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Question
Find `int (2x)/(x^2 + 1)(x^2 + 2)^2 dx`
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Solution
`int (2x)/((x^2 + 1)(x^2 + 2)^2) dx`
Let x2 = y
⇒ 2xdx = dy
`=> dx = (dy)/(2x)`
`int (2x)/((x^2 + 1)(x^2 + 2)^2) dx`
= `int (dy)/((y + 1)(y + 2)^2)`
Let `1/((y + 1)(y + 2)^2) = A/(y + 1) + B/(y + 2) + C/(y + 2)^2` ......(1)
⇒ 1 = A(y+2)2 + B(y+1)(y+2) + C(y+1) .....(2)
Putting y = - 2 in (2)
1=C(-2 + 1)
⇒ C = -1
Putting y=−1 in (2)
1 = A(-1 + 2)2
⇒ 1 = A(1)
⇒ A = 1
Putting y=0 in (2)
1 = 4A + B(2) +C
⇒ 1 = 4 + 2B − 1
⇒ 1 = 3 + 2B
⇒ -2 = 2B
⇒ B = -1
Substituting the values of A, B and C in (1)
`1/((y + 1)(y +2)^2) = 1/(y + 1) - 1/(y + 2) - 1/(y + 2)^2`
`=> int (dy)/((y + 1)(y + 2)^2) = int (dy)/(y + 1) - int (dy)/(y + 2) - int (dy)/(y + 2)^2`
= `log |y + 1| - log|y + 2| + 1/(y + 2) + C`
Hence, `int (2x)/((x^2 + 1)(x^2 + 2)^2) dx = log|x^2 + 1|- log |x^2 + 2|+ 1/(x^2 + 2) + C`
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