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∫1log(xx)(logx+1) dx =

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a

log|logx+1|+c

b

log|logx+1logx|+c

c

log|logxlogx+1|+c

d

log|logx−1|+c

answer is C.

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Detailed Solution

∫1xlogx(logx+1)dx logx=t⇒1x dx=dt ∫1t(t+1) dt =∫(1t−1t+1) dt =logt−log(t+1)+c =log|logx1+logx|+c

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∫1log(xx)(logx+1) dx =