Can someone check my code ?

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Maria
Maria on 11 Sep 2022
Edited: Maria on 16 Sep 2022
Hello!
I have a binary matrix A (m*n),in each row i want to keep arbitrary just '1' in order to get sum in each row ="1"
at first i selected the last non zero value in each row with this code :
[rows, columns] = size(A)
% Create an array to keep track of the column of the last 1 in each row.
lastNonZeroColumn = zeros(rows, 1);
% Loop over rows, finding the last 1 in each row.
for row = 1 : rows
% Find the last 1 in this row, if any exist.
col = find(A(row, :), 1, 'last');
if ~isempty(col)
% At least one 1 exists. Log it's location.
lastNonZeroColumn(row) = col;
end
end
% Display results in command window:
lastNonZeroColumn
after this i picked out just '1' except the last non zero value, i used this code :
N=zeros(size(A);
for k=1:size(A,1)
index=find(A(k,1:lastNonZeroColumn(i)-1));
if isempty(index),continue;end
select=randperm(length(index),1);
N(k,index(select))=1;
end
but i still get '1' at the position of last non zero value.
can anyone help me please!
thanks in advance.
  4 Comments
Walter Roberson
Walter Roberson on 15 Sep 2022
(Not relevant to this question, but in order to get this message through to the poster who deleted a question earlier:)
With regards to the summation you asked about:
R in your equation appears to be a fixed value. You are adding the fixed value together T times,
R %t = 1 to 1
R+R = 2*R %t = 1 to 2
R+R+R = 3*R %t = 1 to 3
and so on.
And you are wanting to compare that matrix sum to the scalar value k.
  • if k is 0 then D = 0, since sum t=1:0 of something is 0 as no elements would be added
  • if k is > 0 and any R>0 then D = ceil(max(R(:))/k)
  • if k is negative then D = 0 since as we showed above the empty sum is 0 and negative < 0
  • if k is > 0 and all R<=0 then there is no solution
The analysis would be quite different if the equation were and it would be different again if it were something like
Maria
Maria on 16 Sep 2022
Edited: Maria on 16 Sep 2022
@Walter Roberson I really appreciate your effort, thank you so much for answering me here, but I tried to find another solution that's why I deleted the question.

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Accepted Answer

Torsten
Torsten on 11 Sep 2022
Moved: Cris LaPierre on 11 Sep 2022
That's exactly what your code does in my opinion.
Or give an example where it does not perform as you described it should.
Found a mistake in your code:
index=find(A(k,1:lastNonZeroColumn(i)-1));
should of course be
index=find(A(k,1:lastNonZeroColumn(k)-1));
  4 Comments
Maria
Maria on 11 Sep 2022
Moved: Cris LaPierre on 11 Sep 2022
@Torsten of course! many thanks
Image Analyst
Image Analyst on 11 Sep 2022
@Maria please click the "Accept this answer" link to award @Torsten his "Reputation points" for helping you. Thanks in advance. 🙂

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