How do you find the value of #tan(theta/2)# given #sintheta=(-3/5)# and #(3pi)/2<theta<2pi#?

1 Answer
Nghi N.
Sep 18, 2016

#- 1/3#

Explanation:

First find cos t by using trig identity: #cos^2 t = 1 - sin^2 t#
#cos^2 t = 1 - 9/25 = 16/25# --> #cos t = +- 4/5#.
Since t is in Quadrant IV, then cos t is positive --> cos t = 4/5
Next find sin (t/2) and cos (t/2) by using trig identities:
#1 + cos 2t = 2cos^2 t#
#1 - cos 2t = 2sin^2 t#
Find #cos (t/2)#
#2cos^2 (t/2) = 1 + cos t = 1 + 4/5 = 9/5#
#cos^2 (t/2) = 9/10#
#cos (t/2) = 3/sqrt10 = 3sqrt10/10# (because cos (t/2) is positive).
Find sin (t/2)
#2sin^2 (t/2) = 1 - cos t = 1 - 4/5 = 1/5#
#sin^2 (t/2) = 1/10#
#sin (t/2) = +- 1/sqrt10 = +- sqrt10/10#
Since t is in Quadrant IV, sin t is negative
#tan (t/2) = sin/(cos) = (- sqrt10/10)(10/(3sqrt10)) = - 1/3 #

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