Real Analysis

Arun Ram
Department of Mathematics and Statistics
University of Melbourne
Parkville, VIC 3010 Australia
aram@unimelb.edu.au

Last update: 13 July 2014

Lecture 16

Examples of improper integrals and series

Analyse $\int_{1}^{\infty} \frac{log x}{x} d x .$

Let $y = \frac{log x}{x} = x^{- 1} log x .$ Then $\frac{d y}{d x} = x^{- 1} \frac{1}{x} + (- 1) x^{- 2} log x = (1 - log x) \frac{1}{x^{2}} .$ This is $> 0$ for $x < e^{1},$ $= 0$ for $x = e^{1},$ $< 0$ for $x > e^{1} .$

So $y$ is increasing for $x < e^{1},$ has a maximum at $x = e^{1} \approx 2.781828...,$ is decreasing for $x > e^{1} .$ $\begin{matrix} \end{matrix}$ $\begin{matrix} \int_{1}^{\infty} \frac{log x}{x} d x & = & lim_{b \to \infty} \int_{1}^{b} \frac{log x}{x} d x \\ = & lim_{b \to \infty} (\frac{{(log x)}^{2}}{2} |_{x = 1}^{x = b}) \\ = & lim_{b \to \infty} (\frac{{(log b)}^{2}}{2} - \frac{{(log 1)}^{2}}{2}) \\ = & divergent. \end{matrix}$

$\sum_{n = 1}^{\infty} {(- 1)}^{n} \frac{log n}{n} .$ $\sum_{n = 1}^{\infty} {(- 1)}^{n} \frac{log n}{n} = - 0 + \frac{log 2}{2} - \frac{log 3}{3} + \sum_{n = 4}^{\infty} {(- 1)}^{n} \frac{log n}{n} .$ Since the values $\frac{log n}{n}$ are positive, decreasing (see the previous page) and approaching $0$ for $n \geq 4,$ the alternating series test guarantees that $\sum_{n = 4}^{\infty} {(- 1)}^{n} \frac{log n}{n}$ converges. So $\sum_{n = 1}^{\infty} {(- 1)}^{n} \frac{log n}{n} = \frac{log 2}{2} - \frac{log 3}{3} + \sum_{n = 4}^{\infty} {(- 1)}^{n} \frac{log n}{n}$ converges. $\begin{matrix} \end{matrix}$ $\begin{matrix} \sum_{n = 1}^{\infty} | {(- 1)}^{n} \frac{log n}{n} | & = & \sum_{n = 1}^{\infty} \frac{log n}{n} = \frac{log 2}{2} + \frac{log 3}{3} + \sum_{n = 4}^{\infty} \frac{log n}{n} \\ < & \frac{log 2}{2} + \frac{log 3}{3} + \int_{4}^{\infty} \frac{log n}{n} diverges (from the previous page). \end{matrix}$ So $\sum_{n = 1}^{\infty} {(- 1)}^{n} \frac{log n}{n}$ is conditionally convergent but not absolutely convergent.

To apply the ratio test (to determine absolute convergence) one must analyse $\begin{matrix} lim_{n \to \infty} \frac{∣ {(- 1)}^{n + 1} \frac{log n + 1}{n + 1} ∣}{∣ {(- 1)}^{n} \frac{log n}{n} ∣} & = & lim_{n \to \infty} \frac{n log (n + 1)}{(n + 1) log n} \\ = & lim_{n \to \infty} \frac{n (log (1 + \frac{1}{n}) - log n)}{(n + 1) (log (1 + \frac{1}{n - 1}) - log (n - 1))} \\ = & lim_{n \to \infty} \frac{(\frac{n}{n}) \frac{log (1 + \frac{1}{n})}{\frac{1}{n}} - n log n}{(\frac{n + 1}{n - 1}) \frac{log (1 + \frac{1}{n - 1})}{\frac{1}{n - 1}} - (n + 1) log (n - 1)} \end{matrix}$ which is not very efficient. This makes sense since the series $\sum_{n = 1}^{\infty} \frac{log n}{n}$ is not readily comparable to a series of the form $\sum_{n = 1}^{\infty} a^{n}$ and ratio test is really a comparison to a series of this form.

Similarly the root test limit $lim_{n \to \infty} {(\frac{log n}{n})}^{\frac{1}{n}} = lim_{n \to \infty} \frac{{(log n)}^{\frac{1}{n}}}{n^{\frac{1}{n}}} = 1$ is not helpful for determining convergence.

Evaluate $lim_{n \to \infty} n^{\frac{1}{n}} .$ $\begin{matrix} lim_{n \to \infty} n^{\frac{1}{n}} & = & lim_{n \to \infty} {(e^{log n})}^{\frac{1}{n}} \\ = & lim_{n \to \infty} e^{\frac{1}{n} log n} \\ = & lim_{n \to \infty} e^{\frac{1}{n} log (n - 1 + 1)} \\ = & lim_{n \to \infty} e^{\frac{1}{n} (log (1 + \frac{1}{n - 1}) + log (n - 1))} \\ = & lim_{n \to \infty} e^{\frac{1}{n (n - 1)}} (\frac{log (1 + \frac{1}{n - 1})}{\frac{1}{n - 1}}) + \frac{1}{n} log (n - 1) \\ = & e^{0 \cdot 1 + 0} = e^{0} = 1 . \end{matrix}$

Notes and References

These are notes from a 2010 course on Real Analysis 620-295. This page comes from 100414Lect16.pdf and was given on 14 April 2010.

page history