设函数f (x)=x2-x+b拜托各位了 3Q

问题描述:

设函数f (x)=x2-x+b拜托各位了 3Q
设函数f (x)=x2-x+b,已知log 2f (a)=2,且f (log 2a)=b (a>0且a≠1),(1) 求a,b的值;(2) 试在f (log 2x)>f (1)且log 2f (x)

(1) logf(a)=log(a^2-a+b)=2 ==> a^2-a+b=4 f[log(a)]=[log(a)]^2-log(a)+b=log(a)[log(a)-1]+b=b ∴a=1 或 2,∵a≠1,∴a=2,b=2 (2)f[log(x)]>f(1) [log(x)]^2-log(x)>0 解得log(x)>1 或 log(x)<0,即x>2 或 0<x<1 logf(x)<f(1) log(x^2-x+2)<2 即0<x^2-x+2<4,解得-1<x<2 取交集得 x∈(0,1)