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Given matrix M (x times 5) and structure thr, which contains numbers, how can I do following procedure without a loop?

Using structfun is not possible with 2 structures. Using arrayfun is not possible to assign to my structure index. Also cellfun is not the right one. Anyone any help?

Thank you in advance!

index.b = M(:,1) >= thr.b;
index.c = M(:,2) >= thr.c;
index.h = M(:,3) >= thr.h;
index.r = M(:,4) >= thr.r;
index.s = M(:,5) >= thr.s;
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Maybe a struct is not the best data structure for this? Why not I = M > T where T(:, 1) = thr.b etc...? –  Dan Mar 8 '13 at 12:31
    
Thanks @Dan, the idea is not bad. But it does not calc the same as above. The link to each columns to M is lost. Should be M(:,1) > T(1) –  Massoud Mar 8 '13 at 14:07
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no I was suggesting that size(M) == size(T) so T = repmat([thr.b, thr.c, thr.h,...], size(M, 1), 1) for example –  Dan Mar 8 '13 at 14:25

1 Answer 1

If you really need to maintain your data structures as they are here is a solution.

First, let's create dummy input:

M = rand(5);
index = struct('b',[],'c',[],'h',[],'r',[],'s',[]);
thr = struct('b',.5,'c',.5,'h',.5,'r',.5,'s',.5);

Here is the actual trick:

A = bsxfun(@ge, M, [thr.b, thr.c, thr.h, thr.r, thr.s]);
A = num2cell(A,1);
[index.b, index.c, index.h, index.r, index.s] = deal(A{:});

Again, you can do this in a more efficient way using adequate data structures. Hope this helps.

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Thank you, @upperBound, what would the adequate data structures be? Do you mean the way Dan showed in the previous answer? –  Massoud Mar 11 '13 at 9:42

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