11)解析:∵定义在R上函数f(x),其导函数为f’(x),f(x+1)为偶函数∴函数f(x)关于直线x=1对称设x12∵f(x)满足(x-1)f’(x)<0当1f(x)单调减,f(x1)>f(x2)当x1<12-x2∵f(2-x)=f(x)∴f(x1)>f(x2)∴选择C12)解析:由题意选择C,即y=[(x+4)/10]
11题构造函数,设f(x)=-(x-1)^2; 对f(x)求导后,带入条件,再数形结合,可得出C选项,即:f(x1)>f(x2)
