asin(B − C) + bsin(C − A) + csin(A − B) = 0
asin(B − C) + bsin(C − A) + csin(A − B) = 0
asin(B − C) = a[sin(B) × cos(C) − cos(B) × sin(C)] ...(1)
now, sin(A)/a = sin(B)/b = sin(C)/c = k (say)
Therefore, sinA = ak, sinB = bk, sinC = ck
Substituting values of sinB and sinC in (1) and using cosine formula:
asin(B − C) = a[bk((a² + b² − c²)/(2ab)) − ck((c² + a² − b²)/(2ac))]
= (k/2)(a² + b² − c² − c² + a² + b²)
= k(b² − c²)
Similarly, bsin(C − A) = k(c² − a²)
and csin(A − B) = k(a² − b²)
Hence, LHS = k(b² − c² + c² − a² + a² − b²) = 0 = RHS