How do you evaluate sin((23pi)/6) and cos((17pi)/6)?

1 Answer
Nghi N.
Apr 8, 2016

(-1/2) and (-sqrt3/2)

Explanation:

Trig unit circle and trig table -->
sin ((23pi)/6) = sin (-pi/6 + (24pi)/6) = sin (-pi/6 + 4pi) =
= sin (-pi/6) = - sin (pi/6) = - 1/2
Unit circle and property of supplemental arcs give -->
cos ((17pi)/6) = cos (-pi/6 + (18pi)/6) = cos (-pi/6 + 3pi) =
= cos (-pi/6 + pi) = - cos (pi/6) = - sqrt3/2

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