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Hi everybody, i have a question about parfor using. I tried a classical example for parfor on my PC but i couldn't get gainly results. How ?
nmax=1000;
y = zeros(nmax,1);
tic
parfor n = 1:nmax
z = randn(n);
y(n) = max(svd(z));
end
toc
Results:
(nmax, pool size, time)
(500, 0, 12.51) (500, 2, 8.71) (500, 4, 5.16) That's OK.
(750, 0, 46.03) (750, 2, 38.65) (750, 4, 30.32) Maybe OK.
(1000, 0, 141.40) (1000, 2, 156.19) (1000, 4, 174.81) Why ?
Thanks for replies.

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 Akzeptierte Antwort

Laurens Bakker
Laurens Bakker am 7 Mär. 2012

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Hi Yildirim,
There is considerable overhead in gathering the data back into a single variable. I removed the assignments and that improves the situation.
nmax=1000;
y = zeros(nmax,1);
tic
parfor n = 1:nmax
max( svd( randn(n) ));
end
toc
Cheers,
Laurens

Weitere Antworten (1)

N. Yildirim
N. Yildirim am 17 Mär. 2012

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Hi Laurens,
thanks a lot for your reply. It's also very logical to me. But I havent still time saving. Nothing has changed :(
Cheers, Yildirim

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