问题
I have an audio file and I am iterating through the file and taking 512 samples at each step and then passing them through an FFT.
I have the data out as a block 514 floats long (Using IPP's ippsFFTFwd_RToCCS_32f_I) with real and imaginary components interleaved.
My problem is what do I do with these complex numbers once i have them? At the moment I'm doing for each value
const float realValue = buffer[(y * 2) + 0];
const float imagValue = buffer[(y * 2) + 1];
const float value = sqrt( (realValue * realValue) + (imagValue * imagValue) );
This gives something slightly usable but I'd rather some way of getting the values out in the range 0 to 1. The problem with he above is that the peaks end up coming back as around 9 or more. This means things get viciously saturated and then there are other parts of the spectrogram that barely shows up despite the fact that they appear to be quite strong when I run the audio through audition's spectrogram. I fully admit I'm not 100% sure what the data returned by the FFT is (Other than that it represents the frequency values of the 512 sample long block I'm passing in). Especially my understanding is lacking on what exactly the compex number represents.
Any advice and help would be much appreciated!
Edit: Just to clarify. My big problem is that the FFT values returned are meaningless without some idea of what the scale is. Can someone point me towards working out that scale?
Edit2: I get really nice looking results by doing the following:
size_t count2 = 0;
size_t max2 = kFFTSize + 2;
while( count2 < max2 )
{
const float realValue = buffer[(count2) + 0];
const float imagValue = buffer[(count2) + 1];
const float value = (log10f( sqrtf( (realValue * realValue) + (imagValue * imagValue) ) * rcpVerticalZoom ) + 1.0f) * 0.5f;
buffer[count2 >> 1] = value;
count2 += 2;
}
To my eye this even looks better than most other spectrogram implementations I have looked at.
Is there anything MAJORLY wrong with what I'm doing?
回答1:
The usual thing to do to get all of an FFT visible is to take the logarithm of the magnitude.
So, the position of the output buffer tells you what frequency was detected. The magnitude (L2 norm) of the complex number tells you how strong the detected frequency was, and the phase (arctangent) gives you information that is a lot more important in image space than audio space. Because the FFT is discrete, the frequencies run from 0 to the nyquist frequency. In images, the first term (DC) is usually the largest, and so a good candidate for use in normalization if that is your aim. I don't know if that is also true for audio (I doubt it)
回答2:
For each window of 512 sample, you compute the magnitude of the FFT as you did. Each value represents the magnitude of the corresponding frequency present in the signal.
mag
/\
|
| ! !
| ! ! !
+--!---!----!----!---!--> freq
0 Fs/2 Fs
Now we need to figure out the frequencies.
Since the input signal is of real values, the FFT is symmetric around the middle (Nyquist component) with the first term being the DC component. Knowing the signal sampling frequency Fs
, the Nyquist frequency is Fs/2. And therefore for the index k
, the corresponding frequency is k*Fs/512
So for each window of length 512, we get the magnitudes at specified frequency. The group of those over consecutive windows form the spectrogram.
回答3:
Just so people know I've done a LOT of work on this whole problem. The main thing I've discovered is that the FFT requires normalisation after doing it.
To do this you average all the values of your window vector together to get a value somewhat less than 1 (or 1 if you are using a rectangular window). You then divide that number by the number of frequency bins you have post the FFT transform.
Finally you divide the actual number returned by the FFT by the normalisation number. Your amplitude values should now be in the -Inf to 1 range. Log, etc, as you please. You will still be working with a known range.
回答4:
There are a few things that I think you will find helpful.
The forward FT will tend to give larger numbers in the output than in the input. You can think of it as all of the intensity at a certain frequency being displayed at one place rather than being distributed through the dataset. Does this matter? Probably not because you can always scale the data to fit your needs. I once wrote an integer based FFT/IFFT pair and each pass required rescaling to prevent integer overflow.
The real data that are your input are converted into something that is almost complex. As it turns out buffer[0] and buffer[n/2] are real and independent. There is a good discussion of it here.
The input data are sound intensity values taken over time, equally spaced. They are said to be, appropriately enough, in the time domain. The output of the FT is said to be in the frequency domain because the horizontal axis is frequency. The vertical scale remains intensity. Although it isn't obvious from the input data, there is phase information in the input as well. Although all of the sound is sinusoidal, there is nothing that fixes the phases of the sine waves. This phase information appears in the frequency domain as the phases of the individual complex numbers, but often we don't care about it (and often we do too!). It just depends upon what you are doing. The calculation
const float value = sqrt((realValue * realValue) + (imagValue * imagValue));
retrieves the intensity information but discards the phase information. Taking the logarithm essentially just dampens the big peaks.
Hope this is helpful.
回答5:
If you are getting strange results then one thing to check is the documentation for the FFT library to see how the output is packed. Some routines use a packed format where real/imaginary values are interleaved, or they may begin at the N/2 element and wrap around.
For a sanity check I would suggest creating sample data with known characteristics, eg Fs/2, Fs/4 (Fs = sample frequency) and compare the output of the FFT routine with what you'd expect. Try creating both a sine and cosine at the same frequency, as these should have the same magnitude in the spectrum, but have different phases (ie the realValue/imagValue will differ, but the sum of squares should be the same.
If you're intending on using the FFT though then you really need to know how it works mathematically, otherwise you're likely to encounter other strange problems such as aliasing.
来源:https://stackoverflow.com/questions/1679974/converting-an-fft-to-a-spectogram