How to evaluate a function?

조회 수: 1 (최근 30일)
Max
Max 2016년 2월 9일
편집: Stephen23 2016년 2월 9일
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.

답변 (1개)

Explorer
Explorer 2016년 2월 9일
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.
  댓글 수: 3
Explorer
Explorer 2016년 2월 9일
편집: Explorer 2016년 2월 9일
You welcome. If I have answered your question, please accept my answer.
Max
Max 2016년 2월 9일
Unfortunately, that´s not the answer.Sorry.

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