Hi, I am trying to vectorize following for loop. Need some help??

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Parag Patil
Parag Patil le 26 Jan 2016
Commenté : Parag Patil le 26 Jan 2016
accumulator=zeros(numThetas,numRhos);
accx_n=zeros(numEdgePixels,numThetas);
for j=1:numThetas
accumulator(j,:)=[0 histcounts(accx_n(:,j),rho)];
end
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Walter Roberson
Walter Roberson le 26 Jan 2016
We do not know whether rho is a scalar (acting as a bin count) or a vector (acting as edge information)
Parag Patil
Parag Patil le 26 Jan 2016
Its a row vector. Say, rho=[-1.3415:1:1.3415] Thank you.

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Guillaume
Guillaume le 26 Jan 2016
This is a case where the 'old' histogram functions work better than the newer one. If you pass a matrix to histc, it returns the histogram of each column, exactly what you're doing right now with your loop.
You have to watch out that histc and histcounts do not behave exactly the same with regards to the edges (assuming rho is an edge vector), so you may have to modify your rho slightly.
accumulator = [zeros(size(accx_n, 1), 1), histc(accx_n, rho)]
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Guillaume
Guillaume le 26 Jan 2016
Modifié(e) : Guillaume le 26 Jan 2016
Unfortunately, there's no workaround for histcounts. The best you could do is parallelise the loop with parfor.
edit: saying that you can reproduce your usage of histcounts with discretize and accumarray. As discretize uses the same binning method as histcounts you 'll get exactly the same result:
bins = discretize(accx_n, rho);
rows = repmat(1:size(accx_n, 2), size(accx_n, 1), 1);
accumulator = [zeros(size(accx_n, 2), 1) accumarray([rows(:), bins(:)], 1)]
No guarantee that it is faster than the loop, due to the matrix resizing of rows and bins.
Parag Patil
Parag Patil le 26 Jan 2016
Thanks..histc worked but I will try this one too.

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