a)(bx
2a)=bx
(2a
ab)x
2a
This is a uniform function.
First order ∴ coefficient 2a
ab=0,①
∴f(x)=bx
2a
∫ its range is (-∞, 4), ∴ B < 0, 2a=4.
②
∴b=-2,a=2
∴f(x)=-2x
four
2、f(x)=a
When a=0, f(x)=0, which is both odd function and even function.
When a≠0 and f(x)=f(-x)=a, then f(x) is an even function.
3.f(x)=kx-4x-8, right?
f(x)=kx-4x-8
(1) When k=0, f(x)=-4x-8, which obviously satisfies the condition.
(2) When k≠0, f(x) is a quadratic function and its symmetry axis is x = 2/k.
In order to make it a monotone function in [5,20], the symmetry axis is on the left or right side of [5,20].
Quadratic function f(x)=ax
Bronx (Bronx)
c
In order to make f(x) an even function, the coefficient b of the linear term x is 0.
f(-x)=ax-bx
c
F(x)=f(-x) is.
cut down on
Bronx (Bronx)
c=ax-bx
c
That is bx=-bx.
So b=0.
Question 3: I'll cook with you after dinner. The idea is this.
Symmetry axis x=2/k
When k < 0, the symmetry axis x = 2/k < 0, which satisfies the condition.
When k > 0, there are 2/k≤5 or 2/k≥20.
At this time, k≥2/5 or 0 < k ≤110.
To sum up, the range of K that meets the conditions is K ≤110 or k≥2/5.