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Question

If z=32+i2 (i=1), then (1+iz+z5+iz8)9 is equal to :

A
1
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B
1
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C
(1+2i)9
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D
0
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Solution

The correct option is B 1
z=32+i2=eiπ/6iz=12+3i2z5=ei5π/6=cos5π6+isin5π6=32+i2z8=ei4π/3=cos4π3+isin4π3=123i2iz8=32i2

(1+iz+z5+iz8)9=(112+3i232+i2+32i2)9=(12+3i2)9=(eiπ/3)9=ei3π=1

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