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How do you find the derivative of #sin^3(2x) / x#?

1 Answer

Apr 16, 2015

In this way, using the division rule:

#y'=(3sin^2 2x * cos2x * 2 *x-sin^3 2x*1)/x^2=#

#=(sin^2 2x(6xcos2x-sin2x))/x^2#.

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