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How do you find the indefinite integral of #int (x+1/x)^2dx#?

1 Answer

Jan 17, 2017

#int(x+1/x)^2dx=x^3/3+2x-1/x+C#

Explanation:

Note that:

#(x+1/x)^2=(x+1/x)(x+1/x)#

#color(white)((x+1/x)^2)=x^2+2x(1/x)+(1/x)^2#

#color(white)((x+1/x)^2)=x^2+2+x^-2#

So:

#I=int(x+1/x)^2dx=intx^2dx+2intdx+intx^-2dx#

Using #intdx=x# and #intx^ndx=x^(n+1)/(n+1)# we obtain:

#I=x^3/3+2x+x^-1/(-1)+C#

#I=x^3/3+2x-1/x+C#

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