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Copyright © Cengage Learning. All rights reserved. 9 Sequences, Series, and Probability Copyright © Cengage Learning. All rights reserved.

Copyright © Cengage Learning. All rights reserved. 9.4 MATHEMATICAL INDUCTION Copyright © Cengage Learning. All rights reserved.

What You Should Learn Use mathematical induction to prove statements involving a positive integer n. Recognize patterns and write the nth term of a sequence. Find the sums of powers of integers. Find finite differences of sequences.

Introduction

Introduction In this section, we will study a form of mathematical proof called mathematical induction. S1 = 1 = 12 S2 = 1 + 3 = 22 S3 = 1 + 3 + 5 = 32 S4 = 1 + 3 + 5 + 7 = 42 S5 = 1 + 3 + 5 + 7 + 9 = 52

Introduction Judging from the pattern formed by these first five sums, it appears that the sum of the first n odd integers is Sn = 1 + 3 + 5 + 7 + 9 + …. + (2n – 1) = n2. Although this particular formula is valid, it is important for you to see that recognizing a pattern and then simply jumping to the conclusion that the pattern must be true for all values of n is not a logically valid method of proof. There are many examples in which a pattern appears to be developing for small values of n and then at some point the pattern fails.

Introduction One of the most famous cases of this was the conjecture by the French mathematician Pierre de Fermat, who speculated that all numbers of the form Fn = 22n + 1, n = 0, 1, 2, . . . are prime. For n = 0, 1, 2, 3, and 4, the conjecture is true. F0 = 3 F1 = 5 F2 = 17 F3 = 257 F4 = 65,537

Introduction The size of the next Fermat number (F5 = 4,294,967,297) is so great that it was difficult for Fermat to determine whether it was prime or not. However, another well-known mathematician, Leonhard Euler, later found the factorization F5 = 4,294,967,297 = 641(6,700,417) which proved that F5 is not prime and therefore Fermat’s conjecture was false.

Introduction Just because a rule, pattern, or formula seems to work for several values of n, you cannot simply decide that it is valid for all values of n without going through a legitimate proof. Mathematical induction is one method of proof.

Introduction To apply the Principle of Mathematical Induction, you need to be able to determine the statement Pk + 1 for a given statement Pk . To determine Pk + 1, substitute the quantity k + 1 for k in the statement Pk .

Introduction A well-known illustration used to explain why the Principle of Mathematical Induction works is the unending line of dominoes (see Figure 9.6). If the line actually contains infinitely many dominoes, it is clear that you could not knock the entire line down by knocking down only one domino at a time. Figure 9.6

Introduction However, suppose it were true that each domino would knock down the next one as it fell. Then you could knock them all down simply by pushing the first one and starting a chain reaction. Mathematical induction works in the same way. If the truth of Pk implies the truth of Pk + 1 and if P1 is true, the chain reaction proceeds as follows: P1 implies P2, P2 implies P3, P3 implies P4, and so on.

Introduction When using mathematical induction to prove a summation formula (such as the one in Example 2), it is helpful to think of Sk + 1 as Sk + 1 = Sk + ak + 1 where ak + 1 is the (k + 1)th term of the original sum.

Example 2 – Using Mathematical Induction Use mathematical induction to prove the following formula. Sn = 1 + 3 + 5 + 7 + . . . + (2n – 1) = n2 Solution: Mathematical induction consists of two distinct parts. First, you must show that the formula is true when n = 1. 1. When n = 1, the formula is valid, because S1 = 1 = 12. The second part of mathematical induction has two steps.

Example 2 – Solution cont’d The first step is to assume that the formula is valid for some integer k. The second step is to use this assumption to prove that the formula is valid for the next integer, k + 1. 2. Assuming that the formula Sk = 1 + 3 + 5 + 7 + . . . + (2k – 1) = k2 is true, you must show that the formula Sk + 1 = (k + 1)2 is true.

Example 2 – Solution cont’d Sk + 1 = 1 + 3 + 5 + 7 + . . . + (2k – 1) + [2(k + 1) – 1] = [1 + 3 + 5 + 7 + . . . + (2k – 1)] + (2k + 2 – 1) = Sk + (2k + 1) = k2 + 2k + 1 = (k + 1)2 Combining the results of parts (1) and (2), you can conclude by mathematical induction that the formula is valid for all positive integer values of n. Group terms to form Sk. Replace Sk by k2.

Introduction It occasionally happens that a statement involving natural numbers is not true for the first k – 1 positive integers but is true for all values of n  k. In these instances, you use a slight variation of the Principle of Mathematical Induction in which you verify Pk rather than P1. This variation is called the Extended Principle of Mathematical Induction.

Introduction To see the validity of this, note from Figure 9.6 that all but the first k – 1 dominoes can be knocked down by knocking over the kth domino. This suggests that you can prove a statement Pn to be true for n  k by showing that Pk is true and that Pk implies Pk + 1. Figure 9.6

Introduction When proving a formula using mathematical induction, the only statement that you need to verify is P1. As a check, however, it is a good idea to try verifying some of the other statements.

Pattern Recognition

Pattern Recognition Although choosing a formula on the basis of a few observations does not guarantee the validity of the formula, pattern recognition is important. Once you have a pattern or formula that you think works, you can try using mathematical induction to prove your formula.

Pattern Recognition

Example 6 – Finding a Formula for a Finite Sum Find a formula for the finite sum and prove its validity. Solution: Begin by writing out the first few sums.

Example 6 – Solution cont’d From this sequence, it appears that the formula for the kth sum is To prove the validity of this hypothesis, use mathematical induction. Note that you have already verified the formula for n = 1, so you can begin by assuming that the formula is valid for n = k and trying to show that it is valid for n = k + 1.

Example 6 – Solution cont’d By assumption

Example 6 – Solution cont’d So, by mathematical induction, you can conclude that the hypothesis is valid.

Sums of Powers of Integers

Sums of Powers of Integers Formulas dealing with the sums of various powers of the first n positive integers are as follows.

Example 7 – Finding a Sum of Powers of Integers Find each sum. a. = 13 + 23 + 33 + 43 + 53 + 63 + 73 b. (6i – 4i2) Solution: a. Using the formula for the sum of the cubes of the first n positive integers, you obtain = 13 + 23 + 33 + 43 + 53 + 63 + 73

Example 7 – Solution cont’d Formula 3 Formulas 1 and 2

Finite Differences

Finite Differences The first differences of a sequence are found by subtracting consecutive terms. The second differences are found by subtracting consecutive first differences. The first and second differences of the sequence 3, 5, 8, 12, 17, 23, . . . are as follows.

Finite Differences For this sequence, the second differences are all the same. When this happens, the sequence has a perfect quadratic model. If the first differences are all the same, the sequence has a linear model. That is, it is arithmetic.

Example 8 – Finding a Quadratic Model Find the quadratic model for the sequence 3, 5, 8, 12, 17, 23, . . . . Solution: You know from the second differences that the model is quadratic and has the form an = an2 + bn + c.

Example 8 – Solution cont’d By substituting 1, 2, and 3 for n, you can obtain a system of three linear equations in three variables. a1 = a(1)2 + b(1) + c = 3 a2 = a(2)2 + b(2) + c = 5 a3 = a(3)2 + b(3) + c = 8 Substitute 1 for n. Substitute 2 for n. Substitute 3 for n.

Example 8 – Solution cont’d You now have a system of three equations in a, b and c. a + b + c = 3 4a + 2b + c = 5 9a + 3b + c = 8 By solving this linear system, you can find the solution and c = 2. So, the quadratic model is Try checking the values of a1, a2, and a3. Equation 1 Equation 2 Equation 3