Hello everyone,
I am not getting the answer listed in my book for the following two problems. My work is shown below. Thank you for your help.
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1. \(\displaystyle \frac{2x + 9}{x^3 - 1}\)
= \(\displaystyle \frac{2x + 9}{(x - 1)(x^2 +x + 1)}\)
= \(\displaystyle \frac{A}{x-1}\ + \frac{Bx + C}{x^2 + x + 1}\)
\(\displaystyle 2x + 9 = A(x^2 + x + 1) + (Bx - C)(x - 1)\)
\(\displaystyle = Ax^2 + Ax + A + Bx^2 - Bx + Cx - C\)
\(\displaystyle = (A + B)x^2 + (A - B + C)x + A - C\)
\(\displaystyle A + B = 0\)
\(\displaystyle A - B + C = 2\)
\(\displaystyle A - C = 9\)
From the system of equations:
\(\displaystyle A = 11/3\)
\(\displaystyle B = -11/3\)
\(\displaystyle C = -16/3\)
Partial fraction: \(\displaystyle \frac{11}{3(x - 1)}\ + \frac{-11x - 16}{3(x^2 + x + 1)}\)
Book's answer = \(\displaystyle \frac{11}{2(x - 1)}\ + \frac{-11x + 9}{2(x^2 + x + 1)}\)
2. \(\displaystyle \frac{x^2 + 2x + 8}{x^3 - 4x^2 + 4x}\)
= \(\displaystyle \frac{x^2 + 2x + 8}{x(x^2 - 4x + 4)}\)
= \(\displaystyle \frac{x^2 + 2x + 8}{x(x - 2)^2}\)
= \(\displaystyle \frac{A}{x}\ + \frac{B}{x-2}\ + \frac{C}{(x-2)^2}\\)
\(\displaystyle x^2 + 2x + 8 = A(x - 2)^2 + B[x(x - 2)] + Cx\)
\(\displaystyle = (A + B)x^2 + (-4A - 2B + C)x + 4A\)
From the system of equations:
\(\displaystyle A + B = 1\)
\(\displaystyle -4A - 2B + C = 2\)
\(\displaystyle 4A = 8\)
\(\displaystyle A = 2\)
\(\displaystyle B = -1\)
\(\displaystyle C = 8\)
Partial fraction: \(\displaystyle \frac{2}{x}\ - \frac{1}{x - 2}\ + \frac{8}{(x - 2)^2}\\)
Book's answer: \(\displaystyle \frac{2}{x}\ - \frac{2}{x - 2}\ + \frac{x + 6}{(x - 2)^2}\\)
I am not getting the answer listed in my book for the following two problems. My work is shown below. Thank you for your help.
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1. \(\displaystyle \frac{2x + 9}{x^3 - 1}\)
= \(\displaystyle \frac{2x + 9}{(x - 1)(x^2 +x + 1)}\)
= \(\displaystyle \frac{A}{x-1}\ + \frac{Bx + C}{x^2 + x + 1}\)
\(\displaystyle 2x + 9 = A(x^2 + x + 1) + (Bx - C)(x - 1)\)
\(\displaystyle = Ax^2 + Ax + A + Bx^2 - Bx + Cx - C\)
\(\displaystyle = (A + B)x^2 + (A - B + C)x + A - C\)
\(\displaystyle A + B = 0\)
\(\displaystyle A - B + C = 2\)
\(\displaystyle A - C = 9\)
From the system of equations:
\(\displaystyle A = 11/3\)
\(\displaystyle B = -11/3\)
\(\displaystyle C = -16/3\)
Partial fraction: \(\displaystyle \frac{11}{3(x - 1)}\ + \frac{-11x - 16}{3(x^2 + x + 1)}\)
Book's answer = \(\displaystyle \frac{11}{2(x - 1)}\ + \frac{-11x + 9}{2(x^2 + x + 1)}\)
2. \(\displaystyle \frac{x^2 + 2x + 8}{x^3 - 4x^2 + 4x}\)
= \(\displaystyle \frac{x^2 + 2x + 8}{x(x^2 - 4x + 4)}\)
= \(\displaystyle \frac{x^2 + 2x + 8}{x(x - 2)^2}\)
= \(\displaystyle \frac{A}{x}\ + \frac{B}{x-2}\ + \frac{C}{(x-2)^2}\\)
\(\displaystyle x^2 + 2x + 8 = A(x - 2)^2 + B[x(x - 2)] + Cx\)
\(\displaystyle = (A + B)x^2 + (-4A - 2B + C)x + 4A\)
From the system of equations:
\(\displaystyle A + B = 1\)
\(\displaystyle -4A - 2B + C = 2\)
\(\displaystyle 4A = 8\)
\(\displaystyle A = 2\)
\(\displaystyle B = -1\)
\(\displaystyle C = 8\)
Partial fraction: \(\displaystyle \frac{2}{x}\ - \frac{1}{x - 2}\ + \frac{8}{(x - 2)^2}\\)
Book's answer: \(\displaystyle \frac{2}{x}\ - \frac{2}{x - 2}\ + \frac{x + 6}{(x - 2)^2}\\)
