Solution set of 2-x2-x-1-1-x-1-2 x-1-x3-1 isA- - 2-B- -1 -1-2-C- -2- -D- -1 -1-2

The correct option is B (−∞, −1) ∪ (−1, 2]2x^2−x+1−1x+1≥2x−1x^3+1 ⇒2x^2−x+1−1x+1 2x−1x^3+1≥0 nbsp; ⇒x^2−x−2(x+1)(x^2−x+1)≤ 0 ⇒(x+1)(x−2)(x+1)(x2−x+1)≤ 0 ⇒x−2 ...

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Byju's Answer

Standard XII

Mathematics

Method of Intervals

Solution set ...

Question

Solution set of $\frac{2}{x^{2} - x + 1} - \frac{1}{x + 1} \geq \frac{2 x - 1}{x^{3} + 1}$ is

(- \infty, 2]

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(- \infty, - 1) \cup (- 1, 2]

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[2, \infty)

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(- \infty, - 1) \cup (1, 2)

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Solution

The correct option is B $(- \infty, - 1) \cup (- 1, 2]$
$\frac{2}{x^{2} - x + 1} - \frac{1}{x + 1} \geq \frac{2 x - 1}{x^{3} + 1}$
$\Rightarrow \frac{2}{x^{2} - x + 1} - \frac{1}{x + 1} - \frac{2 x - 1}{x^{3} + 1} \geq 0$
$\Rightarrow \frac{x^{2} - x - 2}{(x + 1) (x^{2} - x + 1)} \leq 0$
$\Rightarrow \frac{(x + 1) (x - 2)}{(x + 1) (x 2 - x + 1)} \leq 0$
$\Rightarrow \frac{x - 2}{x^{2} - x + 1} \leq 0,$ where $x \neq - 1$

$x^{2} - x + 1 > 0$ as $D = 1 - 4 = - 3 < 0$
Hence, $x - 2 \leq 0 \Rightarrow x \leq 2$
$∴ x \in (- \infty, - 1) \cup (- 1, 2]$

Suggest Corrections

Solution set of 2x2−x+1−1x+1≥2x−1x3+1 is

Solution set of $\frac{2}{x^{2} - x + 1} - \frac{1}{x + 1} \geq \frac{2 x - 1}{x^{3} + 1}$ is