题目
函数对一切实数x、y均有成立,且.(1)求的值;(2)当在(0,)上恒成立时,求a的取值范围. 答案:解析:(1)令y = 0,x = 1代入已知式子,得f(1)-f(0) = 2, 因f(1) = 0所以f(0) = 2 (2)在 中令y = 0得f(x)+ 2 =(x + 1)x所以= x2 + x 2 . 由 得x2 x+1-a<0 w.w.w.k.s.5.u.c.o.m 因g(x)= x2 x+1-a在(0,)上是减函数,要x2 x+1 a < 0恒成立,只I would like to buy a present ____ my cousin and I must give it ______her myself.A. for, to B. to, forC. for, for D. with, to
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