解:∵D为AC中点,∴CD=1/2AC,∵E为CB中点,∴CE=1/2BC,⑴CD=3,CE=2,∴DE=3+2=5㎝,⑵DE=CD+CE=1/2(AC+BC)=1/2AB=1/2a,⑶DE=1/2(AC-BC)=1/2b。
