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I have a large 4 dimensional matrix, and I wish to 1) find the minimum of 2 of those dimensions (i.e. a 4000x4000 result) and then 2) count the number of elements in those last two dimensions that are less than (lets say) 5 times the minimum (i.e giving a result of 4000x4000). I'm a bit stumped as to how to do this without reverting to for loops

Some code might aid my description:

A      = rand([4000,4000,7,7]);
B(:,:) = min(A(:,:,1:7;1:7)); % this isn't quite right?
C      = size( A < 5*B ) % obviously totally wrong

any pointers would be great - many thanks!

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if you write that for-loop, it would give us a better idea on what is it you are trying to do –  Amro Jul 20 '11 at 23:40
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You might consider using prctile rather than a fixed multiple of the minimum value. Just a thought. –  reve_etrange Jul 21 '11 at 10:24
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2 Answers 2

up vote 1 down vote accepted

If I understood this correctly, the following should do the job:

mn = min(min(A,[],3),[],4);
num = sum(sum(bsxfun(@lt, A, 5*mn),3),4)
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I think Amro's answer is exactly what I want, with the slight modification of changing 1 and 2 to 3 and 4, i.e. num = sum(sum(bsxfun(@lt, A, 5*mn),3),4) –  trican Jul 21 '11 at 9:09
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@yoda, I don't think you are quite right here: A and mn have different dimensions, so A<5*mn already fails. Also, Amro's solution yields a 1x1x7x7 array, whereas nnz just yields one number (the sum over all 49 elements). –  Jonas Heidelberg Jul 21 '11 at 9:10
    
@trican: if this solution works for you, you can mark is as the accepted answer :-). Whether you wanted to have a 7x7 or 4000x4000 result wasn't really clear from your question, maybe you could clear that up for future readers of this thread ;-). –  Jonas Heidelberg Jul 21 '11 at 9:16
    
Sorry, if my description isn't the clearest –  trican Jul 21 '11 at 9:24
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@trican: when trying to vectorize a piece of code, always start with the straightforward solution (the FOR-loop in this case), then incrementally start to optimize it. That way you get a baseline against which to compare both correctness and performance... –  Amro Jul 21 '11 at 10:13
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First, it should be rand([4000,4000,7,7])

Second, to use min, you have to do something like min(A, [], 1) (replace 1 with the dimension)

Third, assuming you had A and B, you want C = sum(sum(A < 5*B))

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If A is 4D and B is 2D (as the OP states) then A<5*B fails... –  Jonas Heidelberg Jul 21 '11 at 9:12
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