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Hard complex number question (1 Viewer)

cutemouse

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Hi,

Could someone please help me out here?

Thanks

 

Trebla

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For (i), write tan θ = sin θ / cos θ and factor out everything until you end up with cis θ so that De Moivre's theorem can be applied.

For (ii), from (i) let θ = π/10 and n = 5, which gives:
(2 + 2i tan π/10)5 + (2 - 2i tan π/10)5 = (26cos π/2) / (cos π/10)5
The RHS = 0, hence
(2 + 2i tan π/10)5 + (2 - 2i tan π/10)5 = 0
=> z = 2i tan π/10 satisfies the equation:
(2 + z)5 + (2 - z)5 = 0

For (iii), the roots take the form 2i tan θ, so we solve cos 5θ = 0 from the RHS of (i), choose the solutions of θ that satisfy this trigonometric equation and since your roots are of the form, 2i tan θ you can then list all 5 roots explicitly given the values of θ found (NB: that you cannot choose 5π/10 since this would make 2i tan θ undefined).

For (iv), expand (ii) using binomial theorem and equate the real parts and let z = 2i tan π/10. This should give a quadratic equation which can be solved for (tan π/10)2
 

jet

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Will do last part after dinner.
 

cutemouse

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Thanks jetblack, it makes alot of sense to me now.

But 1 question though... Where did you get the tan(pi/10) < tan(pi/4) ?

Thanks
 

Aerath

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But 1 question though... Where did you get the tan(pi/10) < tan(pi/4) ?
I believe you can just say: "by inspection". Or just say: "using calculator".
 

gurmies

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1/10 < 1/4

For both sinx and tanx as x ===> pi/2, sinx and tanx ===> 1... for cosx it approaches zero. [0<=x<=pi/2]
 

jet

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Just to make note, there is a problem at m = 5 since z = 2i tan 5π/10 is undefined.
That's interesting. I'm just unsure how to rectify it....


EDIT: Thinking over it, you can see that z^5 cancels out in the equations, meaning that it is actually a polynomial of degree 4 = four roots. I'm thinking just skip m=5.
 
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jet

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just one Q, with this question, did you know to expand the binomials (evetnually leading to a quadratic in x^2) or just tried it in an attempt to answer the Q?
Well from the fact that it contained tan pi/10, it was obvious that the root from one of the previous parts came into it. I just worked from there.
 

untouchablecuz

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Well from the fact that it contained tan pi/10, it was obvious that the root from one of the previous parts came into it. I just worked from there.
well i realised that part, but did u know that um er

i dunno how to explain myself, dw :)
 

cutemouse

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Thanks alot Jetblack. I really understand it now =D
 

cutemouse

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Hi again,

Just 1 last question. For part (ii) couldn't I just sub z=2itan(pi/10) to show that it satisfies the equation, which proves that it's a root?

Thanks
 

yibbon

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Hi again,

Just 1 last question. For part (ii) couldn't I just sub z=2itan(pi/10) to show that it satisfies the equation, which proves that it's a root?

Thanks
jetblack does this, however by saying z=2iTan(pi/10) you assume a value for theta, hence can simply sub the theta value into the RHS and find when Cos(5@) = 0. I think doing the expansion would take too long but would show it's a root yes
 

cutemouse

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Well, if I sub z=2itanpi/10, then I can just use the result from part (i), which yields zero. Nothing too hard about that lol.
 

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