Lim x-0x-2sin x-x2-2sin x-1-sin2x- x-1-

Lim _x→0x+2sin x√(x^2+2sin x+1) √(sin^2x x+1) =lim _x→0(x+2sin x)(√(x^2+2sin x+1)+√(sin^2x x+1))x^2+2sin x+1 sin^2x+x 1 =lim _x→0(x+2sin x) x^2+2sin x sin ...

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Standard XII

Mathematics

L'Hospital Rule to Remove Indeterminate Form

lim x→0x+2sin...

Question

$lim x \to 0 \frac{x + 2 sin x}{\sqrt{x^{2} + 2 sin x + 1} - \sqrt{{sin}^{2} x - x + 1}} =$

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Solution

The correct option is B $2$
$lim x \to 0 \frac{x + 2 sin x}{\sqrt{x^{2} + 2 sin x + 1} - \sqrt{{sin}^{2} x - x + 1}} = lim x \to 0 \frac{(x + 2 sin x) (\sqrt{x^{2} + 2 sin x + 1} + \sqrt{{sin}^{2} x - x + 1})}{x^{2} + 2 sin x + 1 - {sin}^{2} x + x - 1} = lim x \to 0 \frac{(x + 2 sin x)}{x^{2} + 2 sin x - {sin}^{2} x + x} \times 2$
As it is $\frac{0}{0}$ form
Applying L'Hospitals' Rule
$= lim x \to 0 \frac{2 (1 + 2 cos x)}{2 x + 2 cos x - 2 sin x cos x + 1}$
$= 2$

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L'Hospital Rule to Remove Indeterminate Form

Standard XII Mathematics

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limx→0x+2sinx√x2+2sinx+1−√sin2x−x+1=

The correct option is B 2limx→0x+2sinx√x2+2sinx+1−√sin2x−x+1=limx→0(x+2sinx)(√x2+2sinx+1+√sin2x−x+1)x2+2sinx+1−sin2x+x−1=limx→0(x+2sinx)x2+2sinx−sin2x+x×2 As it is 00 form Applying L'Hospitals' Rule =limx→02(1+2cosx)2x+2cosx−2sinxcosx+1 =2

$lim x \to 0 \frac{x + 2 sin x}{\sqrt{x^{2} + 2 sin x + 1} - \sqrt{{sin}^{2} x - x + 1}} =$