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Question

Let ω be a complex number such that 2ω+1=z where z=3. If ∣ ∣ ∣1111ω21ω21ω2ω7∣ ∣ ∣=3k, then k is equal to:

A
z
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B
z
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C
1
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D
1
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Solution

The correct option is A z
From the given conditions we find that
ω=1+i32 1+ω+ω2=0,ω3=1 ∣ ∣ ∣1111ω21ω21ω2ω7∣ ∣ ∣=3k can be reduced to
∣ ∣ ∣1111ωω21ω2ω∣ ∣ ∣=3k∣ ∣ ∣3110ωω20ω2ω∣ ∣ ∣=3kk=ω2ω=z

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