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Barnabas Szabolcs, thank you very much for your help. I understand that the loops should not be nested but I have done the same to further sub-divide the 5x5 window into four 3x3 sub-windows. Please help me with this, how to sub divide the 5x5 window into four 3x3 sub-windows without nested loop.

Code:

for i=1:m

for j=1:n

  if(i<=(m-4) && j<=(n-4))

      % Reading 5 x 5 window in an image

v=1; 
for p=i:i+4
    u=1;
    for q=j:j+4
        P(v,u)=L(p,q);
        u=u+1;
    end
    v=v+1;
end

    % Sub dividing the 5 x 5 window into four 3x3 sub windows 

k=1;
for r=1:3
    l=1;
    for s=1:3
        v2(k,l)=P(r,s);
        v1(k,l)=P(r,s+2);   
        v3(k,l)=P(r+2,s);
        v4(k,l)=P(r+2,s+2);
        l=l+1;    
    end
    k=k+1;
end

I need this four vector v1,v2,v3 and v4 for further processing. Link of my previous question about retaining the corner pixels:

Retain corner pixles in an image matlab

Please help me out.

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As a sidenote, please accept the answer to your previous question, if it resolved your problem. –  Eitan T Dec 10 '12 at 14:01
    
@EitanT Done.. I am a new user. Thanks for informing –  user101509 Dec 10 '12 at 14:04

2 Answers 2

up vote 0 down vote accepted

Let me tell a bit more than just answering your question on sub-dividing your window.

  1. You read in a 5x5 window from an image like this:

    P=L(i:(i+4),j:(j+4));

    so that (i,j) is the top-left corner of the window on the original image.

  2. This "sub-division" looks for me like taking a 3x3 starting from the TL, TR, BL and BR(*) corner of the 5x5 window. That can be done simply like this:

    tl = P(1:3, 1:3); % this is v2 in your question
    tr = P(1:3, 3:5); % this is v1 (didn't you mix up v2 and v1 by any chance?)
    bl = P(3:5, 1:3); % this is v3
    br = P(3:5, 3:5); % this is v4

    I suggest rather using this tl, tr, bl, br instead of v1, v2, v3, v4 because it is more expressive.

(*)(T=top, B=bottom, L=left, R=right)


UPDATE: (how to change the loops?)
You want to cover all the windows on L, so the first window will be P=L(1:5, 1:5), the last will be P=L((m-4):m,(n-4):n). All the others will be in between. So the first value of i is i=1, the last is i=m-4 and the first j is j=1, the last is j=n-4.

You can also verify this manually, typing a demo L into the command prompt of matlab, like this:

L=reshape([1:42], 6, 7); % a 6x6 test array
m=6; n=7;

i=1; j=1;
P_first=L(i:(i+4),j:(j+4)); % should contain 1

i=m-4; j=n-4;
P_last=L(i:(i+4),j:(j+4)); % should contain 42
share|improve this answer
    
Once thank you very much Barnabas Szabolcs, you saved my day. I will try this out and let you know. –  user101509 Dec 10 '12 at 15:13
    
I receive the following error: ??? Index exceeds matrix dimensions. Error in ==> PRM1 at 45 P=L(i:(i+4),j:(j+5)); –  user101509 Dec 10 '12 at 15:28
    
I tried P=L(i:(i+4),j:(j+4)); the same error occurs –  user101509 Dec 10 '12 at 15:31
    
I've corrected the typo. As for your problem: your for loop must not go to m and n, but for i=1:(m-4) and for j=1:(n-4). –  Barnabas Szabolcs Dec 10 '12 at 17:49
    
thanks it's working... but why it should go for i=1:(m-4) and for j=1:(n-4) not as in original code stated in question that is from to m and n ( for i=1:m and for j=1:n). Please explain.. –  user101509 Dec 10 '12 at 18:01

Not really sure if this is what you need, but how about this solution:

% Some random matrices that are each one third the length and width of the total
LU3 = rand(10);
LM3 = rand(10);
LD3 = rand(10);
MU3 = rand(10);
MM3 = rand(10);
MD3 = rand(10);
RU3 = rand(10);
RM3 = rand(10);
RD3 = rand(10);

% Putting them together
I = [LU3 MU3 RU3;LM3 MM3 RM3;LD3 MD3 RD3];

% Splitting it up in four parts
LU2 = I(1:15,1:15)
RU2 = I(16:30,1:15)
LD2 = I(1:15,16:)
RD2 = I(16:30,16:30)

It is not very generalized but it should not be hard to adapt.

share|improve this answer
    
Thank you very much for the idea EitanT –  user101509 Dec 10 '12 at 15:14
    
@DennisJaheruddin Actually I've just noticed that you're working on a 30-by-30 matrix while the question is about a 5-by-5 matrix... –  Eitan T Dec 10 '12 at 15:48
    
@EitanT The size is indeed different, but apparently I misinterpreted the meaning of 'window' and 'sub window'. As there already is an accepted answer I will just leave it at this. –  Dennis Jaheruddin Dec 10 '12 at 15:53
    
@Dennis Jaheruddin , Can u look over the error i stated in the accepted answer ? I receive the following error: ??? Index exceeds matrix dimensions. Error in ==> PRM1 at 45 P=L(i:(i+4),j:(j+5)); –  user101509 Dec 10 '12 at 16:51
    
@EitanT Can u look over the error i stated in the accepted answer ? I receive the following error: ??? Index exceeds matrix dimensions. Error in ==> PRM1 at 45 P=L(i:(i+4),j:(j+5)); –  user101509 Dec 10 '12 at 16:51

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