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Question

If sinA+sinB+sinC=0 and cosA+cosB+cosC=0 then cos(A+B)+cos(B+C)+cos(C+A)=

A
cos(A+B+C)
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B
2
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C
1
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D
0
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Solution

The correct option is C 0
Given

sinA+sinB+sinC=0

cosA+cosB+cosC=0

Let Z1=eiA,Z2=eiB,Z3=eiC

Consider

Z1+Z2+Z3

eiA+eiB+eiC

cosA+isinA+cosB+isinB+cosC+isinC

(cosA+cosB+cosC)+i(sinA+sinB+sinC)

0

As Z1+Z2+Z3=0

Z31+Z32+Z333Z1Z2Z3=0

(Z1+Z2+Z3)(Z21+Z22+Z23Z1Z2Z2Z3Z1Z3)=0

(Z21+Z22+Z23Z1Z2Z2Z3Z1Z3)=0
Z21+Z22+Z23=Z1Z2+Z2Z3+Z1Z3

(Z1+Z2+Z3)22(Z1Z2+Z2Z3+Z1Z3)=Z1Z2+Z2Z3+Z1Z3

3(Z1Z2+Z2Z3+Z1Z3)=0

3(eiAeiB+eiBeiC+eiAeiB)=0

ei(A+B)+ei(B+C)+ei(A+C)=0

cos(A+B)+cos(B+C)+cos(A+C)=0



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