1 iteration in fsolve: new x and no more
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I want to use fsolve to only use one iteration: get the Jacobian, get x1 and done. However when test the code below, which tries to find the zero of x^2, i see the following:
-iteration 0, 2 function evaluations: it seems f(x0) and 1 for finite difference
-iteration 1, 2 function evaluations: it seems f(x1) and 1 for finite difference
I do not want the last two evaluations. Is this possible?
I mean, this doubles the computation time, but it adds nothing for me. Especially since the Jacobian that is reported is the jacobian at x0 (not at x1). If it would at least give me the jacobian at x1 as output i could calculate the next iteration myself.
The solution would to program a similar routine myself, but I rather use fsolve (i also want to use JacobPattern for example).
clear all;
clc;
fun_res = @(xx)xx.^2;
x0 = 1;
ex_fl = -10;
iter = 0;
while ex_fl < 1 && iter < 100
iter = iter+1;
%[xx_it(iter,1),res(iter,1),ex_fl,~,jac(iter,1)] = fsolve(fun_res,x0,optimoptions(@fsolve,'Display','iter','MaxIterations',1));
[xx_it(iter,1),~,ex_fl] = fsolve(fun_res,x0,optimoptions(@fsolve,'Display','iter','MaxIterations',1));
x0 = xx_it(iter);
end
2 件のコメント
Matt J
2021 年 3 月 9 日
If it would at least give me the jacobian at x1
I don't know why you think it isn't. The documentation states that the Jacobian should that at the "solution".
採用された回答
Matt J
2021 年 3 月 9 日
編集済み: Matt J
2021 年 3 月 9 日
One option is to use fsolve just to get the Jacobian and then generate x1 yourself. This gives you access to JacobPattern and all the other Jacobian calculation features that fsolve offers.
To do so, replace your objective function f(x) with f(x)-f(x0), where x0 is thte initial point. Note that this does not change the Jacobian. Because x0 is a root of the modified objective, fsolve will return x0 and its Jacobian as output in zero iterations. Example:
fun=@(x) x.^2/2;
options=optimoptions(@fsolve,'MaxIter',1);
x0=rand(5,1);
f0=fun(x0);
[x,fval,ef,stats,JacobianNumerical]=fsolve( @(x)fun(x) - f0 ,x0,options);
JacobianNumerical,
JacobianAnalytical=diag(x0)
Also, it will do this with no extra Jacobian calculations, as seen from,
stats
6 件のコメント
その他の回答 (1 件)
Matt J
2021 年 3 月 9 日
The solution would to program a similar routine myself, but I rather use fsolve (i also want to use JacobPattern for example).
You could also use an existing routine from the File Exchange, like this one,
https://www.mathworks.com/matlabcentral/fileexchange/13490-adaptive-robust-numerical-differentiation
It wouldn't be so difficult to adapt the routine to work with a JacobPattern.
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