complex numbers (1 Viewer)

Koroneos · Mar 2, 2010

Can someone explain to me why:

If $\omega,\omega_2,...\omega_n$ are the nth roots of unity, then $\sum_{i=1}^{n} \omega _i=0$

scardizzle · Mar 2, 2010

well w1,w2...wn are all roots of the equation z^n = 1
using the sum of roots, we know that w1 + w2 +...wn = -b/a
in this case b = 0 hence w1 + w2 +...+wn = 0
(sorry for the lack of latex i cbf to learn at this point in time)

Affinity · Mar 26, 2010

Koroneos said:
Can someone explain to me why:

If $\omega,\omega_2,...\omega_n$ are the nth roots of unity, then $\sum_{i=1}^{n} \omega _i=0$

slightly more elementary:
$(1 - \omega_1) \times \left(\sum_{i=1}^{n} \omega _i\right) =\sum_{i=1}^{n} \omega _i - \sum_{i=1}^{n} \omega _i = 0$
and since $(1-\omega_1)$ is not 0, you know that the sum is 0

annabackwards · Mar 26, 2010

An alternative method:
Since Wn is a root of z^n = 1
Then Wn=1
Wn-1 = 0
(w-1)(1+w2+w3+w4+.....+wn) = 0
Since w=/=1 then 1+w2+w3+w4+.....+wn = 0

cutemouse · Mar 26, 2010

annabackwards said:
Since w =/= 0

Uhh no.

annabackwards · Mar 27, 2010

jm01 said:
Uhh no.

Oh yes, it shouls say "Since w=/=1"

Post edited, thanks for the pick up!

adomad · Apr 8, 2010

is it cause all the vectors cancel out?

Flying_Penis · Apr 8, 2010

adomad said:
is it cause all the vectors cancel out?

Retard, its because sum of roots = 0. Jesus christ you make me sick.

complex numbers (1 Viewer)

Koroneos

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scardizzle

Salve!

Affinity

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annabackwards

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cutemouse

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annabackwards

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adomad

HSC!!

Flying_Penis

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