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How do you evaluate the definite integral #int dx/x# from #[1,2]#?

1 Answer

Shwetank Mauria

Oct 22, 2016

#int_1^2(dx)/x=ln2#

Explanation:

As #d/(dx)lnx=1/x#

#int_1^2(dx)/x=int_1^2(dx)/x=[lnx]_1^2#

= #ln2-ln1=ln2-0=ln2#

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