Theorem:6481641: Difference between revisions

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theorem

Named after: Niels Henrik Abel

This page was built for theorem: Abel's theorem

Theorem

Suppose that ${\displaystyle {\displaystyle \sum _{n=0}^{\mathrm{\infty }}}{a}_n{x}^n}$ has a radius of convergence ${\displaystyle r}$ and that ${\displaystyle {\displaystyle \sum _{n=0}^{\mathrm{\infty }}}{a}_n{r}^n}$ is convergent. Then $${\displaystyle \underset{x\to r^{-}}{\lim }{\displaystyle \sum _{n=0}^{\mathrm{\infty }}}{a}_n{x}^n={\displaystyle \sum _{n=0}^{\mathrm{\infty }}}{a}_n{r}^n.}$$

Proof

Suppose that $${\displaystyle {\displaystyle \sum _{n=0}^{\mathrm{\infty }}}{a}_n=L}$$ is a convergent series, and define $${\displaystyle f(r)={\displaystyle \sum _{n=0}^{\mathrm{\infty }}}{a}_n{r}^n}$$ The convergence of the first series implies that ${\displaystyle a_n\to 0}$, and hence ${\displaystyle f(r)}$ converges for ${\displaystyle |r|<1}$. We will show that ${\displaystyle f(r)\to L}$ as ${\displaystyle r\to 1^{-}}$.

Let $${\displaystyle s_N=a_0+a_1+\cdots +a_N,N\in \mathbb{N}}$$ denote the corresponding partial sums. Our proof relies on the following identity: $${\displaystyle f(r)={\displaystyle \sum _{n=0}^{\mathrm{\infty }}}{a}_n{r}^n=(1-r){\displaystyle \sum _{n=0}^{\mathrm{\infty }}}{s}_n{r}^n.}$$ (1)

The above identity obviously works at the level of formal power series. Indeed, $${\displaystyle a_0+(a_1+a_0)r+(a_2+a_1+a_0)r^2+\cdots -(a_{0}r+(a_1+a_0)r^2+\cdots )=a_0+a_{1}r+a_2{r}^2+\cdots }$$

Since the partial sums ${\displaystyle s_n}$ converge to ${\displaystyle L}$, they are bounded, and hence $${\displaystyle {\displaystyle \sum _{n=0}^{\mathrm{\infty }}}{s}_n{r}^n}$$ converges for ${\displaystyle |r|<1}$. Hence, for ${\displaystyle |r|<1}$, identity (1) is also a genuine functional equality.

Let ${\displaystyle ϵ>0}$ be given. Choose an ${\displaystyle N}$ sufficiently large so that all partial sums ${\displaystyle s_n}$ with ${\displaystyle n>N}$ satisfy $${\displaystyle |s_n-L|\le ϵ}$$ Then, for all ${\displaystyle r}$ such that ${\displaystyle 0<r<1}$, one obtains $${\displaystyle |{\displaystyle \sum _{n=N+1}^{\mathrm{\infty }}}(s_n-L)r^n|\le \frac{ϵr^{N+1}}{1-r}}$$

Note that $${\displaystyle f(r)-L=(1-r){\displaystyle \sum _{n=0}^N}(s_n-L)r^n+(1-r){\displaystyle \sum _{n=N+1}^{\mathrm{\infty }}}(s_n-L)r^n}$$

As ${\displaystyle r\to 1^{-}}$, the first term tends to 0. The absolute value of the second term is estimated by $${\displaystyle ϵr^{N+1}\le ϵ}$$ Hence, $${\displaystyle \underset{r\to 1^{-}}{\mathrm{lim\; sup}}|f(r)-L|\le ϵ}$$

Since ${\displaystyle ϵ>0}$ was arbitrary, it follows that ${\displaystyle f(r)\to L}$ as ${\displaystyle r\to 1^{-}}$.

Sources

Abel’s limit theorem in Mathplanet Proof of Abel's Convergence Theorem in Mathplanet