Nested for loop fit with function

2 vues (au cours des 30 derniers jours)
William
William le 22 Avr 2014
Commenté : William le 22 Avr 2014
I understand for loops are not ideal for Matlab, but not sure how to avoid using them. In this case I have a matrix 'TE_ROI' that contains values at each position which need to be run through a function 'multi_exp_fit'. It fits 2 exponential curves to the data and then puts the coefficients inside another preallocated matrix. Here is the code. Please advise.
T2_gof = zeros(s_x,s_y,s_z,numel(X));
T2_range1= zeros(s_x,s_y,s_z,numel(X));
T2_range2= zeros(s_x,s_y,s_z,numel(X));
for x = 1:s_x
for y = 1:s_y
for z = 1:s_z
for v = 1:s_v
[fitresult,gof] = multi_exp_fit(TE,ROI(:,x,y,z,v));
out = coeffvalues(fitresult);
T2_gof(x,y,z,v) = gof.rsquare;
T2_range1(x,y,z,v) = (-1/out(2));
T2_range2(x,y,z,v) = (-1/out(4));
end
end
end
end

Réponse acceptée

Jan
Jan le 22 Avr 2014
It is interesting, that you understand, that loops are not ideal for Matlab. I've heard of this rumor in the times of Matlab 6.1 also. But since the year 2002 and release 6.5 the introduction of the JIT acceleration improved the speed of loops substantially.
So my advice is to be happy with the loop, as long as it does not consume more than 25% of the total computing time. And even if it is the bottleneck, it is not worth to spend 1 hour in the vectorization, when you save 0.1 seconds of runtime.
  2 commentaires
William
William le 22 Avr 2014
Thanks for your rapid response Jan. The looping issue is probably because I am new to it. It currently takes over half an hour to run, the results are fine but would be nice to make it faster. Or is this expected?
William
William le 22 Avr 2014
I've isolated the bottleneck to this, if it helps:
for x=1:s_x
for y=1:s_y
for z=1:s_z
for v=1:s_v
[fitresult, gof] = fit( xData, squeeze(yData(:,x,y,z,v)), ft, opts );
out = coeffvalues(fitresult);
T2_gof(x,y,z,v) = gof.rsquare;
T2_range1(x,y,z,v) = (-1/out(2));
T2_range2(x,y,z,v) = (-1/out(4));
end
end
end
end

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