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Question

cot1 (ex)exdx is equal to

A
12 ln(e2x+1)cot(ex)ex+x+c
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B
12 ln(e2x+1)+cot1(ex)ex+x+c
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C
12 ln(e2x+1)cot1(ex)exx+c
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D
12 ln(e2x+1)+cot1(ex)exx+c
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Solution

The correct option is C 12 ln(e2x+1)cot1(ex)exx+c
Let cot1(ex)=θex=cotθ
exdx=cosec2θ dθ
θcotθ×(cosec2θ dθcotθ)
=θ sec2θdθ=[(θ tanθ)1.tanθ dθ]
=θ tan θ+ln(sec θ)+c



=ln(1+e2xex)cot1(ex)ex+c
=12ln(e2x+1)cot1(ex)exx+c

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