Question #48a63

1 Answer
Nghi N.
Feb 8, 2017
  • (1 + sqrt2)

Explanation:

Call tan (5pi)/8 = tan t
Trig table and unit circle give:
tan 2t = tan ((10pi)/8) = tan ((5pi)/4) = tan (pi/4 + pi) =
tan (pi/4) = 1
Use trig identity: tan 2t = (2tan t)/(1 - tan^2 t)
In this case, we have:
(2tan t)/(1 - tan^2 t) = 1
2tan t = 1 - tan^2 t
tan^2 t + 2tan t - 1 = 0
Solve this quadratic equation for tan t, using the improved quadratic formula (Socratic Search):
D = d^2 = b^2 - 4ac = 4 + 4 = 8 --> d = +- 2sqrt2
There are 2 real roots:
tan t = -b/(2a) +- d/(2a) = - 2/2 +- (2sqrt2)/2 = - 1 +- sqrt2
Since tan ((5pi)/8) is negative (Quadrant II), there for;
tan t = tan ((5pi)/8) = - (1 + sqrt2)
Check by calculator:
tan ((5pi)/8) = tan (112.5) = - 2.414
- ( 1 + sqrt2) = - 2.414 . OK

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