5.4 Comparison tests

Calculus volume 2 Page 1 / 7

Use the comparison test to test a series for convergence.
Use the limit comparison test to determine convergence of a series.

We have seen that the integral test allows us to determine the convergence or divergence of a series by comparing it to a related improper integral. In this section, we show how to use comparison tests to determine the convergence or divergence of a series by comparing it to a series whose convergence or divergence is known. Typically these tests are used to determine convergence of series that are similar to geometric series or p -series.

Comparison test

In the preceding two sections, we discussed two large classes of series: geometric series and p -series. We know exactly when these series converge and when they diverge. Here we show how to use the convergence or divergence of these series to prove convergence or divergence for other series, using a method called the comparison test .

For example, consider the series

\sum_{n = 1}^{\infty} \frac{1}{n^{2} + 1} .

This series looks similar to the convergent series

\sum_{n = 1}^{\infty} \frac{1}{n^{2}} .

Since the terms in each of the series are positive, the sequence of partial sums for each series is monotone increasing. Furthermore, since

0 < \frac{1}{n^{2} + 1} < \frac{1}{n^{2}}

for all positive integers $n,$ the $k th$ partial sum $S_{k}$ of $\sum_{n = 1}^{\infty} \frac{1}{n^{2} + 1}$ satisfies

S_{k} = \sum_{n = 1}^{k} \frac{1}{n^{2} + 1} < \sum_{n = 1}^{k} \frac{1}{n^{2}} < \sum_{n = 1}^{\infty} \frac{1}{n^{2}} .

(See [link] (a) and [link] .) Since the series on the right converges, the sequence ${S_{k}}$ is bounded above. We conclude that ${S_{k}}$ is a monotone increasing sequence that is bounded above. Therefore, by the Monotone Convergence Theorem, ${S_{k}}$ converges, and thus

\sum_{n = 1}^{\infty} \frac{1}{n^{2} + 1}

converges.

Similarly, consider the series

\sum_{n = 1}^{\infty} \frac{1}{n - 1 / 2} .

This series looks similar to the divergent series

\sum_{n = 1}^{\infty} \frac{1}{n} .

The sequence of partial sums for each series is monotone increasing and

\frac{1}{n - 1 / 2} > \frac{1}{n} > 0

for every positive integer $n .$ Therefore, the $k th$ partial sum $S_{k}$ of $\sum_{n = 1}^{\infty} \frac{1}{n - 1 / 2}$ satisfies

S_{k} = \sum_{n = 1}^{k} \frac{1}{n - 1 / 2} > \sum_{n = 1}^{k} \frac{1}{n} .

(See [link] (b) and [link] .) Since the series $\sum_{n = 1}^{\infty} 1 / n$ diverges to infinity, the sequence of partial sums $\sum_{n = 1}^{k} 1 / n$ is unbounded. Consequently, ${S_{k}}$ is an unbounded sequence, and therefore diverges. We conclude that

\sum_{n = 1}^{\infty} \frac{1}{n - 1 / 2}

diverges.

This shows two graphs side by side. The first shows plotted points for the partial sums for the sum of 1/n^2 and the sum 1/(n^2 + 1). Each of the partial sums for the latter is less than the corresponding partial sum for the former. The second shows plotted points for the partial sums for the sum of 1/(n - 0.5) and the sum 1/n. Each of the partial sums for the latter is less than the corresponding partial sum for the former. — (a) Each of the partial sums for the given series is less than the corresponding partial sum for the converging $p - series .$ (b) Each of the partial sums for the given series is greater than the corresponding partial sum for the diverging harmonic series.

Comparing a series with a p -series ( p = 2)
$k$	$1$	$2$	$3$	$4$	$5$	$6$	$7$	$8$
$\sum_{n = 1}^{k} \frac{1}{n^{2} + 1}$	$0.5$	$0.7$	$0.8$	$0.8588$	$0.8973$	$0.9243$	$0.9443$	$0.9597$
$\sum_{n = 1}^{k} \frac{1}{n^{2}}$	$1$	$\begin{array}{l} 1.25 \end{array}$	$1.3611$	$1.4236$	$1.4636$	$1.4914$	$1.5118$	$1.5274$

Comparing a series with the harmonic series
$k$	$1$	$2$	$3$	$4$	$5$	$6$	$7$	$8$
$\sum_{n = 1}^{k} \frac{1}{n - 1 / 2}$	$2$	$2.6667$	$3.0667$	$3.3524$	$3.5746$	$3.7564$	$3.9103$	$4.0436$
$\sum_{n = 1}^{k} \frac{1}{n}$	$1$	$1.5$	$\begin{array}{l} 1.8333 \end{array}$	$2.0933$	$2.2833$	$2.45$	$2.5929$	$2.7179$

Comparison test

Suppose there exists an integer $N$ such that $0 \leq a_{n} \leq b_{n}$ for all $n \geq N .$ If $\sum_{n = 1}^{\infty} b_{n}$ converges, then $\sum_{n = 1}^{\infty} a_{n}$ converges.
Suppose there exists an integer $N$ such that $a_{n} \geq b_{n} \geq 0$ for all $n \geq N .$ If $\sum_{n = 1}^{\infty} b_{n}$ diverges, then $\sum_{n = 1}^{\infty} a_{n}$ diverges.

Proof

We prove part i. The proof of part ii. is the contrapositive of part i. Let ${S_{k}}$ be the sequence of partial sums associated with $\sum_{n = 1}^{\infty} a_{n},$ and let $L = \sum_{n = 1}^{\infty} b_{n} .$ Since the terms $a_{n} \geq 0,$

S_{k} = a_{1} + a_{2} + ⋯ + a_{k} \leq a_{1} + a_{2} + ⋯ + a_{k} + a_{k + 1} = S_{k + 1} .

Therefore, the sequence of partial sums is increasing. Further, since $a_{n} \leq b_{n}$ for all $n \geq N,$ then

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Source: OpenStax, Calculus volume 2. OpenStax CNX. Feb 05, 2016 Download for free at http://cnx.org/content/col11965/1.2

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