linsolve time-consuming

4 views (last 30 days)
Fikret Dogru
Fikret Dogru on 22 Jun 2019
Commented: Torsten on 27 Jun 2019
Hello all,
Here is my code and it is running more than 2 days. Z1, Z2, A, B, D and E are known 1 X 1.000.000 vector and C and F are constant values 1X1. I am trying to estimate X and Y but the program is still working. Is there any chance to find when will it finish with these matrices? Any help will be great. Thanx all.
syms X Y
Z1=X.*A-Y.*B*C;
Z2=X.*D-Y.*E*F;
[A,B]=equationsToMatrix([Z1,Z2], [X,Y]);
X = linsolve(A,B);

Sign in to answer this question.

Accepted Answer

Stephan
Stephan on 23 Jun 2019
Get rid of symbolic calculation - this makes code very slow and solve numeric:
clear X Y
% This works if your values are of size 1 x 1.000.000
X = linsolve([A', (-B.*C)'; D.' (-E.*F)'],[Z1'; Z2'])
  5 Comments
Show 3 older comments
Stephan
Stephan on 27 Jun 2019
Edited: Stephan on 27 Jun 2019
You should thank Torsten - but here is an explaination of what he did:
syms X Y A B C D E F Z1 Z2
eq(1) = Z1==X.*A-Y.*B*C;
eq(2) = Z2==X.*D-Y.*E*F;
sol = solve(eq,[X,Y]);
sol.X
sol.Y
Torsten
Torsten on 27 Jun 2019
@ Fikret Dogru:
The method is called "Cramer's rule".

Sign in to comment.

More Answers (0)

Categories

Find more on Linear Algebra 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!