using fzero to find root of nonlinear equation

조회 수: 4 (최근 30일)
endah
endah 2012년 10월 5일
Dear Matlab user,
I try to find root of highly nonlinear equation as in
T=1;
r=0.1;
d=0.3;
sigma=0.2;
p=5545.17744447956;
b=(r-d-0.5*(sigma^2))/(sigma^2);
b2=b^2;
q1=-b+sqrt(b2+(r+p)*(2/sigma^2));
q2=-b-sqrt(b2+(r+p)*(2/sigma^2));
x=fzero(@(x) x.^q2*(r+p-r.*q1+d.*q1)./q1./(r+p)./(d+p)+ x.*d.*(1-q1)./(p.^q2)./q1./(d+p)+ r./(p.^(1+q2))./(r+p),[0.01 10000],optimset('Display','off'));
but it doesn't work. Would anyone help me with this ? Thanks alot.
Regards,
Endah
  댓글 수: 2
Matt J
Matt J 2012년 10월 5일
편집: Matt J 2012년 10월 5일
You have some expressions in there that aren't finite:
>> d.*(1-q1)./(p.^q2)./q1./(d+p)
ans =
-Inf
>> r./(p.^(1+q2))./(r+p)
ans =
Inf
Also q1 and q2 are very large exponents. That's going to create numerical issues.
endah
endah 2012년 10월 10일
I have checked that. Yes you're right Matt. Thanks.. I have to fix the formula.

댓글을 달려면 로그인하십시오.

이 질문에 답변하려면 로그인하십시오.

채택된 답변

Matt Fig
Matt Fig 2012년 10월 5일
To highlight what Matt J said in a comment, you have a problem with your function definition:
F = @(x) x.^q2*(r+p-r.*q1+d.*q1)./q1./(r+p)./(d+p)+ x.*d.*(1-q1)./(p.^q2)./q1./(d+p)+ r./(p.^(1+q2))./(r+p);
x = .1:.01:1000; % The range over which you are looking for a root.
all(isnan(F(x))) % F is not-a-number everywhere on this range!
ans =
1
  댓글 수: 1
endah
endah 2012년 10월 10일
편집: endah 2012년 10월 10일
Yes, the value is infinite everywhere , seems the problem is in my formula..Thanks !

댓글을 달려면 로그인하십시오.

추가 답변 (0개)

카테고리

Help CenterFile Exchange에서 Systems of Nonlinear Equations에 대해 자세히 알아보기

태그

Community Treasure Hunt

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

Start Hunting!

Translated by