(1)延长ED,交AB于F。由于∠EAD=∠BAD,AD为公共边,AD⊥EF。故△ADE≌△ADF故DF=DE,AF=AE又BD=DC,∠BDF=∠CDE故△BDF≌△CDE故CE=BFAB=AF+FB=AE+CE(2)∠BAC=90°,且D为中点,故AD=BD=CD=5故cos∠B=4/5而∠B=BAD=∠DAE故AE=AD/cos∠DAE=25/4故CE=AB-AE=7/4
