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Simple De Moivre's Q. (1 Viewer)
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nightweaver066
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Let z = cis@
(cis@)^2 = i
cis2@ = i (By De Moivre's theorem)
cos2@ + isin2@ = i
Equating real and imaginary terms,
cos2@ = 0, sin2@ = 1
Therefore 2@ = pi/2, 5pi/2
@ = pi/4, 5pi/4
(cis@)^2 = i
cis2@ = i (By De Moivre's theorem)
cos2@ + isin2@ = i
Equating real and imaginary terms,
cos2@ = 0, sin2@ = 1
Therefore 2@ = pi/2, 5pi/2
@ = pi/4, 5pi/4
Last edited:
mathsbrain
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z^2=i
let z=rcis(x), polar form for i=cis(pi/2)
this means r^2 cis(2x) = 1cis (pi/2 +2kpi)
therefore equating moduli and arguments gives:
r=1, x= (pi/2 +2k pi)/2 where k=0,1
so your answers are z1=cis(pi/4) and z2 = cis(3 pi/4)
let z=rcis(x), polar form for i=cis(pi/2)
this means r^2 cis(2x) = 1cis (pi/2 +2kpi)
therefore equating moduli and arguments gives:
r=1, x= (pi/2 +2k pi)/2 where k=0,1
so your answers are z1=cis(pi/4) and z2 = cis(3 pi/4)
Nice, that is the method I used (except 3pi / 4 should be 5pi / 4).