Probably really easy, derivative of cotx/sinx

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Homework Statement


Find the derivative of the function.

f(x) = [tex]\frac{cotx}{sinx}[/tex]

Homework Equations



[tex]\frac{cotx}{sinx}[/tex] = [tex]\frac{cosx}{sin^{2}x}[/tex]

The Attempt at a Solution



I have the solution guide, I think I'm just having a brain fart but this is what I have so far which is the last step before the final answer

[tex]\frac{-sin^{2}x - 2cos^{2}x}{sin^{3}x}[/tex]

The next step, which is the answer according to the book is

[tex]\frac{-1-cos^{2}x}{sin^{3}x}[/tex]

Am I just not seeing something on my last step? I think they got the -1 from using the pythagorean indentity but then why is the cosx still hanging around? Thanks.
 
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You will feel ashamed enough to put a paper bag on the head.

[tex]-\sin^2x -2\cos^2x = -(\sin^2x+\cos^2x)-\cos^2x[/tex]
 
Borek said:
You will feel ashamed enough to put a paper bag on the head.

[tex]-\sin^2x -2\cos^2x = -(\sin^2x+\cos^2x)-\cos^2x[/tex]

Yep that's most definitely embarrassing! Thanks!
 

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