For an arbitrary sized matrix x
, how do I find the index of the last non-zero element in each row of a given matrix?
For example, for the matrix
x = [ 0 9 7 0 0 0; 5 0 0 6 0 3; 0 0 0 0 0 0; 8 0 4 2 1 0 ]开发者_JAVA百科
the vector [ 3 6 0 5 ]
should be obtained.
Here's a shorter version, combining find and accumarray
x = [ 0 9 7 0 0 0; 5 0 0 6 0 3; 0 0 0 0 0 0; 8 0 4 2 1 0 ];
%# get the row and column indices for x
[rowIdx,colIdx] = find(x);
%# with accumarray take the maximum column index for every row
v = accumarray(rowIdx,colIdx,[],@max)'
v =
3 6 0 5
Here's one version:
x = [ 0 9 7 0 0 0; 5 0 0 6 0 3; 0 0 0 0 0 0; 8 0 4 2 1 0 ];
c = arrayfun(@(k) find(x(k,:)~=0,1,'last'), 1:size(x,1), 'UniformOutput',false);
c( cellfun(@isempty,c) ) = {0};
v = cell2mat(c);
v =
3 6 0 5
EDIT: Consider this alternative solution:
[m,v] = max( cumsum(x'~=0) );
v(m==0) = 0;
v =
3 6 0 5
One-line solution with bsxfun
:
result = max(bsxfun(@times, x~=0, 1:size(x,2)).');
Or use the two outputs of max
:
[val, result] = max(fliplr(x~=0).',[],1); %'
result = (size(A,2)+1-result).*val;
My answer's a bit twisted but it should work too
x = [ 0 9 7 0 0 0; 5 0 0 6 0 3; 0 0 0 0 0 0; 8 0 4 2 1 0 ];
[~,pos] = max([fliplr(x~=0),ones(size(x,1))],[],2);
v = size(x,2)-pos' +1;
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