vector to repeated matrix multiplication

22 Feb 2011
6 Answers
Answer Accepted
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1 vote

Hi all.
Just wanted to find a non loop way of computing the following operation.
A = [1 2; 3 4], V = [ 1 2 3]
compute Y = 1*A + 2*A + 3*A = 1*[1 2; 3 4] + 2*[1 2; 3 4] + 3*[1 2; 3 4] = [6 12; 18 24]
i.e. each element of V times A then sum up each of these matrices
many thanks!

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 Accepted Answer

Matt Fig
Matt Fig on 22 Feb 2011

1 vote

One approach:
sum(bsxfun(@times,A,reshape(V,1,1,3)),3)

More Answers (5)

Matt Tearle
Matt Tearle on 22 Feb 2011

1 vote

Not being able to think up a more elegant solution off the top of my head, how about
reshape(repmat(A(:),1,3)*(V'),2,2)
Or, more generally and cryptically,
reshape(repmat(A(:),size(V))*(V'),size(A))

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Fred
Fred on 22 Feb 2011
Hi Matt, Many Thanks! Seems like for than one way to skin a cat.

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Bruno Luong
Bruno Luong on 22 Feb 2011

1 vote

v1 = [1 2 3]
v2 = [4 5 6]
A = [1 2; 3 4]
v2(2,:) = -1
P=sum(bsxfun(@times,v1,v2),2)
P(1)+P(2)*A % *Not* polynomial of A
Fred
Fred on 22 Feb 2011

0 votes

OK, one last one which is just an extension of this one.
suppose I have v1 = [1 2 3], v2 = [4 5 6], and A = [1 2; 3 4]
I want to eliminate a loop, bottleneck in my code of course :) so want to from the following
1*(4 - A) + 2*(5 - A) + 3*(6 - A) = [26 20; 14 8]
many thanks!
Cheers, Fred
Fred
Fred on 22 Feb 2011

0 votes

actually, figured it out. Thank you both again for your help!
A1 = bsxfun(@minus,reshape(v2,1,1,3),A);
sum(bsxfun(@times,reshape(v1,1,1,3),A1),3);
a similar method can be used with the repmat command like matt posted above. BTW, which is faster? repmat bs bsxfun?
Cheers, Fred

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Paulo Silva
Paulo Silva on 22 Feb 2011
You can find that out using tic and toc
Matt Fig
Matt Fig on 22 Feb 2011
I suspect the BSXFUN method will be faster for smaller arrays, and REPMAT will be faster for larger arrays. For even more speed, indexing instead of REPMATing can often work magic.
Fred
Fred on 22 Feb 2011
Hi Matt, can you give an example of indexing for this problem? I am not familiar with it.
Matt Fig
Matt Fig on 22 Feb 2011
Sure, see below.

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Matt Fig
Matt Fig on 22 Feb 2011

0 votes

On my machine, this outputs: 3.1 2.2 1
function [] = compare_bsx()
% Compare BSXFUN, REPMAT and indexing.
T = [0 0 0];
N = 40; % The array sizes. Change this to see if the fastest changes
% with array size. It will.
for ii = 1:300
mA = ceil(rand*N); % Make the arrays up to size N.
nA = ceil(rand*N);
nV = ceil(rand*N);
A = round(rand(mA,nA)*100);
V = round(rand(1,nV)*100);
tic
E = sum(bsxfun(@times,A,reshape(V,1,1,length(V))),3);
T(1) = T(1) + toc;
tic
E2 = reshape(repmat(A(:),size(V))*(V'),size(A));
T(2) = T(2) + toc;
tic
E3 = A(:);
E3 = E3(:,ones(length(V),1,'single'));
E3 = reshape(E3*(V.'),size(A));
T(3) = T(3) + toc;
end
T/min(T) % The 1 is the quickest

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Fred
Fred on 22 Feb 2011
wow! 2 or 3x's faster! I'll give it a go. Many thanks again!

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Fred
Fred
on 22 Feb 2011

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