| 2a−1 |
| x |
∴k=f′(1)=a-2a+1=1,解得:a=0,
∵f(1)=ln1+b=1,解得:b=1,
∴a=0,b=1;
(2)∵f′(x)=
| ax−(2a−1) |
| x |
| 1 |
| 2 |
令f′x)>0,解得:x>2-
| 1 |
| a |
令f′x)<0,解得:0<x<2-
| 1 |
| a |
∴f(x)在(0,2-
| 1 |
| a |
| 1 |
| a |
(3)a=1时,f(x)=x-lnx+b,
∴f′(x)=1-
| 1 |
| x |
令f′(x)>0,解得:x>1,
令f′(x)<0,解得:0<x<1,
∴f(x)在(
| 1 |
| e |
若f(x)在区间(
| 1 |
| e |
∴
|
|
解得:1-e<b<1-
| 1 |
| e |
∴实数b的取值范围是(1-e,1-
| 1 |
| e |