Algebra and Trigonometry: Structure and Method, Book 2
Algebra and Trigonometry: Structure and Method, Book 2
2000th Edition
ISBN: 9780395977255
Author: MCDOUGAL LITTEL
Publisher: McDougal Littell
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Chapter 8.6, Problem 29WE
To determine

To justify the following statements of conjugate root theorem proof.

  1. if S(x)=[x(a+bi)][x(abi)]=x22ax+(a2+b2) , then S(a+bi)=0 and S(abi)=0
  2. There are real numbers c and d and a polynomial Q(x) for which P(x)=Q(x)S(x)+cx+d .
  3. Setting x=a+bi , you obtain 0=Q(a+bi)0+c(a+bi)+d .
  4. c(a+bi)+d=0 , or (ac+d)+bci=0 .
  5. bc=0, and since b0 , c=0
  6. ac+d=0, and since c=0,d=0
  7. P(x)=Q(x)S(x)
  8. P(abi)=Q(abi)S(abi)=Q(abi)0=0

Expert Solution & Answer
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Explanation of Solution

Given information:

The given statement is that P(x) be a polynomial with real coefficients, and a+bi(b0) be imaginary root of P(x)=0 .

Proof:

1.  S(x)=[x(a+bi)][x(abi)]=x22ax+(a2+b2)

Substitute x=a+bi

  (a+bi)22a(a+bi)+(a2+b2)=a2+2abib22a22abi+a2+b2=0

Substitute x=abi

  (abi)22a(abi)+(a2+b2)=a22abib22a2+2abi+a2+b2=0

Hence, the statement is justified.

2. There are real numbers c and d and a polynomial Q(x) for which P(x)=Q(x)S(x)+cx+d

The above statement is justifiable because the degree of S(x) is 2 and cx+d is linear that means its degree is less than that of S(x) .

3. Setting x=a+bi , you obtain 0=Q(a+bi)0+c(a+bi)+d .

Substitute x=a+bi in P(x)=Q(x)S(x)+cx+d

Since a+bi(b0) is root of P(x)=0 therefore P(a+bi)=0 and S(a+bi)=0 is already proved in statement 1.

Therefore,

  0=Q(a+bi)0+c(a+bi)+d

4. c(a+bi)+d=0 , or (ac+d)+bci=0 .

First write the equation of statement 3 and then simplify

  0=Q(a+bi)0+c(a+bi)+d0=c(a+bi)+d0=ac+bci+d0=(ac+d)+bci

The equation is justified.

5. bc=0 , and since b0 , c=0

Since S(a+bi)=0 and S(abi)=0

  bc=0 and b0

Therefore c=0

6. ac+d=0 , and since c=0,d=0

Since 0=(ac+d)+bci and c=0

Therefore d=0

7. P(x)=Q(x)S(x)

Substitute d=0 and c=0 in P(x)=Q(x)S(x)+cx+d

  P(x)=Q(x)S(x)+0x+0P(x)=Q(x)S(x)

8. P(abi)=Q(abi)S(abi)=Q(abi)0=0

Since P(x)=Q(x)S(x) substitute x=abi

  P(abi)=Q(abi)S(abi)P(abi)=Q(abi)0=0

The above statement is justified

Hence, the conjugate root theorem is proved.

Chapter 8 Solutions

Algebra and Trigonometry: Structure and Method, Book 2

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