How do you use partial fraction decomposition to integrate $\frac{- 10 x^{2} + 27 x - 14}{{(x - 1)}^{3} (x + 2)}$ $(−10x^2+27x−14)/((x−1)^3(x+2))$ ?

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How do you use partial fraction decomposition to integrate $\frac{- 10 x^{2} + 27 x - 14}{{(x - 1)}^{3} (x + 2)}$ $(−10x^2+27x−14)/((x−1)^3(x+2))$ ?

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Answer 1 · 2017-10-21T22:47:06

$\int \frac{- 10 x^{2} + 27 x - 14}{{(x - 1)}^{3} (x + 2)} d x =$ $int(−10x^2+27x−14)/((x−1)^3(x+2))dx=$
$\int (\frac{4}{x + 2} - \frac{4}{x - 1} + \frac{2}{{(x - 1)}^{2}} + \frac{1}{{(x - 1)}^{3}}) d x$ $int(4/(x+2)-4/(x-1)+2/(x-1)^2+1/(x-1)^3)dx$

Explanation:

Since the question is asking about how to use partial fractions to perform the integration, I shall only provide the partial fraction decomposition and leave the rest to the questioner.

$\frac{- 10 x^{2} + 27 x - 14}{{(x - 1)}^{3} (x + 2)} =$ $(−10x^2+27x−14)/((x−1)^3(x+2))=$
$\frac{A}{x + 2} + \frac{B}{x - 1} + \frac{C}{{(x - 1)}^{2}} + \frac{D}{{(x - 1)}^{3}}$ $A/(x+2)+B/(x-1)+C/(x-1)^2+D/(x-1)^3$

$- 10 x^{2} + 27 x - 14 =$ $−10x^2+27x−14=$
$A {(x - 1)}^{3} + B {(x - 1)}^{2} (x + 2) + C (x - 1) (x + 2) + D (x + 2)$ $A(x-1)^3+B(x-1)^2(x+2)+C(x-1)(x+2)+D(x+2)$

Let $x = 2$ $x=2$

Then $3 = 3 D \Rightarrow D = 1$ $3=3DrArrD=1$

Let $x = - 2$ $x=-2$

Then $- 108 = - 27 A \Rightarrow A = 4$ $-108=-27ArArrA=4$

Notice that if we had expanded the RHS, we would've found two cubic terms with coefficients $A$ $A$ and $B$ $B$ . And since $L H S = R H S, (A + B) x^{3} = x^{3} \Rightarrow A + B = 0 \Rightarrow 4 + B = 0 \Rightarrow B = - 4$ $LHS=RHS,(A+B)x^3=x^3 rArrA+B=0rArr4+B=0rArrB=-4$

Finally letting $x = 0$ $x=0$ , we get

$- 14 = A + 2 B - 2 C + 2 D$ $-14=A+2B-2C+2D$

By simplifying and subbing in the values we already have, we get $C = 2$ $C=2$

$therefore(−10x^2+27x−14)/((x−1)^3(x+2))=$
$4/(x+2)-4/(x-1)+2/(x-1)^2+1/(x-1)^3$

Thus $int(−10x^2+27x−14)/((x−1)^3(x+2))dx=$
$int(4/(x+2)-4/(x-1)+2/(x-1)^2+1/(x-1)^3)dx$

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How do you use partial fraction decomposition to integrate $\frac{- 10 x^{2} + 27 x - 14}{{(x - 1)}^{3} (x + 2)}$ $(−10x^2+27x−14)/((x−1)^3(x+2))$ ?

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How do you use partial fraction decomposition to integrate $\frac{- 10 x^{2} + 27 x - 14}{{(x - 1)}^{3} (x + 2)}$ $(−10x^2+27x−14)/((x−1)^3(x+2))$ ?