Proving the Convergence of a Math Function: A Step-by-Step Analysis

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In summary, the conversation is about showing that a given function tends to 0 as x approaches infinity. The hint provided suggests using an inequality to show this, but there is uncertainty about the second term and its behavior as N approaches infinity. Different software programs are used to try and prove the result, but there is still confusion about the role of N and x in the function. Ultimately, it is observed that the sum tends to 0 as n approaches infinity, but there is still a lack of understanding about how this happens.
  • #1
broegger
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Hi,

I have to show that the function

[tex]f(x) = \sum_{n=1}^{\infty}\frac1{x^2+n^2}[/tex]​

tends to 0 as [tex]x \rightarrow \infty[/tex], i.e. [tex]\lim_{x\rightarrow\infty}f(x) = 0[/tex]. How can I do this?

There is a hint that says I should use the inequality [tex] f(x) \leq \sum_{n=1}^N\tfrac1{x^2+n^2} + \sum_{n=N+1}^\infty\tfrac1{n^2} [/tex]. It is obvious that the first term approaches 0 as [tex]x \rightarrow \infty[/tex], but what about the second term?
 
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  • #2
How do you know that?

How do you know that

[tex] \lim_{x\rightarrow +\infty}\sum_{n=1}^{N}\frac{1}{x^{2}+n^{2}}=? 0 [/tex]

My Maple says it's undefined,as well as the initial limit...


Daniel.
 
  • #3
Denote the initial limit by [itex] F =:\lim_{x\rightarrow +\infty} f(x) [/itex]

U can show that [itex] f(0)=\zeta\left(2\right)=\frac{\pi^{2}}{6} [/itex] and [itex] \forall x\in\mathbb{R}, f(x)\leq f(0) [/itex].

Daniel.
 
  • #4
I've looked at the graph and the function quicky goes to 0 as "x" increases.

It's continuous everywhere on [itex] \mathbb{R} [/itex] and has the derivative

[tex] f'(x)=\sum_{n=1}^{\infty}\left(-\frac{2x}{\left(x^{2}+n^{2}\right)^{2}}\right) [/tex]

which is negative on the positive semiaxis.Therefore the function decreases continuously on the positive semiaxis.Since it's continuous,even and strictly positive,the asymptotic limits have to be zero.

Looking forward for critique.

Daniel.
 
  • #5
but what about the second term?

It's a function of N.

(Notice that f(x) is not a function of N...)
 
  • #6
Therefore the function decreases continuously on the positive semiaxis.Since it's continuous,even and strictly positive,the asymptotic limits have to be zero.

Why wouldn't the asymptotic limit be 1/10, or π4/792?
 
  • #7
You know what, I would give a whole dollar if someone could explain to me why:

[tex]\sum_{n=1}^{\infty}\frac{1}{a^2+n^2}=\frac{a\pi Coth[a\pi]-1}{2a^2}[/tex]

This is what Mathematica returns and I don't wish to suggest using Mathemtaica to prove things but I don't know how to prove the original question, and in my attempts to learn how, I've reduced it to the above. Now, you know what happens to the RHS as a goes to infinity right?
 
  • #8
Interesting.My ancient version of Maple returned a difference of psi functions of complex arguments multiplied with 1/(ix).


Daniel.
 
  • #9
Hurkyl said:
It's a function of N.

(Notice that f(x) is not a function of N...)

I can let N -> infinity and thereby make the second term vanish but then what about the first term which also depends on N?
 
  • #10
It's a finite sum.
 
  • #11
Hey in response to your question, I have observed that it's very easy to tell that the sum tends to 0 as n goes to infinity. As n^2 gets large, the x^2 term gets very large too at the same rate. Any # with an inreasing denominator decreases in value, therefore the total sum goes to zero. :rofl:
 
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  • #12
Phoenix Assault said:
Hey in response to your question, I have observed that it's very easy to tell that the sum tends to 0 as n goes to infinity.

"n" is not what is tending to infinity here. "x" is, as far as I can see. But even it it were n doing the increasing, the following still makes no sense:

Phoenix Assault said:
As n^2 gets large, the x^2 term gets very large too at the same rate.

Why? How does the value of n affect x in any way?
 

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