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Say you have two matrices as follows:

A = [1 0.2 1; 0.4 0.4 1; 1 0.6 1; 0.9 0.7 1];

B = [33 75 250; 6 34 98; 55 3 4; 153 66 30];

Say we want to create a new matrix C that contains the values of B where A=1.

I think in matlab we can do the following for this:

C = B(A==1);

But, how can I fill the other cells with the original values of A, as I think in our case, we will just get a vector with the B elements which their corresponding value in A=1? And, I want C to have the same dimensions of B but with the original values of A that are not equal to 1 instead of having 0 values.

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There is something wrong with your question as you are asking to assign some values of B to C and then all other values should be those of B, which means that in the end C will be identical to B. –  s.bandara Mar 23 '13 at 18:24
    
Yes, I understood that too, but I think he is talking about keeping the dimensions, and filling the other values with zeros. –  mmumboss Mar 23 '13 at 18:26
    
Sorry, I have edited my question. I meant the original values of A not B. Is my question more clear now? Thanks –  Simplicity Mar 23 '13 at 18:35

2 Answers 2

up vote 1 down vote accepted

Yes, you can do it like this:

C= A.*(A~=1)+B.*(A==1)

Which gives:

C =

33.0000    0.2000  250.0000
0.4000    0.4000   98.0000
55.0000    0.6000    4.0000
0.9000    0.7000   30.0000
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Thanks for your reply. For the values 0 you have, I want them to be the original values of A instead of 0. This is my main issue here. Do you know how I can go about it? I have made an edit to my question if you can see it –  Simplicity Mar 23 '13 at 18:33
    
Okay, now it is clear. I changed the solution, it is based on the same principle. –  mmumboss Mar 23 '13 at 18:45
    
Thanks a lot for your answer. Just curious. What does .* mean? Where can I find more information on it? –  Simplicity Mar 23 '13 at 19:26
1  
When you add the . in front of an operator like *, /, or ^ it performs the operation elementwise, instead of doing a matrix multiplication. See mathworks.fr/fr/help/matlab/ref/arithmeticoperators.html –  mmumboss Mar 23 '13 at 19:34
    
If this answered your question, please be so kind to accept the answer. –  mmumboss Mar 23 '13 at 19:45

C will have to be initialized anyways, so let's initialize it to A as in C = A;. Then, MATLAB allows you to index the left-hand side as in C(A==1) = B(A==1); to replace all elements in C by those in B for which A == 1. All other elements will stay the same.

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Thanks for your reply. I have made an edit to my question if you can see it. Thanks –  Simplicity Mar 23 '13 at 18:36
    
Okay, this now makes a lot of sense. I updated my answer as well. –  s.bandara Mar 23 '13 at 18:45

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