设0≤x≤1,则-1≤x-1≤0,∵当-1≤x≤0时,f(x)=x(1+x),∴f(x-1)=(x-1)x,∵f(x-1)=2f(x),∴2f(x)=(x-1)x,∴f(x)= x(x?1) 2 (-1≤x≤0).故答案为: x(x?1) 2 .
