Prove this trigonometric identity (1 Viewer)

phoenix159

Member
Joined
May 19, 2013
Messages
79
Gender
Male
HSC
2014
cos6x + sin6x = 1/4 (1 + 3 cos2 2x)

:wavey:

Let cos (x) = c and sin (x) = s

LHS = c6 + s6
= (c2 + s2)(c2 - c4s4 + s2)
= 1 X (c2 - c4s4 + s2)
= c2 - c4s4 + s2

sin2x = 1 - cos2x

LHS = (c2 - c4[1 - c4] + [1 - c2])
= c2 - c4 + c8 + 1 - c2
= c8 - c4 + 1

RHS = 1/4 (1 + 3 cos2 2x)

cos 2x = cos2x - sin2x = cos2x - (1 - cos2x) = 2cos2x - 1

RHS = 1/4 (1 + 3 cos22x)
= 1/4 (1 + 3 [2 cos2x - 1]2)
= 1/4 (1 + 3 [2 cos2x - 1]2)
= 1/4 (1 + 3 [2 c - 1]2)
= 1/4 (1 + 3 [4 c2 - 4 c + 1])
= 1/4 (1 + 12 c2 - 12 c + 3)
= 1/4 (4 + 12 c2 - 12 c)
= 3 c2 - 4c + 1
 
Last edited:

braintic

Well-Known Member
Joined
Jan 20, 2011
Messages
2,137
Gender
Undisclosed
HSC
N/A
I believe it is: cos6x + sin6x = 1/4 (1 + 3 cos^2 2x)
 

phoenix159

Member
Joined
May 19, 2013
Messages
79
Gender
Male
HSC
2014
Cos is meant to be cos^2 --> cos6x + sin6x = 1/4 (1 + 3 cos^2 2x)
 

pheelx3

l33t
Joined
Sep 17, 2012
Messages
126
Gender
Undisclosed
HSC
2014
heh, so who are you, Fort St?
(how did you think of our exam?)
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top