Fmincon stopped because the size of the current step is less than the default value of the step size tolerance...How can I solve this?

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Ksss el 25 de Jun. de 2021

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https://es.mathworks.com/matlabcentral/answers/865235-fmincon-stopped-because-the-size-of-the-current-step-is-less-than-the-default-value-of-the-step-size

Comentada: Ksss el 25 de Jun. de 2021

This is my coding

U=[0.04854 0 0 0; 0.03483 0.03125 0 0; 0.02477 0.02223 0.04000 0; 0.01738 0.01550 0.02807 0.05263];
m=[1.6378; 1.1753; 0.8359; 0.5867];
n=4;
fun=inline('200*0.5.^0.8+1000*0.5.^0.8*x(1).^2+200*0.3.^0.8+1000*0.3.^0.8*x(2).^2+200*0.4.^0.8+1000*0.4.^0.8*x(3).^2+200*0.5.^0.8+1000*0.5.^0.8*x(4).^2');
x0=[1 1 1 1];
a=[5;5;5;5];
b=[200;200;200;200];
A=[-200 0 0 0; 0 -200 0 0; 0 0 -200 0; 0 0 0 -200];
B=inv(U)*(a-m);
LB=[0 0 0 0];
UB=[1 1 1 1];
[x,fval]=fmincon(fun,x0,A,B,[],[],LB,UB,[]);
x;
fval;
L=ones(4,1);
for i=1:n
    L(i)=200*(1-x(i));
end;
L;
L2=U*L+m;

But after running it, it shows

Local minimum possible. Constraints satisfied.
fmincon stopped because the size of the current step is less than
the default value of the step size tolerance and constraints are 
satisfied to within the default value of the constraint tolerance.
<stopping criteria details>