fmincon: proble defining the function

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Vittoria Iannotta
Vittoria Iannotta 2023년 3월 9일
댓글: Vittoria Iannotta 2023년 3월 10일
Hi, I am trying to solve a non linear constrained optimization. I report the few lines of code below:
%Here are the functions I use to define the objective function and the constraints
function Objective = definefunction(x)
comp1 = double(rand(180,3))
X = reshape(x,3,3);
comp2 = comp1*X;
comp3 = comp2(1:end, 3);
Objective = 0.5*comp3'*comp3/size(comp3,1);
end
function [c,ceq] = constraints(x)
Betas= rand(1,3)
c = [];
ceq(1) = x(1)^2 + x(4)^2 + x(7)^2;
ceq(2) = x(2)^2 + x(5)^2 + x(8)^2;
ceq(3) = x(3)^2 + x(6)^2 + x(9)^2;
ceq(4) = x(1)*x(2) + x(4)*x(5) + x(7)*x(8);
ceq(5) = x(1)*x(3) + x(4)*x(6) + x(7)*x(9);
ceq(6) = x(2)*x(3) + x(5)*x(6) + x(8)*x(9);
ceq(7) = x(4)*Betas(1,1) + x(5)*Betas(1,2) + x(6)*Betas(1,3);
ceq(8) = x(7)*Betas(1,1) + x(8)*Betas(1,2) + x(9)*Betas(1,3) ;
end
% define the objective function
f=definefunction(x);
% define constraints
nonlcon = @constraints;
% other inputs to the fmincon function
A = []; % No other constraints
b = [];
Aeq = [];
beq = [];
lb = [1., 1., 1., 0., 0., 0., 0., 0., .0];
ub = [1., 1., 1., 0., 0., 0., 0., .0, .0];
x0 = [0., 0., 0., 0., 0., 0., 0., .0, .0];
%implement
x = fmincon(f,x0,A,b,Aeq,beq,lb,ub,nonlcon)

채택된 답변

Torsten
Torsten 2023년 3월 9일
편집: Torsten 2023년 3월 9일
f = @definefunction;
instead of
f=definefunction(x);
And you cannot use random inputs on each call - thus
comp1 = double(rand(180,3))
and
Betas= rand(1,3)
within definefunction and nonlcon is not allowed because "fmincon" is a deterministic solver.
And the constraints
ceq(1) = x(1)^2 + x(4)^2 + x(7)^2;
ceq(2) = x(2)^2 + x(5)^2 + x(8)^2;
ceq(3) = x(3)^2 + x(6)^2 + x(9)^2;
immediately yield x(1) = x(2) = ... = x(9) = 0.
Maybe you could explain in your own words what problem you are trying to solve. It cannot be deduced from the code you provided.
  댓글 수: 2
Walter Roberson
Walter Roberson 2023년 3월 9일
Same with the betas in the constraints. The only routine that might work with stochastic systems is patternsearch (at least until you get into stochastic differential equations.)
Vittoria Iannotta
Vittoria Iannotta 2023년 3월 10일
Thanks for the hints, I will try and come back. ok sorry for the rand(). I did it because in the routine I would have actual values coming from a regression, I did not want to overload the example. But you are right that written like this does not make sense.

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