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Question

If z=eiπ13 then 11z is equal to (i=1)

A
1z2+z4z6+z8z10+z12
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B
1+z2+z4+z6+z8+z10+z12
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C
zz3+z5z7+z3z11
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D
z+z3+z5+z7+z5+z11
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Solution

The correct option is D z+z3+z5+z7+z5+z11
z=eiπ13z13=1

z13+1=0(z+1)(z12z11++1)=0

z12z11+z+1=0 ........ (1)

1z13=2

1z131z=21z

1+z+z2++z12=21z ....... (2)

From (1) and (2)

1+z2+z4++z12=11zz+z3++z11=11z

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