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different output in kmeans

조회 수: 3 (최근 30일)
Elysi Cochin
Elysi Cochin 2013년 5월 6일
i used kmeans for clustering similar images.... if i run the code first i get the correct clusters..... but without closing matlab if i execute the second time for the same image, it is clustering different output.... why like that..... what shud i do to get the same output whenever i execute the code... please do reply.....

채택된 답변

Youssef  Khmou
Youssef Khmou 2013년 5월 6일
hi, i think this question has been asked before, the reason is that the K-means algorithm starts with random partition so every time you run the code, you get the same result but with different RMSE.
(try to clear the Workspace and re-run ...)
  댓글 수: 5
Walter Roberson
Walter Roberson 2013년 5월 7일
Could you indicate
size(repmat(minc, nsamp, 1))
size( bsxfun(@times, (0:nsamp-1).', (maxc - minc) ./
(nsamp-1)) )

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추가 답변 (1개)

José-Luis
José-Luis 2013년 5월 6일
편집: José-Luis 2013년 5월 6일
An option is to reset the random number generator to its initial state every time before running your code:
rng default % ->This is the important bit
X = [randn(100,2)+ones(100,2);...
randn(100,2)-ones(100,2)];
opts = statset('Display','final');
[idx,ctrs] = kmeans(X,2,...
'Distance','city',...
'Replicates',5,...
'Options',opts);
This will always produce the same result, but it sorts of beat the purpose of the function and might produce bad results.
  댓글 수: 2
José-Luis
José-Luis 2013년 5월 6일
편집: José-Luis 2013년 5월 6일
For example:
X = [randn(100,2)+ones(100,2);...
randn(100,2)-ones(100,2)];
opts = statset('Display','final');
[idx,ctrs] = kmeans(X,2,...
'Distance','city',...
'Replicates',1,...
'Options',opts,...
'start',[0.25 0.25; 0.75 0.75]);
But that does not guarantee that the result will always be the same.
Elysi Cochin
Elysi Cochin 2013년 5월 7일
thank you all for your valuable suggestions in helping me to solve my problem..... thank you all once again......

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