2.证明:由题∠BAD=∠CAD,∠B=∠EAC,有∠B+∠BAD=∠EAC+∠CAD=∠EAD,又∵∠B+∠BAD=∠ADC,∴∠EAD=∠ADC,又∵EF⊥AD∴∠EFD=∠EFA=90°,EF=EF,∴RT△EFD全等于RT△EFA(AAS)∴FD=FA,即EF是AD边上的中线
