Re: Integración por Residuos

Yo personalmente no puedo ayudarte, pues no conozco el método de Integración por Residuos, pero mirando en Internet he encontrado esto, mira a ver si te sirve:
Consider the contour integral of dz/ (1+z^3), where C is the contour
that (1) starts along the x-axis from 0 to R>1, (2) next, goes along a circular arc of radius R from the x-axis to an angle of 2pi/3, and (3) connects back to the origin with a line segment.

(Why the wedge contour? The integrand is not even, so that I can use an easier to manage classic semicirular one!)

So, int(along C) dz/ (1+z^3) =
int(x-axis 0 to R) + int(arc) + int(along line t = 2 pi/3).

(i) int(along C) dz/ (1+z^3): The integrand is analytic everywhere
in and on C except at the simple pole at z = e^(pi i/3).

At this singularity, the function has residue
lim(z->e^(pi i/3)) (z - e^(pi i/3))/ (1+z^3) =
lim(z->e^(pi i/3)) 1/(3z^2) = 1/(3 * e^(2pi i /3))

So, by the residue theorem, this integral has value 2 pi i * (residue) = 2 pi i /(3 * e^(2pi i /3)).

(2) int(x-axis 0 to R) = int( 0 to R) dx/ (1+x^3).

(3) As R--> infinity, direct limit compuations show that this int(arc) --> 0.

(4) Parameterise this line as z= -x e^(2pi i/3), x = 0 to R.
So, int(along line t = 2 pi/3)
= int(0 to R) dx/ (1+x^3)
= -e^(2pi i/3) * int(0 to R) dx/ (1+x^3)

In conclusion, as R--> infinity, we get

2 pi i/(3*e^(2pi i /3)) =
(1- e^(2pi i/3)) int(0 to infinity) dx/ (1+x^3).

int(0 to infinity) dx/ (1+x^3)
= 2 pi i/[3*e^(2pi i /3)* (1- e^(2pi i/3))]
= 2 pi i/[3*(e^(2pi i /3) - e^(4pi i/3))]
= 2 pi /[3* sqrt(3)].

Es todo lo que puedo hacer, ojalá te sirva, saludos

Re: Integración por Residuos

Muchas gracias Alriga, perdoname por responderte tarde.
Mi error estaba en el comienzo, no se que me pasó pero puse que