由f(x)= 1 e f′(1)ex?f(0)x+ 1 2 x2,得f′(x)= 1 e f′(1)ex?f(0)+x,令x=1,得f′(1)= 1 e f′(1)e?f(0)+1,∴f(0)=1.故答案为1.
