A lot of eigenvalues

3 views (last 30 days)
tomas
tomas on 23 Aug 2011
Hello everybody!
I have many 3x3 matrixes (e.g. 3 000 000 matrixes) and I need to compute their eigenvalues. Nowadays, I'm doing it in loop having 3 000 000 counts, but this way is very time consuming. I'd like to know if there is any possibility how to replace the loop by some matrix operation. For example, I can make a 3x3x3000000 matrix from which I would get the eigenvalues, somehow?
Can anybody help with this?
Thank you in advance,
Tom
  1 Comment
Oleg Komarov
Oleg Komarov on 23 Aug 2011
c(1:3e6) = {rand(3)};
tic
egv = cellfun(@eig,c,'un',0);
toc
23 seconds to me it seems fair.

Sign in to comment.

Sign in to answer this question.

Accepted Answer

Doug Hull
Doug Hull on 23 Aug 2011
This from Oleg seems like an answer, not a comment. I prefer to see questions in the 'answered' state.
c(1:3e6) = {rand(3)};
tic
egv = cellfun(@eig,c,'un',0);
toc
23 seconds to me it seems fair.
  3 Comments
Show 1 older comment
tomas
tomas on 24 Aug 2011
Olegs answer works. Although I don't understand last two input parameters of cellfun function - 'un',0. Can you tell me what they mean, please?
Thank you guys.
Daniel Shub
Daniel Shub on 24 Aug 2011
They are shorthand for 'uniform' and false

Sign in to comment.

More Answers (1)

Daniel Shub
Daniel Shub on 24 Aug 2011
While the loop is ~20% slower on my machine then using cellfun, the answer is in a double array and not a cell array. There may be hidden costs of getting the information from the cell array into a usable form.
N = 3e6;
x = rand(3, 3, N);
tic
egv = zeros(3, N);
for ii = 1:N
egv(:, ii) = eig(x(:, :, ii));
end
toc

Categories

Find more on Loops and Conditional Statements in Help Center and File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!