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Question

If limx0log(x+a)-logax+klimxelogx-1x-e=1, then the value of k is:


A

1-1a

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B

e1-a

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C

e1-1a

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D

e1+a

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Solution

The correct option is C

e1-1a


Explanation for the correct option.

Step 1: Solve limx0log(x+a)-logax

limx0log(x+a)-logax=log(0+a)-loga0=loga-loga0=00form

Step 2: Apply L's Hospital Rule

As, limx0log(x+a)-logax is in 00 form, so we will apply L's Hospital Rule, and we get

limx01x+a1-01=limx01x+a=1a

Step 3: Solve limxelogx-1x-e

limxelogx-1x-e=loge-1e-e=1-10=00form

Step 4: Apply L's Hospital Rule

As, limxelogx-1x-e is in 00 form, so we will apply L's Hospital Rule, and we get

limxe1x1-01-0=limxe1x=1e

Step 5: Find the value of k.

limx0log(x+a)-logax+klimxelogx-1x-e=11a+k1e=1ke=1-1ak=e1-1a

Hence, option C is correct.


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