MCQ
વિધેય $f(x) = \frac{x}{{1 + |x|}}$ એ . . . બિંદુએ વિકલનીય છે.
- ✓$( - \infty ,\infty )$
- B$[0,\infty ]$
- C$( - \infty ,\,0) \cup (0,\infty )$
- D$(0,\infty )$
$g(x) = 1 + |x|,\,\,x \in ( - \infty ,\infty )$
Here $h$ is differentiable in $( - \infty ,\infty )$ but $|x|$ is not differentiable at $x = 0$.
Therefore $g$ is differentiable in $( - \infty ,0) \cup (0,\infty )$ and $g(x) \ne 0,\rlap{--} Vx \in $ $( - \infty ,\infty )$,
therefore $f(x) = \frac{{h(x)}}{{g(x)}} = \frac{x}{{1 + |x|}}$
It is differentiable in $( - \infty ,0) \cup (0,\infty )$ for $x = 0$
$\mathop {\lim }\limits_{h \to 0} \frac{{f(h) - f(0)}}{{h - 0}} = \mathop {\lim }\limits_{h \to 0} \frac{{\frac{h}{{1 + |h|}} - 0}}{h} = \mathop {\lim }\limits_{h \to 0} \frac{1}{{1 + |h|}} = 1$
Therefore $f$ is differentiable at $x = 0$,
so $f$ is differentiable in $( - \infty ,\infty )$.
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