kwabon
Banned
assuming cos 3x = 4(cos x)^3 - 3cos x, where cos 3x = 1/2
show 8y^3 - 6y - 1 = 0, where y = cos x (DONE)
hence evaluate cos (pi/9) cos (2pi/9) cos (4pi/9) (DONE BUT VERY DODGEY)
my question is, i looked at the answers and it said
line 1; cos (pi/9) cos (5pi/9) cos (7pi/9) = 1/8
line 2; cos (pi/9) - cos (4pi/9) - cos (2pi/9) = 1/8
WTF at line 2, they minused 180 from it, instead of the usual 360, can you even do that? could someone go about doing this question and please explain the evaluation bit, because i dont get whats happening.
thanks.
show 8y^3 - 6y - 1 = 0, where y = cos x (DONE)
hence evaluate cos (pi/9) cos (2pi/9) cos (4pi/9) (DONE BUT VERY DODGEY)
my question is, i looked at the answers and it said
line 1; cos (pi/9) cos (5pi/9) cos (7pi/9) = 1/8
line 2; cos (pi/9) - cos (4pi/9) - cos (2pi/9) = 1/8
WTF at line 2, they minused 180 from it, instead of the usual 360, can you even do that? could someone go about doing this question and please explain the evaluation bit, because i dont get whats happening.
thanks.
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