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How do you evaluate #int (-1/(3x)) dx# for [1/11, 1/5]?

1 Answer

Oct 19, 2015

#0,26282#

Explanation:

#int_(1/11)^(1/5)-1/(3x)dx=-1/3int_(1/11)^(1/5)1/xdx#

#=1/3[ln|x|]_(1/11)^(1/5)#

#=1/3[ln(1/5)-ln(1/11)]#

#=0,26282#

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