Effacer les filtres
Effacer les filtres

am trying to get the non zero minimum values from all the rows. Am getting the correct minimum values but the indices for minimum values for the first and second rows are wrong. Suggest me where I am wrong

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akash sonnad
akash sonnad le 23 Avr 2018
Commenté : KSSV le 23 Avr 2018
C=[0,10,8,9,7;10,0,10,5,6;8,10,0,8,9;9,5,8,0,6;7,6,9,6,0]; j=5; for n=1:j e=C(n,:); [M(n),I(n)]=min(e(e>0)); end disp(M); disp(I);

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KSSV
KSSV le 23 Avr 2018
matC=[0,10,8,9,7;10,0,10,5,6;8,10,0,8,9;9,5,8,0,6;7,6,9,6,0];
matC(matC==0) = NaN ;
j=5;
for n=1:j
e=matC(n,:);
[M(n),I(n)]=min(e);
end
disp(M);
disp(I);
  2 commentaires
akash sonnad
akash sonnad le 23 Avr 2018
It's working, Thank you. Can you please elaborate on the code matC (matC == 0) = NaN;
KSSV
KSSV le 23 Avr 2018

You are picking up minimum value greater then 0.....so that line replaces all zeros in the matrix with NaN. e(e>0) picks only non-zero values..and gives minimum, this will give different index when compared to original matrix.

Note: You need not to use loops for this...you can striagh away use min on matrix.

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Plus de réponses (1)

Stephen23
Stephen23 le 23 Avr 2018
Modifié(e) : Stephen23 le 23 Avr 2018
There is no point in wasting your time writing ugly for loops, because the MATLAB function min does exactly what you want already, much more efficiently than anything you could write using a loop:
>> C = [0,10,8,9,7;10,0,10,5,6;8,10,0,8,9;9,5,8,0,6;7,6,9,6,0];
>> C(C==0) = NaN; % convert zeros to NaN
>> [val,idx] = min(C,[],1)
val =
7 5 8 5 6
idx =
5 4 1 2 2
And that is all. MATLAB is a neat high-level language, so it should not be written as if it was an ugly low-level language like C++.

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