DE=2EF证明:过点D作DG‖AE,交BF于G∵AB=AC(已知)∴∠B=∠ACB(等边对等角)∵DG‖AE∴∠DGB=∠ACB(两直线平行,同位角相等)∠CEF=∠GDF(两直线平行,内错角相等)∴∠B=∠DGB(等量代换)
