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I have a matrix of m.n images like the following:

images = zeros( m, n, height, width );

It means I have m.n images whose width and height is given. Then, in a for loop; I fill these images like:

for i=1:m
    for j=1:n
       images(i,j,:,:) = imread('imagePath');
    end
end

Then, let's say I want to use the image (1,1):

image1 = images(1,1,:,:);

I expect this image1 to have size = (h,w). However, when I say:

size(image1)

I get the result:

(1,1,h,w)

Questions:

1.

Why I don't have the following result?

(h,w)

2.

How can I reconstruct my code to have my expected result?

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2 Answers 2

up vote 1 down vote accepted

You can use the squeeze function to do just that :)

image1 = squeeze(image1);
size(image1)

should give

(h,w)
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It works great now. Thanks a lot! I was struggling with it for more than 3 hours. –  celebisait Jun 6 '12 at 15:01

It has to do with how matlab does indexing. When you say

image1 = images(1,1,:,:);

You're telling matlab you want a 4 dimensional array, with first and second dimensions of size 1.

Where as, if you had said:

junk = images(:,:,1,1);
size(junk)
> [m,n]

Matlab treats a matrix of size [m,n] the same as if it were of size [m,n,1] or [m,n,1,1]. Can't do that on the front, thus the need for squeeze as @Junuxx points out. An alternative approach is to do thing as follows:

images = zeros( height, width, m, n );
for i=1:m
    for j=1:n
       images(:,:,m,n) = imread('imagePath');
    end
end
image1 = images(:,:,1,1);
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Hmmm, very interesting ... Thanks for the comment. However, as a C, C++ developer it seems little awkward to me. –  celebisait Jun 6 '12 at 15:03
    
@zagy that's the joy of learning new languages. It always requires you to wrap (some may say warp) your mind around the new concepts to use the language efficiently. –  John Jun 7 '12 at 15:41

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