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11.4 The Comparison Tests In this section, we will learn:
INFINITE SEQUENCES AND SERIES 11.4 The Comparison Tests In this section, we will learn: How to find the value of a series by comparing it with a known series.
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COMPARISON TESTS In the comparison tests, the idea is to compare a given series with one that is known to be convergent or divergent.
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Consider the series This reminds us of the series .
COMPARISON TESTS Series 1 Consider the series This reminds us of the series The latter is a geometric series with a = ½ and r = ½ and is therefore convergent.
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COMPARISON TESTS As the series is similar to a convergent series, we have the feeling that it too must be convergent. Indeed, it is.
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COMPARISON TESTS The inequality shows that our given series has smaller terms than those of the geometric series. Hence, all its partial sums are also smaller than 1 (the sum of the geometric series).
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COMPARISON TESTS Thus, Its partial sums form a bounded increasing sequence, which is convergent. It also follows that the sum of the series is less than the sum of the geometric series:
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COMPARISON TESTS Similar reasoning can be used to prove the following test, which applies only to series whose terms are positive. The first part says that, if we have a series whose terms are smaller than those of a known convergent series, then our series is also convergent.
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COMPARISON TESTS The second part says that, if we start with a series whose terms are larger than those of a known divergent series, then it too is divergent.
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Suppose that an and bn are series with positive terms.
THE COMPARISON TEST Suppose that an and bn are series with positive terms. If bn is convergent and an bn for all n, then an is also convergent. If bn is divergent and an bn for all n, then an is also divergent.
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THE COMPARISON TEST - PROOF
Part i Let Since both series have positive terms, the sequences {sn} and {tn} are increasing (sn+1 = sn + an+1 sn). Also, tn → t; so tn t for all n.
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THE COMPARISON TEST - PROOF
Part i Since ai bi, we have sn tn. Hence, sn t for all n. This means that {sn} is increasing and bounded above. So, it converges by the Monotonic Sequence Theorem. Thus, an converges.
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THE COMPARISON TEST - PROOF
Part ii If bn is divergent, then tn → , since {tn} is increasing. However, ai bi; so sn tn. Thus, sn → ; so an diverges.
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SEQUENCE VS. SERIES It is important to keep in mind the distinction between a sequence and a series. A sequence is a list of numbers. A series is a sum.
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With every series an, there are associated two sequences:
SEQUENCE VS. SERIES With every series an, there are associated two sequences: The sequence {an} of terms The sequence {sn} of partial sums
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COMPARISON TEST In using the Comparison Test, we must, of course, have some known series bn for the purpose of comparison.
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Most of the time, we use one of these:
COMPARISON TEST Most of the time, we use one of these: A p-series [ 1/np converges if p > 1 and diverges if p 1] A geometric series [ arn–1 converges if |r| < 1 and diverges if |r| 1]
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Determine whether the given series converges or diverges:
COMPARISON TEST Example 1 Determine whether the given series converges or diverges:
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For large n, the dominant term in the denominator is 2n2.
COMPARISON TEST Example 1 For large n, the dominant term in the denominator is 2n2. So, we compare the given series with the series 5/(2n2).
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since the left side has a bigger denominator.
COMPARISON TEST Example 1 Observe that since the left side has a bigger denominator. In the notation of the Comparison Test, an is the left side and bn is the right side.
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is convergent because it is a constant times a
COMPARISON TEST Example 1 We know that is convergent because it is a constant times a p-series with p = 2 > 1.
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Therefore, is convergent by part i of the Comparison Test.
Example 1 Therefore, is convergent by part i of the Comparison Test.
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NOTE 1 Although the condition an bn or an bn in the Comparison Test is given for all n, we need verify only that it holds for n N, where N is some fixed integer. This is because the convergence of a series is not affected by a finite number of terms. This is illustrated in the next example.
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Test the given series for convergence or divergence:
COMPARISON TEST Example 2 Test the given series for convergence or divergence:
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COMPARISON TEST Example 2 This series was tested (using the Integral Test) in Example 4 in Section 11.3 However, it is also possible to test it by comparing it with the harmonic series.
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Observe that ln n > 1 for n ≥ 3. So,
COMPARISON TEST Example 2 Observe that ln n > 1 for n ≥ 3. So, We know that 1/n is divergent (p-series with p = 1). Thus, the series is divergent by the Comparison Test.
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NOTE 2 The terms of the series being tested must be smaller than those of a convergent series or larger than those of a divergent series. If the terms are larger than the terms of a convergent series or smaller than those of a divergent series, the Comparison Test does not apply.
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For instance, consider The inequality is useless as far as the
NOTE 2 For instance, consider The inequality is useless as far as the Comparison Test is concerned. This is because bn = (½)n is convergent and an > bn.
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NOTE 2 Nonetheless, we have the feeling that 1/(2n -1) ought to be convergent because it is very similar to the convergent geometric series (½)n. In such cases, the following test can be used.
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Suppose that an and bn are series with positive terms. If
LIMIT COMPARISON TEST Suppose that an and bn are series with positive terms. If where c is a finite number and c > 0, either both series converge or both diverge.
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LIMIT COMPARISON TEST - PROOF
Let m and M be positive numbers such that m < c < M. Since an/bn is close to c for large n, there is an integer N such that
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LIMIT COMPARISON TEST - PROOF
If bn converges, so does Mbn. Thus, an converges by part i of the Comparison Test. If bn diverges, so does mbn. Thus, an diverges by part ii of the Comparison Test.
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Test the given series for convergence or divergence:
COMPARISON TESTS Example 3 Test the given series for convergence or divergence:
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We use the Limit Comparison Test with:
COMPARISON TESTS Example 3 We use the Limit Comparison Test with:
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COMPARISON TESTS Example 3 We obtain:
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This limit exists and 1/2n is a convergent geometric series.
COMPARISON TESTS Example 3 This limit exists and 1/2n is a convergent geometric series. Thus, the given series converges by the Limit Comparison Test.
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Determine whether the given series converges or diverges:
COMPARISON TESTS Example 4 Determine whether the given series converges or diverges:
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The dominant part of the numerator is 2n2.
COMPARISON TESTS Example 4 The dominant part of the numerator is 2n2. The dominant part of the denominator is n5/2. This suggests taking:
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COMPARISON TESTS Example 4 We obtain:
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bn = 2 1/n1/2 is divergent, p-series with p = ½ <1.
COMPARISON TESTS Example 4 bn = 2 1/n1/2 is divergent, p-series with p = ½ <1. Thus, the given series diverges by the Limit Comparison Test.
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COMPARISON TESTS Notice that, in testing many series, we find a suitable comparison series bn by keeping only the highest powers in the numerator and denominator.
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ESTIMATING SUMS We have used the Comparison Test to show that a series an converges by comparison with a series bn. It follows that we may be able to estimate the sum an by comparing remainders.
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As in Section 11.3, we consider the remainder
ESTIMATING SUMS As in Section 11.3, we consider the remainder Rn = s – sn = an+1 + an+2 + … For the comparison series bn, we consider the corresponding remainder Tn = t - tn = bn+1 + bn+2 + …
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As an bn for all n, we have Rn Tn.
ESTIMATING SUMS As an bn for all n, we have Rn Tn. If bn is a p-series, we can estimate its remainder Tn as in Section 11.3 If bn is a geometric series, then Tn is the sum of a geometric series and we can sum it exactly. In either case, we know that Rn is smaller than Tn
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Estimate the error involved in this approximation.
ESTIMATING SUMS Example 5 Use the sum of the first 100 terms to approximate the sum of the series 1/(n3+1). Estimate the error involved in this approximation.
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the given series is convergent by the Comparison Test.
ESTIMATING SUMS Example 5 Since the given series is convergent by the Comparison Test.
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ESTIMATING SUMS Example 5 The remainder Tn for the comparison series 1/n3 was estimated in Example 5 in Section 11.3 (using the Remainder Estimate for the Integral Test). We found that:
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ESTIMATING SUMS Example 5 Therefore, the remainder for the given series satisfies: Rn Tn 1/2n2
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ESTIMATING SUMS Example 5 With n = 100, we have: With a programmable calculator or a computer, we find that with error less than
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