faster winner takes all

12 Ansichten (letzte 30 Tage)

Dimitris am 6 Nov. 2011

0
Verknüpfen

Direkter Link zu dieser Frage

https://de.mathworks.com/matlabcentral/answers/20466-faster-winner-takes-all

I 've made an mplementation of the winner takes all rule (WTA) using a for loop (code bellow). But now I want to "harden" ~8 million values and the loop is very slow (several hours). Any idea for a faster WTA implementation? In detail, if we have a matrix with values in [0,1] we need to replace them with 1 for > 0.75 or with 0 for < 0.75.

function H = wta(S)
% Winner Takes All (WTA) rule 
% returns the hard values for S
%
[row,col] = size(S);
for r = 1:row
    if S(r,1) > 0.75
       H(r,1) = 1;
    else
       H(r,1) = 0;
    end
end

3 Kommentare
1 älteren Kommentar anzeigen1 älteren Kommentar ausblenden

Dimitris am 6 Nov. 2011

Correct, it is just that 0.75 is so arbitrary that it does not matter which way is goes. You are correct mathematically though.

Walter Roberson am 6 Nov. 2011

For 0.75 exactly, as you do not define any replacement conditions, the implication would be that those locations should not be replaced, leaving them 0.75 .

Melden Sie sich an, um zu kommentieren.

Melden Sie sich an, um diese Frage zu beantworten.