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Question

0 (axbx)dx=

A
1log a1log b
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B
log alog b
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C
log a+log b
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D
1log a+1log b
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Solution

The correct option is A 1log a1log b
0 (axbx)dx=[axlog(a1)bxlog(b1)]0=[1log a1log b]
=1log a1log b

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