Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

is there a sensible way to replace x% of each value in matrix/vector with a new value, and have the the element(s) to be changed be selected randomly? That is, in A, if I wanted to change 20% of the values (1 element per existing value) to the value 5, how do I make sure that each of the 5 elements per existing value in A has an equal probability of changing to the new value (e.g. 5)? I would appreciate some guidance on a method to complete the task described above.

Thank you kindly.

% Example Matrix
% M = 5;
% N = 5;
% A = zeros(M, N);
A = [0 0 0 0 0;
     1 1 1 1 1;
     2 2 2 2 2;
     3 3 3 3 3;
     4 4 4 4 4];   

% Example Matrix with 20% of elements per value replaced with the value '5'
A = [0 0 5 0 0;
     1 5 1 1 1;
     2 5 2 2 2;
     3 3 3 3 5;
     4 4 5 4 4];  
share|improve this question
    
Are you meaning that you want to change every value on a row if you change it at all? –  PearsonArtPhoto Nov 18 '12 at 20:29
    
@Pearsonartphoto No, I just want to change the 1 or more elements not the entire row. The number of elements will depend on the percent x. –  nofunsally Nov 18 '12 at 20:43
    
So you are wanting to change the numbers row by row in a fixed percentage way, randomly? IE, if the number is 20%, you will always change 1 element of each row? –  PearsonArtPhoto Nov 18 '12 at 20:47
    
@Pearsonartphoto Right. The random part, would be which of the elements in that row get changed. So 20% would mean one element from each row in a 5x5 such as A should be changed to a new value. However, if the percent to change was 4% then only one element in the entire 5x5 would be changed to a new value. Thanks again for you assistance. –  nofunsally Nov 18 '12 at 20:52
1  
@Pearsonartphoto I think I could make the each value evaluation work once I can get the code you provided me below to be operational. In fact, as you suggest, I think it too might be better. Thanks. –  nofunsally Nov 18 '12 at 21:06

2 Answers 2

Try using logical arrays and a random number generated, like this:

vals_to_change=rand(size(A,1),size(A,2))<p;
A(vals_to_change)=rand(sum(vals_to_change),1);
share|improve this answer
    
thanks for the response. If I run the code above, using p = 0.10 the result (vals_to_change) varied (n=10) from no elements with a value of 1, to 5 elements with a value of 1, sometimes in the same row. The second line of code above results in a error message "Undefined function 'RND' for input arguments of type 'double'." I don't think help rnd, does not come with anything in matlab. I have read the documentation of binornd and have tinkered with variations in the code you have pasted, but I am not sure what the code is supposed to do. Please advise. Thanks. –  nofunsally Nov 18 '12 at 20:25
    
Try my latest change. Sorry, occasionally I mix up programming languages slightly... –  PearsonArtPhoto Nov 18 '12 at 20:28
    
the code above, using matrix A results in the following errors: "Improper assignment with rectangular empty matrix." and "Improper assignment with rectangular empty matrix." Please advise. I am using MATLAB 2011b. –  nofunsally Nov 18 '12 at 21:06
up vote 0 down vote accepted

Using information from here and here I was able to achieve my objective. The code below will replace x% of each value in matrix with a new value and then randomize its location within that value in the matrix.

M = 5;
N = 5;
A = zeros(M, N);
PC = 20; % percent to change
nCells = round(100/PC); % # of cells to replace with new value
A = [0 0 0 0 0;
     1 1 1 1 1;
     2 2 2 2 2;
     3 3 3 3 3;
     4 4 4 4 4]; 
A2 = A+1; % Pad the cell values for calculations (bc of zero)
newvalue = 6;
a=hist(A2(:),5);% determine qty of each value
for i=1:5
    % find 1st instance of each value and convert to newvalue
    A2(find(A2==i,round(a(i)/nCells)))=newvalue;
end;
out = A2-1; % remove padding
[~,idx] = sort(rand(M,N),2); % convert column indices into linear indices
idx = (idx-1)*M + ndgrid(1:M,1:N); %rearrange each newvalue to be random
A = out;
A(:) = A(idx);
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.