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Non zero min 3D matrix

조회 수: 2 (최근 30일)
VISHNUPRIYA M S
VISHNUPRIYA M S 2019년 3월 12일
편집: madhan ravi 2019년 3월 12일
I have 3D matrix of A(k,l,t) where t is time. I want to find the non zero min of each row for every t.
for t =1:10
for k = 1:10
f(k,1,t) = max(A(k,:,t)(A(k,:,t)>0));
end
end
it shows error ()-indexing must appear last in an index expression.
I was trying to use f = min(A(A>0))

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채택된 답변

KSSV
KSSV 2019년 3월 12일
A = rand(10,10,10) ;
for t =1:10
for k = 1:10
D = A(k,:,t) ;
D = D(D>0) ;
f(k,1,t) = max(D);
end
end

추가 답변 (1개)

Raghunandan V
Raghunandan V 2019년 3월 12일
You can remove all the for loops and make it more effecient
A= rand(10,10,10);
A(A==0) = inf;
min(A)
Here I am just replacing the 0 with inf and then finding the minimum. This code even works for matrix with negative integers. :)
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이전 댓글 3개 표시
Raghunandan V
Raghunandan V 2019년 3월 12일
Please check the question. the formula written there is max(A(k,:,t). this actually means they are trying to find the minimum of a column as 2nd argument is :. If you need the minimum or rows you can transpose the matrix and then use minimum.
:)
madhan ravi
madhan ravi 2019년 3월 12일
편집: madhan ravi 2019년 3월 12일
+1, Ah didn’t examine the code because OP mentioned row in the statement but in the code turns out to find for columns, good proposal then ;-) .In your code what will happen if a column is all zeros? Why do you say if that the second solution proposed by me will not work?, it was the continuation of your code after replacing zeros with infs. By the way when you said vice versa matrix has to be transposed that’s what permute() does , by the way min() function can be used to find the minimum along the specific dimension.If the dimension of A is dynamic then
permute(A,[2 1 3:ndims(A)])

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