For each t - R- let - t - be the greatest integer less than or equal to t- Then- lim x - 1-1- x -sin -1- x - sin-2-1- x -1- x -1- x -A- equals 0B- equals 1C- equals -1D- does not exist

L=lim_x→1^+(1 |x|+sin|1 x|)sin(π2[1 x])|1 x|[1 x] ∵ x→ 1^+⇒ x gt;1 ⇒ nbsp; nbsp;[1 x]= 1, | 1 x| =x 1 ⇒ nbsp; L=lim_x→1^+(1 x+sin(x 1))sin(π2( 1))(x 1)( ...

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Byju's Answer

Standard XII

Mathematics

Standard Limits to Remove Indeterminate Form

For each t ∈ ...

Question

For each $t \in R$ , let $[t]$ be the greatest integer less than or equal to $t$ . Then, $lim x \to 1^{+} \frac{(1 - | x | + sin | 1 - x |) sin (\frac{π}{2} [1 - x])}{| 1 - x | [1 - x]}$

equals

0

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equals

1

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equals

- 1

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does not exist

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Solution

The correct option is A equals $0$
$L = lim x \to 1^{+} \frac{(1 - | x | + sin | 1 - x |) sin (\frac{π}{2} [1 - x])}{| 1 - x | [1 - x]}$
$∵ x \to 1^{+} \Rightarrow x > 1 \Rightarrow [1 - x] = - 1, | 1 - x | = x - 1$
$\Rightarrow L = lim x \to 1^{+} \frac{(1 - x + sin (x - 1)) sin (\frac{π}{2} (- 1))}{(x - 1) (- 1)}$
$= lim x \to 1^{+} (1 - \frac{sin (x - 1)}{x - 1}) (- 1)$
$= - 1 + 1 = 0$

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Similar questions

Q. For each

t \in R

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lim x \to 1 + \frac{(1 - | x | + sin | 1 - x |) sin (\frac{π}{2} [1 - x])}{| 1 - x | [1 - x]}

Q. For each

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lim x \to 0^{+} x ([\frac{1}{x}] + [\frac{2}{x}] + . . . . . . . . + [\frac{15}{x}])

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lim x \to 0 + x ([\frac{1}{x}] + [\frac{2}{x}] + . . . . . + [\frac{15}{x}])

Q. For each

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is equal to :

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For each t∈R, let [t] be the greatest integer less than or equal to t. Then, limx→1+(1−|x|+sin|1−x|)sin(π2[1−x])|1−x|[1−x]

The correct option is A equals 0L=limx→1+(1−|x|+sin|1−x|)sin(π2[1−x])|1−x|[1−x] ∵x→1+⇒x>1⇒[1−x]=−1,|1−x|=x−1 ⇒L=limx→1+(1−x+sin(x−1))sin(π2(−1))(x−1)(−1) =limx→1+(1−sin(x−1)x−1)(−1) =−1+1=0

For each $t \in R$ , let $[t]$ be the greatest integer less than or equal to $t$ . Then, $lim x \to 1^{+} \frac{(1 - | x | + sin | 1 - x |) sin (\frac{π}{2} [1 - x])}{| 1 - x | [1 - x]}$