my matrix is not square, although i think it is?

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Alex
Alex on 8 Aug 2011
I have set the following least squares method up quickly. I know i am using a nonlinear technique to solve a linear problem, however i just wanted to get it working, before i choose a linear method but aparently my matrices are not square:
i = [1 2 3 4 5];
ti = [2 5 7 11 14];
Estimates3=fminsearch(@functionnumbers,1,options,T0,theta_f);
and the function code
function fnumbers = functionnumbers(params3,i,ti)
k = params3;
v0 = 1 + (k/2)*ti(1)^2/ti(1)
fnumbers = sum(ti.^2*(i/ti-(v0-(k/2)*ti))^2);
cheers
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Sean de Wolski
Sean de Wolski on 8 Aug 2011
Make sure you're deleting old values too!
Alex
Alex on 8 Aug 2011
Sorry i posted that line incorrectly should have been
Estimates3=fminsearch(@functionnumbers,1,options,i,ti);
in terms of deleting old values, where are you referring to?

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Accepted Answer

Walter Roberson
Walter Roberson on 8 Aug 2011
fminsearch() accepts at most 3 inputs, and the function passed to it must accept a single input. See http://www.mathworks.com/help/techdoc/ref/fminsearch.html
For information on how to do this properly, please read this
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Alex
Alex on 9 Aug 2011
So i'm not sure what the problem is in terms of "too many variables" but I have used this function before and passed it variables after the options before and it worked fine, at the moment when i run it i get the functionnumbers to display i and ti to make sure it recevies them and it does.
i have adjust the code. V0 does not need a matrix operator i dont think however fnumbers needs too:
v0 = (1 + (k/2)*ti(1)^2/ti(1))
fnumbers = sum(ti.^2*(i/ti-(v0-(k/2)*ti)).^2)
the error changes now from matrix must be square to inner matrix dimensions must agree. I tried transposing ti incase the problem was a pre multiplacation issue (matrix multiplication) but its not the case.
Walter Roberson
Walter Roberson on 9 Aug 2011
Are you truly wanting to do a _matrix division_ between i and ti ?? If not then you should be using ./ instead of /
Are you truly wanting to do a matrix multiplication between ti.^2 and the rest of the expression? If not, then you should be using .* instead of *

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More Answers (1)

Alex
Alex on 9 Aug 2011
So I have got it to run, I'm not sure why but breaking the equation into more equations seemed to work:
[code]function fnumbers = functionnumbers(k,i,ti)
v0 = (1 + (k/2)*ti(1)^2/ti(1)); Fitted_Curve = (v0*ti-(k/2)*ti.^2); Error_Vector = i - Fitted_Curve; fnumbers = sum(Error_Vector.^2);[/code]
calling it from
i = [1 2 3 4 5 6]; ti = [2.503 5.159 7.899 10.883 13.814 17.081];
Estimates3=fminsearch(@functionnumbers,0.004,options,i,ti)
however this isnt the most complicated problem, is there a better way to solve this because the value of k i am expecting for this data is about 0.03 but im getting 0.1 the equations non-linear because of the square, however is fminsearch overkill for this?
  2 Comments
Walter Roberson
Walter Roberson on 9 Aug 2011
In the original equation you had "i" divided by "ti", but in the new equations that division appears to have vanished. It does not appear to me that your old and new equations are equivalent, but it could be that I missed something.
Alex
Alex on 10 Aug 2011
Actually I missed something, Walter's answer was right. Thanks

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