How do you solve #cos 2x= cos x-1#?

1 Answer
Jim G.
Jan 29, 2016

#x = 60^@ , 90^@ , 270^@ and 300^@ #

Explanation:

Using trig formulae:

# cos 2x = cos^2x - sin^2x = cos^2x - ( 1 - cos^2x ) = 2cos^2x - 1#

Replace cos2x by # (2cos^2 x - 1 )#

cos2x = cox - 1 becomes # 2cos^2x - 1 = cosx - 1 #

This is a quadratic function and to solve equate to zero.

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

simplifies to : # 2cos^2x - cosx = 0 #

factorise : cosx (2cosx - 1 ) = 0

→ cosx = 0 → x = # 90^@ , 270^@ #

and cosx # = 1/2 →x = 60^@ , 300^@ #

These solutions are in the interval 0 < x ≤ 360

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