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Question

The value of 5log15(12)+log2(43+7)+log12(110+221) is

A
3
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B
4
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C
5
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D
6
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Solution

The correct option is D 6
5log15(12)=5log5(12)=5log52=2 (alogab=b)

log2(43+7)=log2(73)=log2(10221)

log12(110+221)=log2(10+221)

5log15(12)+log2(43+7)+log12(110+221)
=2+log2(10221)+log2(10+221)
=2+log216
=2+4=6

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