The range of fx-x2-14 x-9-x2-2 x-3- x - is

The correct option is B [ 5, 4]Let y=x^2+14x+9x^2+2x+3 ⇒ (y 1)x^2+2(y 7)x+(3y 9) = 0 The above equation is quadratic in x. As x ∈ℝ, ∴ D ≥ 0 ⇒ 4(y 7)^2 4(y 1)( ...

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Standard XII

Mathematics

Rational Function

The range of ...

Question

The range of $f (x) = \frac{x^{2} + 14 x + 9}{x^{2} + 2 x + 3}, x \in R$ is

R - {1, 3}

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[- 5, 4]

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R

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R - {- 5, 4}

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Solution

The correct option is B $[- 5, 4]$
Let $y = \frac{x^{2} + 14 x + 9}{x^{2} + 2 x + 3}$
$\Rightarrow (y - 1) x^{2} + 2 (y - 7) x + (3 y - 9) = 0$
The above equation is quadratic in $x$ .
As $x \in R$ ,
$∴ D \geq 0$
$\Rightarrow 4 (y - 7)^{2} - 4 (y - 1) (3 y - 9) \geq 0$
$\Rightarrow y^{2} + y - 20 \leq 0$
$\Rightarrow (y - 4) (y + 5) \leq 0$
$\Rightarrow y \in [- 5, 4]$

Hence, $R (f) = [- 5, 4]$

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Rational Function

Standard XII Mathematics

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The range of f(x)=x2+14x+9x2+2x+3, x∈R is

The correct option is B [−5,4]Let y=x2+14x+9x2+2x+3 ⇒(y−1)x2+2(y−7)x+(3y−9)=0 The above equation is quadratic in x. As x∈R, ∴D≥0 ⇒4(y−7)2−4(y−1)(3y−9)≥0 ⇒y2+y−20≤0 ⇒(y−4)(y+5)≤0 ⇒y∈[−5,4] Hence, R(f)=[−5,4]

The range of $f (x) = \frac{x^{2} + 14 x + 9}{x^{2} + 2 x + 3}, x \in R$ is