How to evaluate a function?

1 view (last 30 days)
Max
Max on 9 Feb 2016
Edited: Stephen23 on 9 Feb 2016
Hello,
I would like to find values for three parameters that satisfy the following equation: R>=value (e.g.2)
R is the likelihood-ratio: L/L_LK
This is my source-code:
1a = [3850,4340,4760];
2a = [3300,3720,4080];
3a = [2750,3100,3400];
beta_hat =13.502152;
B_hat = 1861.328876;
C_hat=39.624407;
syms B C beta positive
L=1;
for j=1:length(1a)
L=L*((beta/(C*exp(B/393)))*((data_test_1a(j)/(C*exp(B/393)))^(beta-1))*exp(-((data_test_1a(j)/(C*exp(B/393)))^beta))*(beta/(C*exp(B/408)))*((data_test_2a(j)/(C*exp(B/408)))^(beta-1))*exp(-((data_test_2a(j)/(C*exp(B/408)))^beta))*(beta/(C*exp(B/423)))*((data_test_3a(j)/(C*exp(B/423)))^(beta-1))*exp(-((data_test_3a(j)/(C*exp(B/423)))^beta)));
end
L_LK= double(subs(L,[B,C,beta],[1861.328876,39.624407,13.502152]));
R=L/L_LK;
One possibility to do that is to hold two parameters constant and vary the 3rd one and so on.
But I don´t really know how to realize it in matlab.
Does somebody have an idea? Thanks in advance for all solutions.

Sign in to answer this question.

Answers (1)

Explorer
Explorer on 9 Feb 2016
1a = [3850,4340,4760]
It's a row vector and you can't name a row with "1a". Yes, you use a1.
So replace 1a with a1, 2a with a2 and 3a with a3.
  3 Comments
Show 1 older comment
Explorer
Explorer on 9 Feb 2016
Edited: Explorer on 9 Feb 2016
You welcome. If I have answered your question, please accept my answer.
Max
Max on 9 Feb 2016
Unfortunately, that´s not the answer.Sorry.

Sign in to comment.

Categories

Find more on Loops and Conditional Statements 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!