$\frac{d}{d x} (\log (s e c x + \tan x)) =$

$\cos e c x$

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$s e c x$

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$\tan x$

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$\cos x$

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Solution

The correct option is B
$s e c x$

Find the differentiation of given expression:
Given, $\frac{d}{d x} (\log (s e c x + \tan x))$
Differentiate it with respect to $x$
$\begin{array}{rcl} \frac{d y}{d x} & = & \frac{1}{(s e c x + \tan x)} \times \frac{d}{d x} (s e c x + \tan x) \\ = & [\frac{1}{(s e c x + \tan x)}] \times (s e c x \tan x + s e c^{2} x) \\ = & [\frac{1}{(s e c x + \tan x)}] \times s e c x (\tan x + s e c x) \\ = & s e c x \end{array}$
Hence, Option (B) is correct.

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