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How do you find the indefinite integral of #int 1/(x-5)#?

1 Answer

Dec 16, 2016

#int1/(x-5)dx=ln|(x-5)|+C#

Explanation:

#int(f'(x))/(f(x))dx=ln|f(x)|+C#

#int1/(x-5)dx#

#x!=5#

#d/(dx)(x-5)=1#

#int1/(x-5)dx=ln|(x-5)|+C#

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