Limx- 0e1-x - 1-e1-x -1

F(x)=(e^1/x 1)/(e^1/x) +1, then lim_x→ 0+ f(x) = lim_h→ 0(e^1/h 1)/(e^1/h +1) =lim_h→ 0(e^1/h 1)/(e^1/h) +1 = lim_h→ 0e^1/h×(1 (1/e^1/h)/e^1/h×(1+1/e^1/h ...

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Byju's Answer

Standard XI

Mathematics

Standard Limits to Remove Indeterminate Form

limx→ 0e1/x -...

Question

$l i m_{x \to 0} \frac{(e^{1 / x} - 1)}{(e^{1 / x} + 1)}$

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-1

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Does not exist

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Solution

The correct option is D
Does not exist

f(x)= $\frac{(e^{1 / x} - 1)}{(e^{1 / x}) + 1}$ , then

$l i m_{x \to 0 +}$ f(x) = $l i m_{h \to 0}$ $\frac{(e^{1 / h} - 1)}{(e^{1 / h} + 1)}$ = $l i m_{h \to 0}$ $\frac{(e^{1 / h} - 1)}{(e^{1 / h}) + 1}$ = $l i m_{h \to 0}$ $\frac{e^{1 / h} \times (1 - (\frac{1}{e^{1 / h}})}{e^{\frac{1}{h}} \times (1 + \frac{1}{e^{1 / h}})}$ = 1
Similarly $l i m_{x \to 0 -}$ f(x) = -1. Hence limit does not Exist

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Similar questions

lim x \to 0 \frac{e^{1 / x} - 1}{e^{1 / x} + 1}

, is

Q. Assertion :

lim x \to 0 \frac{e^{1 / x} - 1}{e^{1 / x} + 1}

does not exist. Reason:

lim x \to 0^{+} \frac{e^{1 / x} - 1}{e^{1 / x} + 1}

does not exist.

Q. Show that

lim x \to 0 \frac{e^{1 / x} - 1}{e^{1 / x} + 1}

does not exist.

Q. STATEMENT-1 :

lim x \to 0 [x] {\frac{e^{1 / x} - 1}{e^{1 / x} + 1}}

(where [.] represents the greatest integer function) does not exist.
STATEMENT-2 :

lim x \to 0 (\frac{e^{1 / x} - 1}{e^{1 / x} + 1})

does not exists.

$l i m_{x \to 0} \frac{(e^{1 / x} - 1)}{(e^{1 / x}) + 1}$

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limx→0(e1/x−1)(e1/x+1)

The correct option is D Does not exist f(x)=(e1/x−1)(e1/x)+1, then limx→0+ f(x) = limh→0(e1/h−1)(e1/h+1) =limh→0(e1/h−1)(e1/h)+1 = limh→0e1/h×(1−(1e1/h)e1h×(1+1e1/h) = 1 Similarly limx→0−f(x) = -1. Hence limit does not Exist

$l i m_{x \to 0} \frac{(e^{1 / x} - 1)}{(e^{1 / x} + 1)}$