Replace zero in a matrix with value in previous row
Show older comments
Hi,
Can you please help me on how can I replace all zeroes in a matrix with the value in previous row?
e.g. if value in row 3 column 4 is 0, it should pick value in row 2 column 4.
I can do it using a for loop but I dont want to use that.
Thanks.
Accepted Answer
Azzi Abdelmalek
on 1 Feb 2014
Edited: Azzi Abdelmalek
on 1 Feb 2014
A=[1 2 3 4;4 5 0 0;1 0 0 1 ;0 1 1 1]
while any(A(:)==0)
ii1=A==0;
ii2=circshift(ii1,[-1 0]);
A(ii1)=A(ii2);
end
4 Comments
Mohit
on 1 Feb 2014
Mido
on 3 Nov 2016
What should I do if I want to apply this process on a specific column. For example the third one?
Jan
on 4 Nov 2016
@Mido: Please open a new thread for a new question.
match = (A(:, 3)==0);
A(match, 3) = A(match, 2);
Pardis
on 16 Mar 2020
Very helpful, thank you Azzi!
More Answers (5)
Shivaputra Narke
on 1 Feb 2014
1 vote
Now answer to your comment...
while(all(a(:))) a(find(a==0))=a(find(a==0)-1) end
3 Comments
Mohit
on 1 Feb 2014
Captain Karnage
on 2 Dec 2022
That expression doesn't work as written in a single line. Without a ; after the assignment, it gets an error 'Error: Illegal use of reserved keyword "end".` If I add the ; however, it doesn't error but it still doesn't work. I'm not sure why, because logically it seems like it should, but I just get the original a out when I run it.
The loop is never entered at all. You could make some modifications.
a = [0 5 9 13; 2 6 0 0; 3 0 0 15; 0 8 12 16]
na = numel(a);
while ~all(a(:)) % loop runs until there are no zeros
idx = find(a==0);
a(idx) = a(mod(idx-2,na)+1);
end
a
The redundant find() can be removed. Since this is based on decrementing the linear indices, this will fill zeros at the top of a column with content from the bottom of the prior column. Using mod() allows the wrapping behavior to extend across the ends of the array. Note that a(1,1) is filled from a(16,16).
Whether this wrapping behavior is intended or acceptable is a matter for the reader to decide.
Andrei Bobrov
on 1 Feb 2014
l = A == 0;
ii = bsxfun(@plus,size(A,1)*(0:size(A,2)-1),cumsum(~l));
out = A;
out(l) = A(ii(l));
Shivaputra Narke
on 1 Feb 2014
0 votes
May be this code can help...
% where a is your matrix a(find(a==0))=a(find(a==0)-1)
Amit
on 1 Feb 2014
Lets say your matrix is A
[m,n] = size(A);
An = A';
valx = find(~An); % This will give you zeros elements linear index
valx = valx(valx-n > 0);
An(valx) = An(valx-n);
A = An';
Paul
on 1 Feb 2014
idx=find(A==0)
A(idx)=A(idx-1)
3 Comments
Amit
on 1 Feb 2014
This solution is similar to what Shivaputra posted. This solution will also fail. find(A==0) give linear indexing. Imaging that you have first row with some values 0. This approach will fill up those first row values with a value too.
Try these solution for a matrix like:
A = [1 0 0;2 1 0;2 3 1]
Shivaputra Narke
on 1 Feb 2014
Thank you Amit. My solution wont work on such scenarios.
Mohit
on 1 Feb 2014
Categories
Find more on Matrices and Arrays in Help Center and File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
