Finding more than one solution for Matrix Multiplication (Ax = b)

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Clark
Clark on 15 Sep 2012
For some A and b, there are infinite solutions.
Currently, I only know one way to solve for x, which solves for only 1 x. That is, A\b. How do I find more than 1 solution? Is there any I can find specifically 2 solutions?
Thanks, Clark

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Accepted Answer

Wayne King
Wayne King on 15 Sep 2012
Edited: Wayne King on 15 Sep 2012
For example:
A = [1 2; 1 2];
b = [3 3]';
x = pinv(A)*b; % one solution
A*x
% the nullspace of A has dimension 1. So just add that vector
% to the solution to get another solution
y = x+null(A);
A*y % another
Yet another
z = 2*null(A);
w = x+z;
A*w
  1 Comment
Clark
Clark on 15 Sep 2012
Ah! Thanks! I was trying to do A\b + null(null(A)) which obviously wasn't working. So, instead, scalar * null(A). Thanks!

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More Answers (3)

Wayne King
Wayne King on 15 Sep 2012
Yes, you can use null() to find a vector from the null space
Clark
Clark on 15 Sep 2012
Edited: Clark on 15 Sep 2012
I don't understand how to use null for this purpose. If I use null(A\b) for example, the answer is simply an empty 1x0 matrix. Could you please elaborate? Sorry, I'm a beginner. I don't see what null would have to do with this. I'm trying to figure out how to use it anyhow.
Thank you.
  1 Comment
Wayne King
Wayne King on 15 Sep 2012
No, you just use null() on the matrix. null(A) then you get a basis for the nullspace of A, you can add any linear combination of vectors from the nullspace of A to a particular solution and you get a different solution of the linear system

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Clark
Clark on 15 Sep 2012
Okay, so, A\b + null(A) gives me another solution.
But, can I find a third solution? I was expecting there may be some function which accepts an argument to return a certain number of solutions.
Thanks.
  1 Comment
Wayne King
Wayne King on 15 Sep 2012
All the solutions will be a particular solution plus linear combinations of the nullspace. You can easily write a function that gives you a specified number of linear combinations.

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