How do you find the x-coordinates of all points on the curve #y=sin2x-2sinx# at which the tangent line is horizontal?

1 Answer
Noah G
Nov 6, 2016

In the interval #0 ≤ x ≤ 2pi#, the points are #x= (5pi)/6, (7pi)/6 and 0#.

Explanation:

The slope of the tangent where it is horizontal is #0#. Since the output of the derivative is the instantaneous rate of change (slope) of the function, we will need to find the derivative.

#y = sin2x - 2sinx#

Let #y = sinu# and #u = 2x#. By the chain rule, #dy/dx= cosu xx 2 = 2cos(2x)#.

#y' = 2cos(2x) - 2cosx#

We now set #y'# to #0# and solve for #x#.

#0 = 2cos(2x) - 2cosx#

Apply the identity #cos(2beta) = 2cos^2beta - 1#

#0 = 2(2cos^2x - 1) - 2cosx#

#0 = 4cos^2x - 2cosx - 2#

#0 = 2(2cos^2x - cosx - 1)#

#0 = 2cos^2x - 2cosx + cosx - 1#

#0 = 2cosx(cosx- 1) + 1(cosx - 1)#

#0= (2cosx + 1)(cosx - 1)#

#cosx= -1/2 and cosx = 1#

#x = (5pi)/6, (7pi)/6 and 0#

Hopefully this helps!

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