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I have the equation ln(c)=-1/2k^2 * z^2 ,where y=ln(c) ,x=z^2 and a=-1/2k^2.

I want to estimate the a , so :

 a=polyfit(z.^2,log(abs(c)),1)

Because i have the (initial) equation c=exp(-z^2/2k^2), from above I am founding 2 values for a and now I want to estimate k (k1), so i do:

k1=sqrt(-1/2*a(1))

Now, i want to predict c and error using values of k1 and z.So ,i do :

c_predict=polyval(a,z)
c1=exp((-z.^2)/2*k1^2)
error=c_predict-c1

or just :

c1=exp((-z.^2)./2*s1^2)
error1=c-c1

What is right?

error=c_predict-c1

or

error=c-c1
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Question is not on topic for SO. It seems to me to be more appropriate for math.SE. –  zplesivcak Feb 9 '13 at 20:23

1 Answer 1

up vote 0 down vote accepted

Try looking into the norm command:

relative least squares error = norm(y-y',2)/norm(y)

y is your original signal and y' is the signal your measuring the error of.

See here

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