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How do you differentiate #(cosx)(sinx)#?

1 Answer

Feb 22, 2017

#cos2x#

Explanation:

#y=cosx*sinx#

Applying the product rule:

#dy/dx= cosx*cosx + sinx * (-sinx)#

#= cos^2x-sin^2x#

#= cos2x# [Trig identity]

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