What are solver best settings for my non linear equations?

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Javier
Javier on 3 Sep 2019
Hello,
I have a set of non-linear equations that I would like to solve using fsolve, shown below in WandG function. Solver solutions are far away from the ones I would expect, I am expecting something alike x(1) = 10 and x(2)=0.11. Therefore, I would be glad if someone could give me some better directions of how to set up the options, especially tolerances, of the solver.
So far, I am reading this matlab documentation and I think that I may have to rewrite my equations with a better scaling but I am not sure whether or not this will be sufficient.
Thanks in advance
% configuration of fsolve
options = optimoptions('fsolve','Display','iter-detailed','PlotFcn',@optimplotfirstorderopt);
options.StepTolerance = 1e-14;
%options.OptimalityTolerance = 1e-14
options.FunctionTolerance = 1e-14;
options.MaxIterations = 100000;
options.MaxFunctionEvaluations = 400;
options.Algorithm = 'levenberg-marquardt';%'levenberg-marquardt';%'trust-region'%
fun= @WandG;
x0 = [5.0000e+00;5.5366e-03];
% Solve the function fun
gw =fsolve(fun,x0,options);
% Function to be solved by fsolve
function F = WandG(x)
F(:,1) = ((((x(:,2)./10).*0.1).*(x(:,1)./100)).^2).*(8.9856e+01) +(( 7e-11 .* ( x(:,1)./100 ) ).^2).*( 1.7040e+08.^2.*(8.9856e+01) ) - (((x(:,2)./10).*0.1).*(x(:,1)./100));
F(:,2) = ((((x(:,2)./10).*0.1).*(x(:,1)./100)).^2).*( 8.0640e+00 - 1.7040e+08.*1.1e-7 * (1-x(:,1)./200) ) + (((x(:,1)./100).*7e-11).^2).*( 1.7040e+08.^2*(8.0640e+00 - 1.7040e+08*1.1e-7 .* (1-x(:,1)./200)) ) + 1.7040e+08.*(7e-11.*(x(:,1)./100) );
end

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