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How do you find the indefinite integral of #int 1/sqrt(x+1)#?

1 Answer

Jan 12, 2017

Let #u = x + 1#. Then #du = dx#.

#=int 1/sqrt(u)du#

#= int u^(-1/2) du#

#=2u^(1/2) + C#

#=2sqrt(x + 1) + C#

Hopefully this helps!

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