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How do you differentiate # y = sin 5x - 1/3 sin^3 5x#?

1 Answer

sankarankalyanam

Mar 25, 2018

#color(brown)(y' = 5 cos (5x) (1 - sin^2 (5x))#

Explanation:

#y = sin 5x - (1/3) sin^3 (5x)#

#y' = (dy)/(dx) = cos 5x * 5 - (1/cancel3) cancel3 sin^2 (5x) cos 5x * 5#

#y' = 5 cos (5x) - 5 sin^2 (5x) * cos (5x)#

#y' = 5 cos (5x) (1 - sin^2 (5x))#

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