已知函数f(x)=lg[a/(x^2+1)],在定义域内存在x0使得f(x0+1)=f(x0)+f(1),求a的取值范围?(^2表示平方)
人气:314 ℃ 时间:2019-11-09 13:36:35
解答
lg[a/{(x0+1)^2+1)}=lg[a/(x0^2+1)] + lg[a/(1+1)]
=lg{a/(x0^2+1)] * [a/(1+1)] }
a/{(x0+1)^2+1)}=a/(x0^2+1)] * [a/(1+1)] 有实根.化简用二次方程判别.
推荐
猜你喜欢
- 已知:如图,平行四边形abcd中,对角线ac,bd相交于点o,延长cd至f,使df=cd,连接bf交ad于点e
- 如图,已知五边形ABCDE,F为AE的延长线与CD延长线的交点,已知角C=3角A,角B=2角A,角FED=50.,角FDE=70.,就角A的度数
- 佳佳爸爸在银行买了三年国债12000元,年利率为百分之4.76,三年后取出,可得几元
- 难忘的一的课 作文 600字!
- Father came in and I stopped ______ TV A watch B to watch C watching D and watched 全部要带讲解!
- 如图,在梯形ABCD中,已知AD//BC,AB=DC.求证:角B=角C
- What exactly is a lie?Is it anything we say which we know is untrue?Or is it something more than
- y=cos3x+2x的二阶导数