The following code contain the mentioned error . what to do ?

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mohammed elmenshawy
mohammed elmenshawy il 28 Dic 2016
Commentato: Walter Roberson il 29 Dic 2016
n=6;
phi1=0.3;
phi2=0.5;
seta=0.4;
z0=0.6;
s=2;
a=normrnd(0,(s)^2,n,1);
z=zeros(n,1);z0=0.4;z(1)=.3;
z(2)=phi1*z(1)+phi2*z0+a(2)-seta*a(1);
for i=3:n
z(i)=phi1*z(i-1)+phi2*z(i-2)+a(i)-seta*a(i-1);
end
summ=0;syms phi1 phi2 seta
for t=4:n
summ=summ+(z(t)-phi1*z(t-1)-phi2*z(t-2)+seta*a(t-1))^2;
end
L=((-n/2)*log(2*pi)-((n/2)*log(s^2))-((1/(2*s^2))*summ));
K = @(phi1,phi2,seta)(L);
Lfcn = @(b) K(b(1),b(2),b(3));
b0 = [0.3; 0.5; 0.4];
Roots = fsolve(Lfcn, b0)
Error using fsolve (line 269)
FSOLVE requires all values returned by functions to be of
data type double.

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Walter Roberson
Walter Roberson il 28 Dic 2016
Change
K = @(phi1,phi2,seta)(L);
Lfcn = @(b) K(b(1),b(2),b(3));
to
Lfcn = matlabFunction(L,'vars', {[phi1; phi2; seta]});
and change your fsolve call to
options = optimoptions(@fsolve,'MaxFunctionEvaluations', 1800, 'Algorithm', 'levenberg-marquardt');
Roots = fsolve(Lfcn, b0, options)
  2 Commenti
mohammed elmenshawy
mohammed elmenshawy il 29 Dic 2016
thank u very very very much . really good answer ,but what does 1800 mean in options
Walter Roberson
Walter Roberson il 29 Dic 2016
1800 means allow the function to be executed 1800 times. The function does not converge with the default 500 iterations; it needs more than 1700 iterations to converge.

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