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Question

The common roots of the equations
z3+(1+i)z2+(1+i)z+i=0, (where i=1) and z1993+z1994+1=0 are


A

1

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B

ω

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C

ω2

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D

ω981

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Solution

The correct options are
B

ω


C

ω2


z3+(1+i)z2+(1+i)z+i=0

z2(z+i)+z(z+i)+(z+i)=0

(z+i)(z2+z+1)=0

(z+i)(zω)(zω2)=0

z=i,ω,ω2

Now in z1993+z1994+1 put z=i,ω,ω2

then (i)1993+(i)1994+1=i1+1=i0

and (ω)1993+ω1994+1=ω+ω2+1=0

and (ω2)1993+(ω2)1994+1=ω2+ω+1=0


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