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I have a n x 2 matrix in Octave, and I would like to find every row where the matrix(row, 1) and matrix(row, 2) elements are non-zero. I could use a for loop like this:

[nrows, ncols] = size(data);
for i = 1:nrows
    if(data(i, 1) ~= 0 && data(i, 2) ~= 0)
        % Do something
    end
end

The issue with that is that n is about 3 million, and iteration in Octave takes for ever. I feel like there is a way to do it with find, but I haven't been able to figure it out yet.

Anyone have any advice?

Thanks!

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3 Answers 3

up vote 2 down vote accepted

You can create use logical indexing:

idx = all(data(:,1:2)~=0, 2);

The resulting vector idx contains 1s in every row where both cells are non-zero and 0 otherwise.

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1  
and then use find(idx) to get the indexes of these elements. –  Fabian Tamp Feb 25 '13 at 14:37
1  
@FabianTamp: That depends completely on the things OP wants to do with his data. There are many operations where the indices are not necessary and since find is computationally expensive (compared to omitting it) I would always try to avoid it and stick with the logical indices. –  H.Muster Feb 25 '13 at 14:42
1  
Fair call. I figured @anjruu's mention of find in the question probably warranted a mention to it :) –  Fabian Tamp Feb 25 '13 at 14:43

I think in this case (since it is related with zero values) the following also should work

idx=(data(:,1).*data(:,2)~=0)

But @H.Muster's solution is the one that works in all cases, hence a better one.

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If performance is the issue: maybe try converting both columns to logical:

useful = and(logical(data(:,1)),logical(data(:,2)))

Then you can again use logical indexing:

filtered = data(useful,:)
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