing functions lower the amplitudes at the beginning and the end of the sample frame, to reduce the harmonics caused by this discontinuity.

some diagrams from a National Instruments webpage on windowing:

integral # of cycles:

enter image description here

non-integer # of cycles:

enter image description here

for additional information:

http://www.tmworld.com/article/322450-Windowing_Functions_Improve_FFT_Results_Part_I.php

http://zone.ni.com/reference/en-XX/help/371361B-01/lvanlsconcepts/char_smoothing_windows/

http://www.physik.uni-wuerzburg.de/~praktiku/Anleitung/Fremde/ANO14.pdf

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Ahh I see. So basically, the windowing functions is just to 'modify' or improve the data from the samples in order to improve the results of the FFT algorithm. Am I right? Thanks! –  user488792 Feb 16 '11 at 4:00
    
@user488792: yes, that's pretty much it - the window function smooths out what would otherwise be transients at the edges of the sampling window. –  Paul R Feb 16 '11 at 9:11
    
Yes I see. Thanks very much for the clarification and for providing a great answer! –  user488792 Feb 16 '11 at 13:54
    
@eryksun: ? Read my answer again. The FFT repeats the sample frame over and over again. You get a jump discontinuity for nonintegral number of samples, which means it's not a pure sine wave, ergo there must be harmonics. Why would there be any leakage for a sine wave w/ integral #s of cycles? –  Jason S Feb 17 '11 at 18:57

A rectangular window of length M has frequency response of sin(ω*M/2)/sin(ω/2), which is zero when ω = 2*π*k/M, for k ≠ 0. For a DFT of length N, where ω = 2*π*n/N, there are nulls at n = k * N/M. The ratio N/M isn't necessarily an integer. For example, if N = 40, and M = 32, then there are nulls at multiples of 1.25, but only the integer multiples will appear in the DFT, which is bins 5, 10, 15, and 20 in this case.

Here's a plot of the 1024-point DFT of a 32-point rectangular window:

M = 32
N = 1024
w = ones(M)
W = rfft(w, N)
K = N/M
nulls = abs(W[K::K])
plot(abs(W))
plot(r_[K:N/2+1:K], nulls, 'ro')
xticks(r_[:512:64])
grid(); axis('tight')

DFT of a 32-point rectangular window

Note the nulls at every N/M = 32 bins. If N=M (i.e. the window length equals the DFT length), then there are nulls at all bins except at n = 0.

When you multiply a window by a signal, the corresponding operation in the frequency domain is the circular convolution of the window's spectrum with the signal's spectrum. For example, the DTFT of a sinusoid is a weighted delta function (i.e. an impulse with infinite height, infinitesimal extension, and finite area) located at the positive and negative frequency of the sinusoid. Convolving a spectrum with a delta function just shifts it to the location of the delta and scales it by the delta's weight. Therefore when you multiply a window by a sinusoid in the sample domain, the window's frequency response is scaled and shifted to the frequency of the sinusoid.

There are a couple of scenarios to examine regarding the length of a rectangular window. First let's look at the case where the window length is an integer multiple of the sinusoid's period, e.g. a 32-sample rectangular window of a cosine with a period of 32/8 = 4 samples:

x1 = cos(2*pi*8*r_[:32]/32)    # ω0 = 8π/16, bin 8/32 * 1024 = 256
X1 = rfft(x1 * w, 1024)
plot(abs(X1))
xticks(r_[:513:64])
grid(); axis('tight')

DFT of cosine at w0 = 8π/16 with a 32-point rectangular window

As before, there are nulls at multiples of N/M = 32. But the window's spectrum has been shifted to bin 256 of the sinusoid and scaled by its magnitude, which is 0.5 split between the positive frequency and the negative frequency (I'm only plotting positive frequencies). If the DFT length had been 32, the nulls would line up at every bin, prompting the appearance that there's no leakage. But that misleading appearance is only a function of the DFT length. If you pad the windowed signal with zeros (as above), you'll get to see the sinc-like response at frequencies between the nulls.

Now let's look at a case where the window length is not an integer multiple of the sinusoid's period, e.g. a cosine with an angular frequency of 7.5π/16 (the period is 64 samples):

x2 = cos(2*pi*15*r_[:32]/64)    # ω0 = 7.5π/16, bin 15/64 * 1024 = 240
X2 = rfft(x2 * w, 1024)
plot(abs(X2))
xticks(r_[-16:513:64])
grid(); axis('tight')

DFT of cosine at w0 = 7.5π/16 with a 32-point rectangular window

The center bin location is no longer at an integer multiple of 32, but shifted by a half down to bin 240. So let's see what the corresponding 32-point DFT would look like (inferring a 32-point rectangular window). I'll compute and plot the 32-point DFT of x2[n] and also superimpose a 32x decimated copy of the 1024-point DFT:

X2_32 = rfft(x2, 32)
X2_sample = X2[::32]
stem(r_[:17],abs(X2_32))
plot(abs(X2_sample), 'rs')    # red squares
grid(); axis([0,16,0,11])

32-point DFT of cosine at w0 = 7.5π/16

As you can see in the previous plot, the nulls are no longer aligned at multiples of 32, so the magnitude of the 32-point DFT is non-zero at each bin. In the 32 point DFT, the window's nulls are still spaced every N/M = 32/32 = 1 bin, but since ω0 = 7.5π/16, the center is at 'bin' 7.5, which puts the nulls at 0.5, 1.5, etc, so they're not present in the 32-point DFT.

The general message is that spectral leakage of a windowed signal is always present but can be masked in the DFT if the signal specrtum, window length, and DFT length come together in just the right way to line up the nulls. Beyond that you should just ignore these DFT artifacts and concentrate on the DTFT of your signal (i.e. pad with zeros to sample the DTFT at higher resolution so you can clearly examine the leakage).

Spectral leakage caused by convolving with a window's spectrum will always be there, which is why the art of crafting particularly shaped windows is so important. The spectrum of each window type has been tailored for a specific task, such as dynamic range or sensitivity.

Here's an example comparing the output of a rectangular window vs a Hamming window:

from pylab import *
import wave

fs = 44100
M = 4096
N = 16384
# load a sample of guitar playing an open string 6
# with a fundamental frequency of 82.4 Hz
g = fromstring(wave.open('dist_gtr_6.wav').readframes(-1),
               dtype='int16')
L = len(g)/4
g_t = g[L:L+M]
g_t = g_t / float64(max(abs(g_t)))
# compute the response with rectangular vs Hamming window
g_rect = rfft(g_t, N)
g_hamm = rfft(g_t * hamming(M), N)

def make_plot():
    fmax = int(82.4 * 4.5 / fs * N)  # 4 harmonics
    subplot(211); title('Rectangular Window')
    plot(abs(g_rect[:fmax])); grid(); axis('tight')
    subplot(212); title('Hamming Window')
    plot(abs(g_hamm[:fmax])); grid(); axis('tight')

if __name__ == "__main__":
    make_plot()

rectangular vs hamming window

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what program is that? (looks like python, but what environment is it in?) I've been looking for alternatives to MATLAB. –  Jason S Feb 17 '11 at 21:26

If you don't modify the sample values, and select the same length of data as the FFT length, this is equivalent to using a rectangular window, in which case the frame and the window are identical. However multiplying your input data by a rectangular window in the time domain is the same as convolving the input signal's spectrum with a Sinc function in the frequency domain, which will spread any spectral peaks for frequencies which are not exactly periodic in the FFT aperture across the entire spectrum.

Non-rectangular windows are often used so the the resulting FFT spectrum is convolved with something a bit more "focused" than a Sinc function.

You can also use a rectangular window that is a different size than the FFT length or aperture. In the case of a shorter data window, the FFT frame can be zero padded, which can result in an smoother looking interpolated FFT result spectrum. You can even use a rectangular window that is longer that the length of the FFT by wrapping data around the FFT aperture in a summed circular manner for some interesting effects with the frequency resolution.

ADDED due to a request:

Multiplying by a window in the time domain produces the same result as convolving with the transform of that window in the frequency domain.

In general, a narrower time domain window with produce a wider looking frequency domain transform. This is the reason that zero-padding produces a smoother frequency plot. The narrower time domain window produces a wider Sinc with fatter and smoother curves in relation to the frame width than would a window the full width of the FFT frame, thus making the interpolated frequency results look smoother than an non-zero padded FFT of the same frame length.

The converse is also true to some extent. A wider rectangular window will produce a narrower Sinc, with the nulls closer to the peak. Thus you might be able to use a carefully chosen wider window to produce a narrower looking Sinc to null a frequency closer to a bin of interest than 1 frequency bin away. How do you use a wider window? Wrap the data around and sum, which is identical to using FT basis vectors that are not truncated to 1 FFT frame in length. However, since when doing this the FFT result vector is shorter than the data, this is a lossy process which will introduce artifacts, and introduce some new novel aliasing. But it will give you a sharper frequency selection peak at each bin, and notch filters that can be placed less than 1 bin away, say halfway between bins, etc.

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That's a longer FFT which produces a higher frequency resolution, not just zero padding the same length FFT which would not change the resolution, but would change the "smoothness". The length of the FFT and the amount of zero padding are two different parameters, or "knobs", which you can play with independently. –  hotpaw2 Feb 17 '11 at 20:41

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