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How do you integrate # int( 2 / (x + 1) )^2dx#?

1 Answer

Dec 21, 2016

#-4/(x + 1) + C#

Explanation:

Let #u = 2/(x + 1)# and #du = -2/(x + 1)^2dx# and #dx = -(x + 1)^2/2du#

#=> int(2/(x + 1))^2 * -(x + 1)^2/2 du#

#=> int(4/(x + 1)^2 * -(x + 1)^2/2) du#

#=> int(-2)du#

Use the rule #int(x^n)dx = x^(n + 1)/(n + 1) + C#

#=> -2u#

#=> -2(2/(x + 1)) + C#

#=> -4/(x + 1) + C#

Hopefully this helps!

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