题目
| x |
| x2+1 |
| f(2) | ||
f(
|
| f(3) | ||
f(
|
| f(4) | ||
f(
|
| f(2009) | ||
f(
|
答案
| x |
| x2+1 |
∴f(
| 1 |
| x |
| ||
(
|
| x |
| x2+1 |
∴
| f(x) | ||
f(
|
| f(2) | ||
f(
|
| f(3) | ||
f(
|
| f(4) | ||
f(
|
| f(2009) | ||
f(
|
故答案为:2008
函数f(x)=xx2+1,则f(2)
∴f(
∴
故答案为:2008
∴f(
∴
故答案为:2008
∴f(
∴
故答案为:2008
| x |
| x2+1 |
| f(2) | ||
f(
|
| f(3) | ||
f(
|
| f(4) | ||
f(
|
| f(2009) | ||
f(
|
| x |
| x2+1 |
| 1 |
| x |
| ||
(
|
| x |
| x2+1 |
| f(x) | ||
f(
|
| f(2) | ||
f(
|
| f(3) | ||
f(
|
| f(4) | ||
f(
|
| f(2009) | ||
f(
|