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Question

If cosα+cosβ+cosγ=0=sinα+sinβ+sinγ=0 then cos(2αβγ)+cos(2βγα)+cos(2γαβ)=

A
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B
1
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C
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D
3
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Solution

The correct option is D 3
Let x=cosα+isinα, y=cosβ+isinβ, z=cosγ+isinγ
x+y+z=(cosα+cosβ+cosγ)+i(sinα+sinβ+sinγ)
x+y+z=0x3+y3+z3=3xyz

x3+y3+z3xyz=3x2yz+y2zx+z2xy=3
e2αeβeγ+e2βeγeα+e2γeαeβ=3
ei(2αβγ)+ei(2βγα)+ei(2γαβ)=3
Comparing real and imaginary parts on both sides
cos(2αβγ)+cos(2βγα)+cos(2γαβ)=3

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