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Question

Number of integral values of x, that satisfy log0.3(x2x+1)>0 is

A
0
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B
1
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C
2
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D
infinite
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Solution

The correct option is A 0
Consider log0.3(x2x+1)
x2x+1>0 xR as D<0
xR

Now, log0.3(x2x+1)>0
x2x+1<1 [a=0.3<1]
x2x<0
x(x1)<0
0<x<1
So, there is no integral value of x satisfying the inequality.

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