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In what follows, we will ignore the special cases to be considered where we would otherwise be dividing by zero. Define angles α = AOO', β = OO'A, θ = O'OB, φ = OO'B. Thus OAO' = 180−α−β, OBO' = 180−θ −φ and by the law of sines:
OA = OO' sinβ /
sin(180 − (α + β))
= OO' sinβ /
sin(α + β) Consequently
OA + AO' = OB + BO' However, for arbitrary a, b, t, u we have the identity (provable by expanding both sides) cos(a−b) cos(t+ u) − cos(a+b) cos(t−u) = sin(u+a) sin(b−t) − sin(u−a) sin(b+ t) Thus the LHS is zero iff the RHS is zero, in other words cos(a−b) cos(t+ u) = cos(a+b) cos(t−u) is equivalent to sin(u+a) sin(b−t) = sin(u−a) sin(b+ t) Substituting a = α/2, b = β/2, t = θ/2, u = φ/2 and dividing through gives
cos((α−β)/2)/cos((α+β)/2)
=
cos((θ−φ)/2) cos((θ+φ)/2) Manipulating the last equation implies:
2sin((φ+α)/2) cos((φ−α)/2) / (2sin((φ−α)/2)
cos((φ−α)/2)) =
2sin((β+θ)/2) cos((β−θ)/2) / (2sin((β−θ)/2)
cos((β−θ)/2))
Finally, in considering triangles OA'O' and OB'O' we have OA'O' = φ−α,
OB'O' = β − θ, OO'A' = 180 − φ, OO'B' = 180 − β. Therefore, by the law
OA' = OO' sin(180 − φ) /
sin(φ − α)
= OO' sinφ /
sin(φ − α) and hence
sinφ /
sin(φ − α)
+
sinα /
sin(φ − α)
=
sinβ /
sin(β − θ)
+
sinθ /
sin(β − θ) Internet References
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