Vectorized gradient based optimizers

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mahmoud tarek
mahmoud tarek el 30 de Dic. de 2019
Comentada: Matt J el 15 de En. de 2020
Is there any vectorized gradient based optimizer available ? Even outside matlab ?

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Matt J
Matt J el 31 de Dic. de 2019
Editada: Matt J el 31 de Dic. de 2019
As long as you are willing to supply the gradient, you can vectorize the minimization of N objectives,
by applying fminunc to the consolidated objective,
or analogously with fmincon if each problem has constraints.
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mahmoud tarek
mahmoud tarek el 15 de En. de 2020
yes, i can and i am trying now to provide the gradients (if possible) of my simulations function.
Do you have any documents or ideas on how to do that ?
Matt J
Matt J el 15 de En. de 2020
The chain rule,
If an analytical calculation is too difficult, you can also try your own vectorized finite difference method to find the Jacobian of your simulation function. From that, it should be easier to find the total derivative of your objective using the chain rule.
delta = small_number;
Y0=simulation(X); %
Jacobian=nan(size(X)); %to hold the result
for i=1:11
Xp=X;
Xp(:,i)=Xp(:,i)+delta;
Yp=simulation(Xp);
Jacobian(:,i)=(Yp(:,i)-Y0(:,i))/delta;
end

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