can anyone help me to find the error ?

1 vue (au cours des 30 derniers jours)
diadalina
diadalina le 28 Fév 2020
Commenté : diadalina le 28 Fév 2020
syms x1
esp=10^-10;
x0=0.5;
nmax=100;
df=@(x1)(diff(f(x1)))
[ xapp,it] = newton(x0,esp,f,df,nmax)
where:
function [ xapp,it ] = newton(x0,esp,f,df,nmax)
it=0;
i=1;
x=[];
x(1)=x0;
x(2)=x(1)-f(x(1))/df(x(1));
while abs(x(i+1)-x(i))>esp && it>=nmax
if df(x(i))==0
disp('division par zero est impossible')
break
end
i=i+1;
it=it+1;
x(i)=x(i-1)-f(x(i-1))./df(x(i-1));
end
xapp=x(it );
and
function y=f(x)
y=(x+2).^(2/5)
end
  2 commentaires
Guillaume
Guillaume le 28 Fév 2020
If you get an error, give us the full text of the error message you get, without any modification
If you don't get an error but the code doesn't behave as you expected, then please explain what it does and how it differs from what you expected.
diadalina
diadalina le 28 Fév 2020
df =
function_handle with value:
@(x1)(diff(f(x1)))
Not enough input arguments.
Error in f (line 2)
y=(x+2).^(2/5)
Error in tp4 (line 12)
[ xapp,it] = newton(x0,esp,f,df,nmax)

Connectez-vous pour commenter.

Connectez-vous pour répondre à cette question.

Réponses (1)

Guillaume
Guillaume le 28 Fév 2020
[ xapp,it] = newton(x0,esp,@f,df,nmax)
should probably fix the problem.
  3 commentaires
Afficher 1 commentaire plus ancien
Guillaume
Guillaume le 28 Fév 2020
Modifié(e) : Guillaume le 28 Fév 2020
Oh yes, your df function does not work at all. Since it calls diff it's guaranteed to return one less element than the input so you're always going to get this error and since df is given a scalar, diff is always going to return [].
It's not clear what that df function is trying to do.
diadalina
diadalina le 28 Fév 2020
the derivative function of f

Connectez-vous pour commenter.

Catégories

En savoir plus sur Dates and Time dans Help Center et File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!

Translated by