证明:∵BC=BF+CE,又BC=CD=CE+DE,∴BF=DE,又∵∠ABF=∠ADE=90°,AD=AB,∴Rt△ABF≌Rt△ADE,∴AE=AF,又∠DAE=∠BAF,即∠DAE+∠BAE=∠BAF+∠BAE,∴AF⊥AE.
