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Question

The value of 1e1+log(x)3xdx=


A

14

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B

12

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C

34

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D

e

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E

1e

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Solution

The correct option is B

12


Explanation for the correct option:

Compute the required value:

Given: 1e1+log(x)3xdx

I=1e1+log(x)3xdxI=131e1xdx+131elog(x)xdx

Let log(x)=t1x·dx=dt

when x=1,t=0x=e,t=1

I=1301(1)dt+1301tdtI=13t01+13t2201I=131-0+1312-0I=13+16I=12

Hence, option B is the correct answer.


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