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I have a matrix with integers and I need to replace all appearances of 2 with -5. What is the most efficient way to do it? I made it the way below, but I am sure there is more elegant way.

a=[1,2,3;1,3,5;2,2,2]
ind_plain = find(a == 2)
[row_indx col_indx] = ind2sub(size(a), ind_plain)
for el_id=1:length(row_indx)
    a(row_indx(el_id),col_indx(el_id)) = -5;
end

Instead of loop I I seek for something like: a(row_indx,col_indx) = -5, which does not work.

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3 Answers 3

find is not needed in this case. Use logical indexing instead:

a(a == 2) = -5
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This is the most efficient way to do your task :) thanks andrey i used it. –  ahmed abobakr Feb 7 at 11:54
    
@Andrey Can you please also suggest how can this be used when searching for infinity in matrix using isinf function? –  Naman Oct 19 at 2:22

Try this:

a(a==2) = -5;

The somewhat longer version would be

ind_plain = find(a == 2);
a(ind_plain) = -5;

In other words, you can index a matrix directly using linear indexes, no need to convert them using ind2sub -- very useful! But as demonstrated above, you can get even shorter if you index the matrix using a boolean matrix.

By the way, you should put semicolons after your statements if (as is usually the case) you're not interested in getting the result of the statement dumped out to the console.

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The Martin B's method is good if you are changing values in vector. However, to use it in matrix you need to get linear indices.

The easiest solution I found is to use changem function. Very easy to use:

mapout = changem(Z,newcode,oldcode) In your case: newA = changem(a, 5, -2)

More info: http://www.mathworks.com/help/map/ref/changem.html

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(PlusOne) Good solution, yet it is worth mentioning that it requires mapping toolbox. –  Andrey Nov 20 at 16:14

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