The set of values of p for which $x^{2} - p x + s i n^{- 1} (s i n 4) > 0$ for all real x is given by :

(- 4, 4)

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(- \infty, - 4) \cup (4, \infty)

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ϕ

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None of these

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Solution

The correct option is C $ϕ$
$x^{2} - p x + s i n^{- 1} (s i n 4) > 0$ for all real x.
$\Rightarrow x^{2} - p x + s i n^{- 1} (s i n 4) > 0$
$\Rightarrow x^{2} - p x + (π - 4) > 0 \forall x ϵ R$
$\Rightarrow D = p^{2} - 4 (π - 4) < 0$ $\Rightarrow p^{2} + 16 - 4 π < 0$
Since $16 - 4 π > 0, p^{2} + 16 - 4 π$ cannot be negative for any value of $p ϵ R$ .
$∴$ Set of values of $p = ϕ$

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