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CosmoLaura · Feb 26, 2013, 11:19 PM

I don't know how to do this exercise. Any help?

CosmoLaura · Feb 26, 2013, 11:25 PM

sin 3x-cosx/3=0
sin 3x=sin(2x+x)=sin2xcosx+cos2xsinx
sin2x=2sinxcosx
cos2x=1-2sin^2x
sin3x=3sinx-4sin^3x
That it's all I know. How can I transform cosx/3 to cos x?

ebaines · Feb 27, 2013, 08:33 AM

CosmoLaura:

Please clarify your question, because $\sin(3x) \ \ne \ \cos(x/3)$ .

I've tried other combinations of notations trying to guess what you mean, thinking maybe you meant $\sin^3x$ and $(\cos x)/3$ , but none of it works out.

CosmoLaura · Feb 27, 2013, 09:53 AM

Sorry about that, but the exercise consist in solving this trigonometrical equation! Nothing else. I have to find a solution for x!

ebaines · Feb 27, 2013, 10:26 AM

Ah, now I get it! I assuemd that this was an exercise to prove a trig identity - thanks for the clarification.

But I still am not sure - is the right hand side meant to be cos(x/3) or cos(x)/3?

CosmoLaura · Feb 27, 2013, 10:50 AM

cos(x/3)

CosmoLaura · Feb 27, 2013, 10:57 AM

Sorry of that. My fault. I didn't be attentive at this point when you wrote (cosx)/3.. It is cos(x/3).

ebaines · Feb 27, 2013, 11:17 AM

OK, two ways to do this:

1. The brute force way (which quite honestlly was my first approach at this): use a numerical technique such as Newton's method to find 'x' that solves sin(3x)-cos(x/3) = 0.

or,

2. Try a trick. Given that cos(w) = sin(90-w), try substituting sin(90-x/3) for the right hand side. It works right out!

CosmoLaura · Feb 27, 2013, 11:21 AM

I get it! Thanks.