What is the derivative of ${(\frac{1}{sin x})}^{2}$ $(1/sinx)^2$ ?

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What is the derivative of ${(\frac{1}{sin x})}^{2}$ $(1/sinx)^2$ ?

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Answer 1 · 2018-06-22T07:59:35

$- 2 cot x {csc}^{2} x$ $-2cotxcsc^2x$

Explanation:

Note that we can write this more compactly as ${csc}^{2} x$ $csc^2x$ as cosec $x$ $x$ is $\frac{1}{sin x}$ $1/sinx$ .

But to take the derivative this form in terms of sin is more useful. Use the quotient rule for the overall fraction and the chain rule to differentiate ${sin}^{2} x$ $sin^2x$ .

$\frac{d}{d x} [\frac{1}{{sin}^{2} x}] = \frac{{sin}^{2} x \cdot 0 - 1 \cdot 2 sin x cos x}{{sin}^{4} x}$ $d/dx[1/sin^2x]=(sin^2x*0-1*2sinxcosx)/sin^4x$

$= - \frac{2 sin x cos x}{{sin}^{4} x} = - \frac{2 cos x}{{sin}^{3} x}$ $=-(2sinxcosx)/sin^4x=-(2cosx)/sin^3x$

$= - 2 cot x {csc}^{2} x$ $=-2cotxcsc^2x$

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What is the derivative of ${(\frac{1}{sin x})}^{2}$ $(1/sinx)^2$ ?

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