MC Squidge
BOS' Apex Predator
find the general solution for sin[3x]sin[x]=2cos[2x]+1
the hint was prove 1/2(cos[(M-N)x]-cos[(M+N)x]=sin[Mx]sin[Nx]
the hint was prove 1/2(cos[(M-N)x]-cos[(M+N)x]=sin[Mx]sin[Nx]
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Trig Proof (1 Viewer)
- Thread starter MC Squidge
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abc123doremi
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- 2009
LHS=
sin 3x . sin x = -0.5 [cos 4x - cos x]
= -0.5 [(2cos²2x-1) - cos x]
= -0.5 [(2{2cosx -1}² -1 - cos x]
RHS =2 (2cos²x -1) +1
equate LHS=RHS to form a quadratic in cos x
i haven't brushed on my double-angle formulae etc so i might be wrong
but you get the idea
oh and the proof they require of you is simple ...just expand using addition formulae. that's what i used in the first lines of this proof
sin 3x . sin x = -0.5 [cos 4x - cos x]
= -0.5 [(2cos²2x-1) - cos x]
= -0.5 [(2{2cosx -1}² -1 - cos x]
RHS =2 (2cos²x -1) +1
equate LHS=RHS to form a quadratic in cos x
i haven't brushed on my double-angle formulae etc so i might be wrong
but you get the idea
oh and the proof they require of you is simple ...just expand using addition formulae. that's what i used in the first lines of this proof
study-freak
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- Feb 8, 2008
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- Male
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- 2009
Last edited:
MC Squidge
BOS' Apex Predator
thanks