Find argmin of function with unique vector
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Hi,
I want to solve the next problem:
For example, for 
and 
and I tried to do some things like:
x=[theta,1-theta];
x0 =[0.0001,0.0001];
fun = @(x)sum((x-y)./x);
x = fminsearch(fun,x0);
Any idea how to minimize vector with respect to this scalar?
I know I can just write it like that:
x0 =[0.0001,0.0001];
fun = @(x) (x-y(1))/x + ((1-x)-y(2))/x
x = fminsearch(fun,x0);
But there are more dimensions (then 2) in the original problem so it is impractical to do so.
Thanks!
3 Comments
infinity
on 24 Jun 2019
Hello,
What is "n" in the formula?
Since in your formula, 
, where 
is a vector.
, where is a vector. How can we understand 
?
? 
DM
on 25 Jun 2019
Hi,
N is the dimenstion of the problem and n is the n'th value of the vector.
In the example above N=2 and 
and 
and 
Kaustav Bhattacharya
on 25 Jun 2019
If you know n can you not use
x0 = ones(1,n)*0.0001
and then
x = fminsearch(fun,x0) ?
Accepted Answer
Matt J
on 25 Jun 2019
You need to write code that generates 
in vectorized form. Then the rest is easy. The correct way to code your original example is,
in vectorized form. Then the rest is easy. The correct way to code your original example is,f= @(theta) [theta,1-theta];
objective = @(theta)sum((f(theta)-y)./f(theta));
x = fminsearch(objective,0.0001);
More Answers (1)
Hello,
Here is an example that you can refer
I find mininum of function 
, the initial guess is given by 
. The code could be like that
, the initial guess is given by . The code could be like thatclear
N = 5;
fun = @(t) norm(t,2);
x0 = 1+zeros(1,N);
x = fminsearch(fun,x0)
where I choose N = 5, but it can be changed.
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