1.令x=y=2,得f(4)=f(2)+f(2)=2.2.令x1>x2,f(x1)-f(x2)=f(x1/x2),因为x1/x2>1,所以f(x1/x2)>0,即f(x1)-f(x2)>0,即为增函数3.f(x)递增,f(x)+f(x-3)=f(x(x-3))<=2=f(4),即x(x-3)<=4,另外f(x)的定义域x>0,所以x-3>0,解得3
