Why do I get this error: A(I): index out of bounds; value 2 out of bound 1 (line 13)

8 views (last 30 days)
Mohanad Arafae
Mohanad Arafae on 13 Nov 2016
Answered: Roger Stafford on 14 Nov 2016
function root=newtonmethod(f,fprime,x0,maxiter,tol)
%input:
% f string that names the function f(x).
% fprime string that names the derivative f’(x).
% x0 the initial point
% tol is the termination tolerances
% maxiter the maximum number of iteration
x(1) = x0;
n = 2;
while abs(f(x(n))) > tol & n < maxiter
m = n+1;
x(m) = x(n) - f(x(n))/fprime(x(n));
if x(n) - f(x(n))/fprime(x(n)) < 0
root = x(n);
break;
end
end
root = x(n)

Sign in to answer this question.

Answers (2)

Daniel kiracofe
Daniel kiracofe on 13 Nov 2016
Because the very first time the while statement's condition is checked, n=2, and x is a vector that has 1 element. You are asking to evaluate the 2nd element of an array that has only 1 element. You probably want to start with n=1 instead of n=2.
Roger Stafford
Roger Stafford on 14 Nov 2016
Besides the error that Daniel gives you, another error is that ’n’ never changes within your while-loop, so the (corrected) loop would never stop unless you just happened to start with the right value.

Categories

Find more on Mathematics in Help Center and File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!