25th USAMO 1996

D lies inside the triangle ABC. ∠BAC = 50^o. ∠DAB = 10^o, ∠DCA = 30^o, ∠DBA = 20^o. Show that ∠DBC = 60^o.

Solution

Reflect A in the line BD to get A'. Let Z be the intersection of BD and AA'. Let BA' meet AC at X. Since ∠ABX = 2 ∠ABD = 40^o, and ∠BAX = 50^o, we have ∠BXA = 90^o. Now ∠DAA' = ∠BAA' - ∠DAB = ∠BAA' - 10^o. But ∠BAA' = 90^o - ∠DBA = 70^o, so ∠DAA' = 60^o.

Let BX meet CD at Y. ∠DYX = ∠YXC + ∠DCX = 90^o + 30^o = 120^o = 180^o - angle DAA', so DAA'Y is cyclic, so ∠A'YA = ∠A'DA = 2 ∠ZDA = 2(∠DBA + ∠DAB) = 60^o.

But ∠XYC = 90 - ∠DCA = 60^o, so C is the reflection of A in BX. Hence BC = BA, so ∠ACB = ∠BAC = 50^o. Hence ∠ABC = 80^o and ∠DBC = 80^o - ∠DBA = 60^o.

25th USAMO 1996

© John Scholes
jscholes@kalva.demon.co.uk
11 May 2002