问题
I'm trying to implement the Matlab fft2() function in C using the FFTW3 library.
However, I've got different results.
Considering the next matrix:
Z=[
0.4791 0.4765 0.4791 0.4765 0.4791 0.4765 0.4791 0.4765
0.4798 0.4695 0.4798 0.4695 0.4798 0.4695 0.4798 0.4695
0.4791 0.4765 0.4791 0.4765 0.4791 0.4765 0.4791 0.4765
0.4798 0.4695 0.4798 0.4695 0.4798 0.4695 0.4798 0.4695
0.4791 0.4765 0.4791 0.4765 0.4791 0.4765 0.4791 0.4765
0.4798 0.4695 0.4798 0.4695 0.4798 0.4695 0.4798 0.4695
0.4791 0.4765 0.4791 0.4765 0.4791 0.4765 0.4791 0.4765
0.4798 0.4695 0.4798 0.4695 0.4798 0.4695 0.4798 0.4695
....
]
And using the following code:
Z-> Double*
fftw_complex* fft2;
fft2 = (fftw_complex *)fftw_malloc(sizeof(fftw_complex)*Samples*(Lines));
fftw_plan p1;
p1 = fftw_plan_dft_r2c_2d(Lines,Samples, Z, fft2, FFTW_ESTIMATE);
fftw_execute(p1);
The results with Matlab:
fft2= [
5534,25859596829 + 0,00000000000000i 186,747610745237 - 529,515274347496i
42,6452471730436 - 321,074636721419i -21,4495750160608 - 190,407528614266i
-50,3875107145668 - 50,5480303619799i 30,1151029075525 + 378,240946095017i
-196,295569635431 + 228,972218925794i 35,6434356803659 - 5,46216875816971i
36,2702126322693 - 38,5502177293316i 18,5093049539101 - 33,4608602804025i
....
]
The results with my C code:
5534.260423 + 0.000000 i 186.731496 + -529.495788 i
42.655319 + -321.068356 i -21.425010 + -190.382717 i
-50.277195 + -50.384210 i 29.909846 + 377.823957 i
-195.767224 + 228.693862 i 35.241375 + -5.315382 i
36.134134 + -38.527643 i 18.406395 + -33.467351 i
....
]
What am I doing wrong?
回答1:
You aren't doing anything wrong in your C implementation but you can't be sure that you are comparing like with like.
There are varying reasons why you could achieve different results between FFTW in C and fft2() in MATLAB.
- MATLAB uses its own specifically optimised version of FFTW, compiled with multithreading support and SSE/AVX vectorised instructions. You can find details of it with
version('-fftw')in MATLAB. - MATLAB uses it owns abstraction (
libmwmfl_fft) on top of FFTW to do away with the planner routines and expose simple functions likefft()andfft2(). You can't be sure that it will choose the same planner routine that you have in your question. - FFTW uses heuristics to determine the optimal algorithm for computing the FFT for the data size and type you've specified. These heuristics could vary from run to run on the same data and the same machine especially with
FFTW_ESTIMATEas it uses a less rigourous testing procedure thatFFTW_MEASURE,FFTW_PATIENTorFFTW_EXHAUSTIVE. - Floating point operations are not necessarily associative and could result in different values being computed depending on the algorithm FFTW decides to use to compute the FFT. Depending on the algorithm chosen, floating point round-off error could be propagating through some of the computations resulting in lesser accuracy.
I've looked at the relative error for the data you've posted in your question and for some values it is 1e^-5 whilst the mean relative error is 0.2341.
On the whole though given the nature of floating point calculations who is to say which computes the correct values? FFTW in C or MATLAB?
回答2:
Before comparing Matlab's fft2 vs FFTW, you should verify reproducible results between execution given the same input, for both Matlab and FFTW. Because the default FFTW will not produce the same result every time for the same input. I know this is disturbing, (and will probably induce a lot of negative comments on this answer.) The differences are small.
I ran into this issue myself with FFTW. I use MD5 checksums of the output to verify no difference. I was able to reproduce equal checksums (same output) by changing the default Planner Flags for FFTW. This issue is covered in Q3.8 of the FFTW FAQ.
Once you have deterministic FFTW working, do the same for Matlab (since it just wraps FFTW, and offers options to modify the FFTW plan).
Then compare FFTW and Matlab results.
来源:https://stackoverflow.com/questions/24485940/different-results-with-fft2-matlab-and-fftw-c