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COMPLEX NUMBER mix TRIG (1 Viewer)

ne plus ultra

New Member
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Sep 27, 2006
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the question is shown as below:

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Express cos(6x) and sin(6x) in terms of cos(x) and sin(x) and hence tan(6x) in terms of tan(x).

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I even dont know how to start at all...><
Thanks!~
 

ne plus ultra

New Member
Joined
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Messages
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2007
webby234 said:
(cosx + isinx)6

Using de Moivre's
= cos6x + isin6x

Using the binomial theorem
= cos6x + 6isinxcos5x - 15sin2xcos4x - 20isin3xcos3x + 15sin4xcos2x + 6isin5xcosx - sin6x

Equate real coefficients
cos6x = cos6x - 15(1 - cos2x)cos4 + 15(1 - cos2x)2cos2x - (1 - cos2x)3)

Expand that, do likewise for sin6x and then put sin6x over cos6x. A tough and long process - usually in exams you'll be asked 3x or 4x

solved. thank you very much!
 

Slidey

But pieces of what?
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Kinda. On that note, I've never seen this question turn up in an external exam.

Why? Because it is an easy process to follow, but it is also lengthy. That is to say: regardless of how 'complex' you deem it, it doesn't test component B.
 

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