problem by using symengine

4 views (last 30 days)

Basem Nouh on 14 Sep 2020

0
Link

Direct link to this question

https://nl.mathworks.com/matlabcentral/answers/593194-problem-by-using-symengine

Edited: Walter Roberson on 14 Sep 2020

Hallo,

i am trying to program this code but when i try to use jacobian by A matrix i became wrone msg that error by using symengine

but it works with B matrix !!

the msg also says "unable to convert experssion into double array"

%aufgabestellung3 
clear all;clc;close all;
L=[0 1 4 9 0 1 2 3]';[n,~]=size(L);
r=4; n=8; u=2;
Lsym=sym('Lsym',[n,1]);
v0=zeros(n,1); vsym=sym('vsym',[n,1]);
X0=[0 0]';
[u,~]=size(X0);
Xsym=sym('Xsym',[u,1]);
r=4;
%sto Modell
Qll=eye(n);
P=inv(Qll);
%funk Modell % Ansatz: L=[x;y]; 0=ax+b-y; X=[a b];
%  A=[x ones(r,1)]; B=[X0(1,1)*eye(r) -1*eye(r)];
for i =1:r
f(i,1)=Xsym(2,1)+Xsym(1,1)*(Lsym(r+i,1)+vsym(r+i,1))-(Lsym(i,1)+vsym(i,1));
end
it=0;abr=1;
while it<10 & abr>10^-20
B=double(subs(jacobian(f,vsym),[vsym;Xsym],[v0;X0]));
% A=[x+v0(1:r,1) ones(r,1)]
A=double(subs(jacobian(f,Xsym),[vsym;Xsym],[v0;X0]));     % here i become the wrong !
w0=double(subs(f,[Lsym;Xsym],[L;X0]));
   w=-B*v0+w0
% Loesungsalgorithmus (Niemeier S. 178 Gl. 5.2.30)
    iBQB=inv(B*inv(P)*B');  % Substitution
    Q22=-inv(A'*iBQB*A);
    Q12=-iBQB*A*Q22;
    Q21=Q12';
    Q11=iBQB*(eye(r)-A*Q21);
    
    % Gleichung 5.2.31
    k=-Q11*w;
    xd=-Q21*w;
    Xd=X0+xd
    Qll=inv(P);
    v=Qll*B'*k;
    Ld=L+v;
    wd=zeros(r,1)
    wd=double(subs(f,[vsym;Xsym],[v;Xd]));
    abr=max(abs(wd))
    it=it+1
    X0=Xd
end

2 Comments
Show NoneHide None

Walter Roberson on 14 Sep 2020

Your code is assuming that the jacobian of f with respect to Xsym gets rid of all Lsym variables, but it does not. You have sub-expressions that are Lsym times something involving Xsym variables, so the Lsym remain in the jacobian.

Basem Nouh on 14 Sep 2020

Edited: Walter Roberson on 14 Sep 2020

Open in MATLAB Online

i edited it i have to insert L as a vector not as sympolic variable , i have no idea why

but the Prof at the uni didnt use jacobian for the Partial differentiation he inserted the both matrix A,B direct

A=[x+v0(1:r,1) ones(r,1)]
    B=[X0(1,1)*eye(r) -1*eye(r)]

but i thought by jacobian or using diff its faster and safer

but there is a problem by Partial differentiation

by me B at the final is

B =

0 0 0 0 -1 0 0 0

0 0 0 0 0 -1 0 0

0 0 0 0 0 0 -1 0

0 0 0 0 0 0 0 -1

by prof B =

3.2418 0 0 0 -1.0000 0 0 0

0 3.2418 0 0 0 -1.0000 0 0

0 0 3.2418 0 0 0 -1.0000 0

0 0 0 3.2418 0 0 0 -1.0000

A =

0 1

1 1

2 1

3 1

A =

0.3838 1.0000

0.7524 1.0000

1.6843 1.0000

3.1795 1.0000

it means there is no correction happened

Answers (0)

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!