Difference between revisions of "005 Sample Final A, Question 10"

Revision as of 22:47, 19 May 2015

Question Write the partial fraction decomposition of the following,

{\frac {x+2}{x^{3}-2x^{2}+x}}

Step 1:
First, we factor the denominator. We have $x^{3}-2x^{2}+x=x(x^{2}-2x+1)=x(x-1)^{2}$

Step 2:
Since we have a repeated factor in the denominator, we set ${\frac {x+2}{x(x-1)^{2}}}={\frac {A}{x}}+{\frac {B}{x-1}}+{\frac {C}{(x-1)^{2}}}$ .

Step 3:
Multiplying both sides of the equation by the denominator $x(x-1)^{2}$ , we get
$x+2=A(x-1)^{2}+B(x)(x-1)+Cx$ .

Step 4:
If we let $x=0$ , we get $2=A$ . If we let $x=1$ , we get $3=C$ .

Step 5:
To solve for $B$ , we plug in $A=2$ and $C=3$ and simplify. We have
$x+2=2(x-1)^{2}+B(x)(x-1)+3x=2x^{2}-4x+2+Bx^{2}-Bx+3x~$ . So, $~x+2=(2+B)x^{2}+(-1-B)x+2$ . Since both sides are equal,
we must have $2+B=0$ and $-1-B=1$ . So, $B=2$ . Thus, the decomposition is ${\frac {x+2}{x(x-1)^{2}}}={\frac {2}{x}}+{\frac {2}{x-1}}+{\frac {3}{(x-1)^{2}}}$ .

Final Answer:
${\frac {x+2}{x(x-1)^{2}}}={\frac {2}{x}}+{\frac {2}{x-1}}+{\frac {3}{(x-1)^{2}}}$

@@ Line 33: / Line 33: @@
 | To solve for <math>B</math>, we plug in <math>A=2</math> and <math>C=3</math> and simplify. We have
 |-
-|<math>x+2=2(x-1)^2+B(x)(x-1)+3x=2x^2-4x+2+Bx^2-Bx+3x</math>. So, <math>x+2=(2+B)x^2+(-1-B)x+2</math>. Since both sides are equal,
+|<math>x+2=2(x-1)^2+B(x)(x-1)+3x=2x^2-4x+2+Bx^2-Bx+3x~</math>. So, <math>~x+2=(2+B)x^2+(-1-B)x+2</math>. Since both sides are equal,
 |-
 |we must have <math>2+B=0</math> and <math>-1-B=1</math>. So, <math>B=2</math>. Thus, the decomposition is <math>\frac{x+2}{x(x-1)^2}=\frac{2}{x}+\frac{2}{x-1}+\frac{3}{(x-1)^2}</math>.