Question

In the parallelogram ABCD, side AD is produced at point E, and BE intersects CD at point F. Prove that ΔABE ∼ ΔCFB.

Answer 1

In ΔABE and ΔCFB

∠BAE = ∠FCB   .....(Opposite angles of a parallelogram are equal.)

∠AEB = ∠CBF  .....(Alternal interior angles since AE || BC.)

Therefore, ΔАВЕ ∼ ΔCFB  .....(By AA similarity criterion.)