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Complex numbers/Polynomials? (1 Viewer)

Rabbi_Nigger

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Just simply substitute, w into the equation, using de moivre's theorem, youll get a sweet nigga ass simplification, do simple addition, and subtraction, lhs = 0
 

Trebla

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Let w = cos(2pi/7) + isin(2pi/7). Prove that 1 + w + w^2 + w^3 + w^4 + w^5 + w^6 = 0
Using DeMoivre's theorem we have: w7 = 1
1 + w + w2 + w3 + w4 + w5 + w6
= (w7 - 1)/(w - 1)
as it is a geometric series
but since w7 = 1 then it becomes zero
 

Rabbi_Nigger

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Using DeMoivre's theorem we have: w7 = 1
1 + w + w2 + w3 + w4 + w5 + w6
= (w7 - 1)/(w - 1)
as it is a geometric series
but since w7 = 1 then it becomes zero
OI!!!! What about my way!!!?
 

nikkifc

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You could also use sum of roots = 0 by consider w7=1 as a polynomial equation and by noting that there 7 distinct roots are 1, w, w2, ... , w7.
 

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