Circle and equal angles.

ins- · 03.10.2011, 23:08

The circle k is tangent to the sides AD, BC and CD of the quadrilateral ABCD at the points A, B and E - the tangent point of k with the side CD. F is the foot of perpendicular from E to AB. Prove that <CFE=<DFE.

Ilya Nek · 04.10.2011, 08:37

Olimpiad problem? Triangle $BCF$ similar to triangle $FAD$ .

ins- · 04.10.2011, 12:59

Why they are similar?

Ilya Nek · 04.10.2011, 14:15

$\angle$FBC$$ = $\angle$FAD$$ and $BF$ / $BC$ = $AF$ / $AD$ (cosines help, because $\angle$FBE$$ = $\angle$AED$$ , $\angle$FAE$$ = $\angle$EBC$$ )

ins- · 04.10.2011, 21:32

I got it. Thank you! It is definitely not a hard problem if you see the facts mentioned. I think it is a good problem for earlier stages of some math olympiad.

TOTAL · 05.10.2011, 08:47

ins- · 05.10.2011, 20:33

Sometimes a picture says more than a thousands words. Thank you for the valuable and beautiful idea.

Научный форум dxdy

Circle and equal angles.