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How do you test for convergence for #int (lnx)/x^2dx# from 1 to infinity?

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Konstantinos Michailidis

Oct 14, 2015

The indefinite integral is

#int (lnx)/x^2dx=-int 1/x*lnxdx=-1/x*lnx+int 1/x*1/x*dx= -1/x*lnx-1/x+c#

Hence

#int_1^oo lnx/x^2dx=[-1/x*lnx-1/x]_1^oo=1#

So the intergal converges

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