已知函数f(x)的定义域为(0,+∞),且满足条件f(xy)=f(x)+f(y);f(2)=1;当x>1时,f(x)>0.
1.讨论函数的单调性2.求不等式f(x)+f(x-3)小于等于2的解集“2.求不等式f(x)+f(x-3)小于等于2的解集”打错了应该是“2.求不等式f(x)+f(x-2...
1.讨论函数的单调性
2.求不等式f(x)+f(x-3)小于等于2的解集
“2.求不等式f(x)+f(x-3)小于等于2的解集”打错了应该是“2.求不等式f(x)+f(x-2)<3的解集” 展开
2.求不等式f(x)+f(x-3)小于等于2的解集
“2.求不等式f(x)+f(x-3)小于等于2的解集”打错了应该是“2.求不等式f(x)+f(x-2)<3的解集” 展开
2个回答
展开全部
(2)
x>y>0
x = ky ( k >1)
f(x) = f(ky) = f(k)+f(y) > f(y)
函数:(0,+∞)增加
(2)
put x=y=1, => f(1)=0
f(x)+f(x-3) <=0
f(x) is defined for x>0
f(x-3) is defined for x>3
f(x)+f(x-3) ≤0
f(x(x-3))≤0 = f(1)
x(x-3)≤1
x^2-3x-1 ≤0
(3-√13)/2≤x≤(3+√13)/2
f(x)+f(x-3)小于等于2的解集
"x>0" and "x>3" and "(3-√13)/2≤x≤(3+√13)/2"
ie 3<x≤(3+√13)/2
x>y>0
x = ky ( k >1)
f(x) = f(ky) = f(k)+f(y) > f(y)
函数:(0,+∞)增加
(2)
put x=y=1, => f(1)=0
f(x)+f(x-3) <=0
f(x) is defined for x>0
f(x-3) is defined for x>3
f(x)+f(x-3) ≤0
f(x(x-3))≤0 = f(1)
x(x-3)≤1
x^2-3x-1 ≤0
(3-√13)/2≤x≤(3+√13)/2
f(x)+f(x-3)小于等于2的解集
"x>0" and "x>3" and "(3-√13)/2≤x≤(3+√13)/2"
ie 3<x≤(3+√13)/2
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
