What Is the Interval of Convergence for the Series Summation?

Click For Summary

Homework Help Overview

The discussion revolves around finding the interval of convergence for the series summation of the form Ʃ^{∞}_{n=0} (\frac{3^{n}-2^{2}}{2^{2n}}(x-1)^{n}). Participants are exploring the application of the ratio test and addressing concerns about the manipulation of terms within the series.

Discussion Character

  • Exploratory, Mathematical reasoning, Assumption checking

Approaches and Questions Raised

  • Participants discuss the appropriateness of breaking the series into two parts and the implications of including the term 2^2 in the equation. There are attempts to apply the ratio test and questions about the limits involved in the calculations.

Discussion Status

Some participants have provided guidance on applying the ratio test and clarifying the manipulation of terms. There is an ongoing exploration of the limits as n approaches infinity, with some participants expressing uncertainty about their calculations.

Contextual Notes

There are mentions of attachments that contain additional information, which may include calculations or visual representations relevant to the problem. Participants are also navigating the complexities of the series and the specific terms involved.

hpayandah
Messages
18
Reaction score
0

Homework Statement


Find the interval of convergence of each of the following
Ʃ^{∞}_{n=0} (\frac{3^{n}-2^{2}}{2^{2n}}(x-1)^{n})


Homework Equations


Please refer to attachment


The Attempt at a Solution


Please refer to attachment. All I want to know is that I'm doing this problem right. I have found the interval but haven't plugged the interval back into the equation.
 

Attachments

  • 20111125_002.jpg
    20111125_002.jpg
    36.6 KB · Views: 431
Physics news on Phys.org
You shouldn't break it into two series like that unless you know what you are doing. And combining them into (3/4)(x-1)-(1/4)(x-1) shows you probably don't. Just apply the ratio test to the whole expression.
 
Dick said:
You shouldn't break it into two series like that unless you know what you are doing. And combining them into (3/4)(x-1)-(1/4)(x-1) shows you probably don't. Just apply the ratio test to the whole expression.

The thing is I don't know what to do with that 2^2 in the equation, it throws me off. I'll re-post a picture this time everything together.
 
hpayandah said:
The thing is I don't know what to do with that 2^2 in the equation, it throws me off. I'll re-post a picture this time everything together.

One of the factors in your ratio test should be (3^(n+1)-2^2)/(3^n-2^2), right? To find the limit of that as n->infinity, just divide numerator and denominator by 3^n.
 
Dick said:
One of the factors in your ratio test should be (3^(n+1)-2^2)/(3^n-2^2), right? To find the limit of that as n->infinity, just divide numerator and denominator by 3^n.

I tried your suggestion, however I didn't come to a good end (maybe I did something wrong). Please take a look at the attached file; this is my re-attempt.
 

Attachments

  • att.jpg
    att.jpg
    21.3 KB · Views: 406
It looks more complicated than necessary- it should be obvious that
\frac{3^{n+1}- 4}{3^n- 4}
is dominated by 3^{n+1}{3^n}= 3 and so its limit is 3. But your result, that the limit is (3/4)|x- 1| is correct. Now, what is the answer to your original question?
 
hpayandah said:
I tried your suggestion, however I didn't come to a good end (maybe I did something wrong). Please take a look at the attached file; this is my re-attempt.

Not right. There's a mistake in the long division. 3^(n+1)-3^n isn't 3. And I didn't mean that in my suggestion. Take (3^(n+1)-4)/(3^n-4). Dividing the numerator, 3^(n+1)-4 by 3^n gives you 3^(n+1)/3^n-4/3^n. What's 3^(n+1)/3^n? Now take the limit as n->infinity. Do the same with the denominator.
 
Dick said:
Not right. There's a mistake in the long division. 3^(n+1)-3^n isn't 3. And I didn't mean that in my suggestion. Take (3^(n+1)-4)/(3^n-4). Dividing the numerator, 3^(n+1)-4 by 3^n gives you 3^(n+1)/3^n-4/3^n. What's 3^(n+1)/3^n? Now take the limit as n->infinity. Do the same with the denominator.
Thank you I got it now.

It looks more complicated than necessary- it should be obvious that
3n+1−43n−4

is dominated by 3n+13n=3 and so its limit is 3. But your result, that the limit is (3/4)|x−1| is correct. Now, what is the answer to your original question?
Thanks
 

Similar threads

Interval of convergence of power series from ratio test
  • · Replies 2 ·
Replies
2
Views
2K
Ratio Test vs AST
  • · Replies 4 ·
Replies
4
Views
2K
Interval of uniform convergence of a series
  • · Replies 24 ·
Replies
24
Views
3K
Proving convergence of rational sequence
  • · Replies 2 ·
Replies
2
Views
2K
Intervals of Convergence- Power Series
  • · Replies 11 ·
Replies
11
Views
3K
Proving convergence and divergence of series
  • · Replies 3 ·
Replies
3
Views
2K
Is the Interval of Convergence for (x-2)^n / n^(3n) from -1 to 5?
  • · Replies 2 ·
Replies
2
Views
1K
A problem with the convergence of a series
  • · Replies 5 ·
Replies
5
Views
2K
Does this series converge uniformly?
  • · Replies 7 ·
Replies
7
Views
2K
On pointwise convergence of Fourier series
  • · Replies 3 ·
Replies
3
Views
2K