vectorize a for loop
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Hello Community,
i need ur help, to speed up a routine.
i have n points in space and i need the distances between all points.
Here is the primitve script: ( n is normally some in the range of 1e5...)
n = 8;
xc = rand(n,1);
yc = rand(n,1);
r = zeros(n);
for i = 1:n
for j=1:n
if i~=j
r(i,j) = sqrt((xc(i)-xc(j))^2 + (yc(i)-yc(j))^2);
end
end
end
I know that the matrix r is symmetic so i need only to compute half of the elements. (This speed up to 50%)
n = 8;
xc = rand(n,1);
yc = rand(n,1);
r = zeros(n);
for i = 1:n
for j=1:n
if and(i~=j,i<j)
r(i,j) = sqrt((xc(i)-xc(j))^2 + (yc(i)-yc(j))^2);
end
end
end
toc
r = (r+r');
But it is possible to vectorize the whole routine?
Maybe with permute and a adjoint matrix which could be vectorised A(:) = ....
Thank you in Advance!
2 Comments
Matt J
on 21 Apr 2021
Edited: Matt J
on 21 Apr 2021
( n is normally some in the range of 1e5...)
That sounds like a non-starter. The result would consume 37 GB in single floats. Even if you had this much free RAM, I suspect computing the matrix is not the most efficient approach for your application.It just doesn't sound like a reasonable thing to have to do.
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