Difference between revisions of "009C Sample Midterm 3, Problem 5"

Find the radius of convergence and the interval of convergence of the series.

(a) (6 points)      ${\displaystyle {\displaystyle \sum _{n=0}^{\infty }}{\frac {(-1)^{n}x^{n}}{n+1}}.}$

(b) (6 points)      ${\displaystyle {\displaystyle \sum _{n=0}^{\infty }}{\frac {(x+1)^{n}}{n^{2}}}.}$

When we do, the interval will be ${\displaystyle (c-r,c+r)}$. However, the boundary values for ${\displaystyle x}$, ${\displaystyle c-r}$ and ${\displaystyle c+r}$ must be tested individually for convergence. Many times, one boundary value will produce an alternating, convergent series while the other will produce a divergent, non-alternating series. As a result, intervals of convergence may open, half-open or closed.

Foundations:
When we are asked to find the radius of convergence, we are given a series where
${\displaystyle a_{n}=f(x-c)\cdot g(n)}$
where ${\displaystyle f}$ and ${\displaystyle g}$ are functions of ${\displaystyle x}$ and ${\displaystyle n}$ respectively, and ${\displaystyle c}$ is a constant (frequently zero). We need to find a bound (radius) on ${\displaystyle |x-c|}$ such that whenever ${\displaystyle |x-c|<r}$, the ratio test
${\displaystyle \left|{\frac {a_{n+1}}{a_{n}}}\right|<1.}$

 Solution:

(a):
We need to choose a radius ${\displaystyle r}$ such that whenever ${\displaystyle |x|<r}$,
${\displaystyle {\begin{array}{rcl}\lim _{n\rightarrow \infty }\left|{\frac {a_{n+1}}{a_{n}}}\right|&=&\lim _{n\rightarrow \infty }\left|{\frac {\frac {(-1)^{n+1}x^{n+1}}{n+2}}{\frac {(-1)^{n}x^{n}}{n+1}}}\right|\\\\&=&\lim _{n\rightarrow \infty }\left|x\cdot {\frac {n+1}{n+2}}\right|\\\\&=&|x|\cdot \lim _{n\rightarrow \infty }\left|{\frac {n+1}{n+2}}\right|\\\\&=&|x|<1.\end{array}}}$
In this case, the radius is 1, and the interval will be centered at 0. We then need to take a look at the boundary points. If ${\displaystyle x=1,}$ then
${\displaystyle a_{n}\,=\,{\frac {(-1)^{n}x^{n}}{n+1}}\,=\,{\frac {(-1)^{n}}{n+1}},}$
so the series is an alternating harmonic series which converges. On the other hand, if ${\displaystyle x=-1,}$ then
${\displaystyle a_{n}\,=\,{\frac {(-1)^{n}x^{n}}{n+1}}\,=\,{\frac {(-1)^{n}(-1)^{n}}{n+1}}\,=\,{\frac {1}{n+1}},}$
a standard harmonic series which does not converge. Thus, the interval of convergence is ${\displaystyle (-1,1]}$.

(b):
We need to choose a radius ${\displaystyle r}$ such that whenever ${\displaystyle |x|<r}$,
${\displaystyle {\begin{array}{rcl}\lim _{n\rightarrow \infty }\left|{\frac {a_{n+1}}{a_{n}}}\right|&=&\lim _{n\rightarrow \infty }\left|{\frac {\frac {(x+1)^{n+1}}{(n+1)^{2}}}{\frac {(x+1)^{n}}{n^{2}}}}\right|\\\\&=&\lim _{n\rightarrow \infty }\left|(x+1)\cdot \left({\frac {n}{n+1}}\right)^{2}\right|\\\\&=&|x+1|\cdot \lim _{n\rightarrow \infty }\left({\frac {n}{n+1}}\right)^{2}\\\\&=&|x+1|<1.\end{array}}}$
In this case, the radius is 1, and the interval will be centered at ${\displaystyle x=-1}$, or when ${\displaystyle x+1=0}$. We then need to take a look at the boundary points. If ${\displaystyle x=-2}$ or ${\displaystyle x=0}$, then
${\displaystyle \left|a_{n}\right|\,=\,\left|{\frac {(x+1)^{n}}{n^{2}}}\right|\,=\,{\frac {1}{n^{2}}},}$
which defines a p-series with ${\displaystyle p=2}$. Thus, the series defined by each boundary point is absolutely convergent (and therefore convergent), and the interval of convergence is ${\displaystyle [-2,0]}$.

Final Answer:
For (a), the radius is 1 and the interval of convergence is ${\displaystyle (-1,1]}$.
For (b), the radius is also 1, but the interval of convergence is ${\displaystyle [-2,0]}$.

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