Bisection method not returning any values.
古いコメントを表示
So, I've written the following code for the bisection method, however it doesn't seem to be returning any values.
function [r, n] = bisection(a,b,f,tol)
if (f(a)*f(b) > 0)
error('Invalid choice of interval');
end
r = 0;
n = 0;
while ((b - a)/2 > tol)
n = n + 1;
r = (a + b)/2;
if(f(r) == 0)
break;
elseif (f(a)*f(b) < 0)
b = r;
else
a = r;
end
end
I'm using it with inputs of (0,1,q,0.5) I also tried tol as 0.1 too. q is some anonymous function that I defined, in this case it's q(x) = 3x - 1. Like, I type the command Bisection(0,1,q,0.5) and it executes without returning an error but doesn't return any numerical values whatsoever. Any ideas why this is?
採用された回答
Works fine for me. It returns the wrong value, but you can fix that by changing f(a)*f(b) < 0 to f(a)*f(r) < 0.
5 件のコメント
the cyclist
2013 年 10 月 16 日
Your function has two outputs, so you want to call it with
[r,n] = Bisection(0,2,q,0.5)
David
2013 年 10 月 16 日
David
2013 年 10 月 16 日
No, there is no general algorithm for finding "all" roots of a general function without at least knowing in advance a lower bound on the spacing between the roots.
I assume, by the way, that this is just a homework exercise. In reality, you would never use your own home-brewed bisection algorithm. You would just use FZERO. So, there is no obvious rationale for giving this code more capabilities then the homework assignment requests.
その他の回答 (0 件)
カテゴリ
ヘルプ センター および File Exchange で MATLAB についてさらに検索
Translated by 
