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Question

In △ ABC, a sin (B - C) + b sin (C - A) + c sin (A-B) =
[ISM Dhanbad 1973]


A

0

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B

a+b+c

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C

a2+b2+c2

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D

2(a2+b2+c2)

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Solution

The correct option is A

0


a sin (B-C) + b sin(C-A)+c sin(A-B)
= k( A sin(B - C) = k{ sin(B + C) sin(B - C)}
=k={12(cos 2Ccos 2B)}=0.

Note: Students should note here that most of the expressions containing the cyclic factor associating with ‘–’ reduces to 0.


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