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Question

Suppose that f(x) is a quadratic expression, positive for all real x. If g(x)=f(x)+f(x)+f′′(x), then
(where f(x) and f′′(x) represent first and second derivative respectively)

A
g(x)<0 for all real values of x
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B
g(x)>0 for all real values of x
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C
g(x)=0 for some real values of x
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D
g(x)0 for some real values of x
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Solution

The correct option is B g(x)>0 for all real values of x
Let f(x)=ax2+bx+c, a0 such that f(x)>0 for all xR.
Then, a>0 and b24ac<0.

Now, g(x)=f(x)+f(x)+f′′(x)
g(x)=ax2+(b+2a)x+(b+2a+c)
Discriminant of g(x) is
D=(b+2a)24a(b+2a+c)
=b24a24ac
=(b24ac)4a2
<0 (b24ac<0)
Therefore, g(x)>0 for all xR

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