过点C作CD⊥AB交AB于点F∵∠ACB=90°AC=4 BC=3∴AB=5∵◇CDEB∴DF=BF又∵CF⊥AB设BF为x,则AF为(5-x)3²-x²=4²-(5-x)²x=1.8∴AD=5-x-x=5-1.8-1.8=1.4
