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complexx (1 Viewer)
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bleakarcher
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z^4+16i=0
=>z^4=-16i=16cis(-pi/2)
Let z=rcis(θ).
Now, [rcis(θ)]^4=r^4cis(4θ)=16cis[(-pi/2)+2kpi] for k=0,1,2,3,...
Hence, r=2 and θ=(-pi/8)+(kpi/2)
:.z=2cis(-pi/8), 2cis(3pi/8), 2cis(7pi/8), 2cis(-5pi/8)
=>z^4=-16i=16cis(-pi/2)
Let z=rcis(θ).
Now, [rcis(θ)]^4=r^4cis(4θ)=16cis[(-pi/2)+2kpi] for k=0,1,2,3,...
Hence, r=2 and θ=(-pi/8)+(kpi/2)
:.z=2cis(-pi/8), 2cis(3pi/8), 2cis(7pi/8), 2cis(-5pi/8)
Last edited:
SpiralFlex
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I recall correctly this question is from Harry's. It has the incorrect answer at the back. These roots do not appear as conjugates.
Sanical
SpiderAnderson
You can do it via complex roots of unity except having it with 16i.
Otherwise, you can factorise it via difference of two squares. EDIT: Oops, you can't do that unless it's a real number =/.
In any case, you ask a lot of questions lol. You should get a tutor to answer all these.
Otherwise, you can factorise it via difference of two squares. EDIT: Oops, you can't do that unless it's a real number =/.
In any case, you ask a lot of questions lol. You should get a tutor to answer all these.
Last edited:
jnney
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oh! okay
SpiralFlex
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Also,\quad 0\leq k <4)
Several people asked me and we came to the conclusion the answers were definitely wrong.
lolcakes52
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The roots are not conjugates though? The coefficient of z^0 is imaginary.
nightweaver066
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Only true if the coefficients are real (conjugate root theorem).
lolcakes52
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Really? I couldn't find anything on the fundemental of algae..http://en.wikipedia.org/wiki/Algae
Anyway, the fundamental theorem of algebra says that any polynomial of nth degree has exactly n complex zeroes. Nothing about conjugates.
SpiralFlex
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...
Carrotsticks
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Rote learner detected. Destroy.
lolcakes52
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This is what i was referring to, it was a joke guys. Calm down lol