Summing values for duplicate rows and columns
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I have a vector of rows, columns, and values that I will use to create a sparse matrix:
rows = [1 2 3 1]; columns = [1 1 2 1]; values = [10 50 25 90];
Notice the duplicates:
(1,1) 10 (1,1) 90
What I need is to eliminate (row,column) duplicates by summing the values corresponding to these duplicates for each.
The solution in the current example is:
rows = [1 2 3]; columns = [1 1 2]; values = [100 50 25];
What operation on the three initial vectors reduce them to the solution above?
Accepted Answer
More Answers (1)
Walter Roberson
on 10 Jul 2017
sparse(row, columns, values) is defined to do exactly this kind of totals.
If for some reason you need the simplified outputs afterwards, you can
[r, c, v] = find() on the sparse matrix.
2 Comments
Ulrik William Nash
on 10 Jul 2017
Walter Roberson
on 10 Jul 2017
result = sparse(r, c, s);
[summary_r, summary_c, summary_s] = find(result);
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