mid-point method Integration

Question

Tony le 4 Jan 2014

1
Lien

Utiliser le lien direct vers cette question

https://fr.mathworks.com/matlabcentral/answers/111430-mid-point-method-integration

Réponse apportée : Akshay satpute le 8 Oct 2017

Ouvrir dans MATLAB Online

Find numerically , to a 1/10000 accuracy, the values of the following definite integral:

0 to inf 1/(x^2+1) dx

use the mid-point method.

not show how to answer this i went about integrating it. My knowledge of the midpoint rule is limited.

the width of the sub intervals would be 1/10000 but how would you go about dividing it by infinity. I did the integration:

if true
  % code
syms x
a1= int(1/(x^2+1),x,0,inf)
end

2 commentaires
Afficher AucuneMasquer Aucune

John D'Errico le 5 Jan 2014

Why do you think you need an "if true" in there??????

Youssef Khmou le 5 Jan 2014

the instruction if true appeared because the poster clicked on "Code" button

Connectez-vous pour commenter.

Connectez-vous pour répondre à cette question.

Answer 1

Youssef Khmou le 5 Jan 2014

1
Lien

Utiliser le lien direct vers cette réponse

https://fr.mathworks.com/matlabcentral/answers/111430-mid-point-method-integration#answer_120050

Ouvrir dans MATLAB Online

Theoretically that integral equals pi/2, here is version, try to adjust it :

% MidPoint test integration
clear;
f=inline('1./((x.^2)+1)');
N=20000;
dx=1/1e+2;
F=0;
x1=0;
for t=1:N
  xi=(dx/2)+x1;
  F=F+dx*f(xi);
  x1=x1+dx;
end

% For verification try :

quad(f,0,1e+18)

2 commentaires
Afficher AucuneMasquer Aucune

Tony le 5 Jan 2014

thank you for your time question. N should equal 10000 no? and dx=1/100 right? just don't understand why dx is 1/100.

trying to understand since i don't fairly understand the midpoint rule. it should be something like ((b-a)/subintervals) * f(x1)+f(x2)...f(xn). I don't see how it fits in that general form

Youssef Khmou le 5 Jan 2014