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Question

If 48x24, then the minimum value of 1x2 is

A
16
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B
116
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C
169
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D
916
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Solution

The correct option is C 169
Given
48x244+28x2+24+228x614x34
0x2916
>1x2169
Hence, the minimum value of 1x2=169

Alternate Solution:
x[14,34]
whenever 0 lies in the interval while taking the reciprocal, we break it into two parts such that 0 can be excluded.
1x only defined for [14,0)(0,34]
x[14,0)1x(,4]1x2[16,) (1)x(0,34]1x[43,)1x2[169,) (2)
From (1) and (2)
1x2[169,)
So, the least value of 1x2=169

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