Math Homework Help Please

[MrCodeDude]

Find the sum of the convergent series. Explain how you obtained the sum. (Hint: Use the power series for elementary functions)

The Problem

I am lost and confused 🙁

 

[MrCodeDude]

?

 

[everman]

Obligatory: 42

 

[MrDudeMan]

man that was so last semester...wish i could help you, but i just crammed for the test 🙁 there is a table in the book somewhere that has all of the conditions for convergence/divergence, and IIRC if you knew that inside and out the whole part of calculus involving series was way easier.

 

[tfinch2]

I like your sigma notation.

 

[MrDudeMan]

i just remembered...i think it has something to do with limits

 

[MrDudeMan]

ok, its coming back...

its an alternating series because of the (-1)^n. the first term will be +, the second -, third +, etc.
the condition to find convergence of an alternating series for Sum from n=1 to infinity of [(-1)^(n-1)*(a_n)] is 0 < a_(n+1) </= a_n and the limit as n->infinity of a_n = 0. does that help any?

edit:

it is convergent because of this:

1/{(4^n)*n+1} is </= 1/{(4^n)*n} and since the limit of 1/{(4^n)*n} as n->infinity is = to 0, the alternating harmonic series must also be equal to 0. if the limit of the sum is = 0, then the series converges. its called the alternating series test.

edit2:

let it be known that im not entirely sure this is right, so if someone else sees a problem with my response, please correct it for MrCodeDudes sake.

 

[MrCodeDude]

I'm looking for the sum of the sequence though.

I know the chart you're referencing, it's ln (x) = (-1)^n * x^n

 

[MrDudeMan]

Originally posted by: MrCodeDude
I'm looking for the sum of the sequence though.

I know the chart you're referencing, it's ln (x) = (-1)^n * x^n

oh my bad. umm let me get my book and try to figure it out.

 

[MrCodeDude]

Originally posted by: Bigsm00th

Originally posted by: MrCodeDude
I'm looking for the sum of the sequence though.

I know the chart you're referencing, it's ln (x) = (-1)^n * x^n

oh my bad. umm let me get my book and try to figure it out.

Thanks 🙂

 

[MrDudeMan]

did they not specify a number of terms to solve for? or do they want the sum of the whole series?

 

[MrCodeDude]

Originally posted by: Bigsm00th
did they not specify a number of terms to solve for? or do they want the sum of the whole series?

Sum of the whole series.

If they just wanted a certain number of terms, it's just plug and chug 🙂

 

[MrDudeMan]

Originally posted by: MrCodeDude

Originally posted by: Bigsm00th
did they not specify a number of terms to solve for? or do they want the sum of the whole series?

Sum of the whole series.

If they just wanted a certain number of terms, it's just plug and chug 🙂

yeah yeah gimme a break...i told you i just learned this for the test and thats all 🙂

 

[MrDudeMan]

Text

try that page. honestly, im trying but i cant do it. i feel like an idiot, but that page should help you out.

 

[TuxDave]

I believe the first step is partial fraction decomposition.

 

[cw42]

Originally posted by: TuxDave
I believe the first step is partial fraction decomposition.

PFD lol. i came to meet those words last semester and hated it 🙂

 

[chuckywang]

The answer is ln(5/4).

Note that 1-x+x^2-x^3+x^4 - x^5 + ... = 1/(1+x) by the infinite geomtric series for -1<x<1.
Taking integrals of both sides, we get:

x-x^2/2+x^3/3-x^4/4+x^5/5-x^6/x + ... = ln(1+x)
Note that when x = 0, left hand side = right hand side so we took care of the constant when we do indefinite integrals.

Your sum is precisely the case when x=1/4.

i.e. your sum is ln(1+1/4) = ln(5/4).

 

[MrCodeDude]

Originally posted by: chuckywang
The answer is ln(5/4).

Note that 1-x+x^2-x^3+x^4 - x^5 + ... = 1/(1+x) by the infinite geomtric series for -1<x<1.
Taking integrals of both sides, we get:

x-x^2/2+x^3/3-x^4/4+x^5/5-x^6/x + ... = ln(1+x)
Note that when x = 0, left hand side = right hand side so we took care of the constant when we do indefinite integrals.

Your sum is precisely the case when x=1/4.

i.e. your sum is ln(1+1/4) = ln(5/4).

Okay, I understand where you got the 1/(1+x) sequence and how you integrated it to get the ln(x) sequence.

However, how do you know that x = 1/4?

 

[dighn]

Originally posted by: MrCodeDude

Originally posted by: chuckywang
The answer is ln(5/4).

Note that 1-x+x^2-x^3+x^4 - x^5 + ... = 1/(1+x) by the infinite geomtric series for -1<x<1.
Taking integrals of both sides, we get:

x-x^2/2+x^3/3-x^4/4+x^5/5-x^6/x + ... = ln(1+x)
Note that when x = 0, left hand side = right hand side so we took care of the constant when we do indefinite integrals.

Your sum is precisely the case when x=1/4.

i.e. your sum is ln(1+1/4) = ln(5/4).

Okay, I understand where you got the 1/(1+x) sequence and how you integrated it to get the ln(x) sequence.

However, how do you know that x = 1/4?

if you expand the original series into the form x-x^2/2+x^3/3... you'll see that x is 1/4

eg if you expand it you have (1/4) - (1/4)^2/2 + (1/4)^3/3...

 

[MrCodeDude]

Originally posted by: dighn

Originally posted by: MrCodeDude

Originally posted by: chuckywang
The answer is ln(5/4).

Note that 1-x+x^2-x^3+x^4 - x^5 + ... = 1/(1+x) by the infinite geomtric series for -1<x<1.
Taking integrals of both sides, we get:

x-x^2/2+x^3/3-x^4/4+x^5/5-x^6/x + ... = ln(1+x)
Note that when x = 0, left hand side = right hand side so we took care of the constant when we do indefinite integrals.

Your sum is precisely the case when x=1/4.

i.e. your sum is ln(1+1/4) = ln(5/4).

Okay, I understand where you got the 1/(1+x) sequence and how you integrated it to get the ln(x) sequence.

However, how do you know that x = 1/4?

if you expand the original series into the form x-x^2/2+x^3/3... you'll see that x is 1/4

eg if you expand it you have (1/4) - (1/4)^2/2 + (1/4)^3/3...

There is no X in the original sequence.

 

[chuckywang]

Originally posted by: MrCodeDude

Originally posted by: dighn

Originally posted by: MrCodeDude

Originally posted by: chuckywang
The answer is ln(5/4).

Note that 1-x+x^2-x^3+x^4 - x^5 + ... = 1/(1+x) by the infinite geomtric series for -1<x<1.
Taking integrals of both sides, we get:

x-x^2/2+x^3/3-x^4/4+x^5/5-x^6/x + ... = ln(1+x)
Note that when x = 0, left hand side = right hand side so we took care of the constant when we do indefinite integrals.

Your sum is precisely the case when x=1/4.

i.e. your sum is ln(1+1/4) = ln(5/4).

Okay, I understand where you got the 1/(1+x) sequence and how you integrated it to get the ln(x) sequence.

However, how do you know that x = 1/4?

if you expand the original series into the form x-x^2/2+x^3/3... you'll see that x is 1/4

eg if you expand it you have (1/4) - (1/4)^2/2 + (1/4)^3/3...

There is no X in the original sequence.

1) In my expansion of ln(1+x), plug in x=1/4.
2) Compare what you get with your sequence that you're trying to find the sum of.
3) Notice they are one and the same.
4) ...
5) Profit!

 

[dighn]

n/m

 

[MrCodeDude]

Originally posted by: chuckywang

Originally posted by: MrCodeDude

Originally posted by: dighn

Originally posted by: MrCodeDude

Originally posted by: chuckywang
The answer is ln(5/4).

Note that 1-x+x^2-x^3+x^4 - x^5 + ... = 1/(1+x) by the infinite geomtric series for -1<x<1.
Taking integrals of both sides, we get:

x-x^2/2+x^3/3-x^4/4+x^5/5-x^6/x + ... = ln(1+x)
Note that when x = 0, left hand side = right hand side so we took care of the constant when we do indefinite integrals.

Your sum is precisely the case when x=1/4.

i.e. your sum is ln(1+1/4) = ln(5/4).

Okay, I understand where you got the 1/(1+x) sequence and how you integrated it to get the ln(x) sequence.

However, how do you know that x = 1/4?

if you expand the original series into the form x-x^2/2+x^3/3... you'll see that x is 1/4

eg if you expand it you have (1/4) - (1/4)^2/2 + (1/4)^3/3...

There is no X in the original sequence.

1) In my expansion of ln(1+x), plug in x=1/4.
2) Compare what you get with your sequence that you're trying to find the sum of.
3) Notice they are one and the same.
4) ...
5) Profit!

How did you find out that x = 1/4 in the first place though?

 

[MrCodeDude]

I quit.

Calculus BC: 1, MrCodeDude: 0

 

[pray4mojo]

So you gotta change 1/4^n(n) to a McLaurin Series?