问题
选择题
| 对于函数f(x)定义域中任意的x1,x2(x1≠x2),有如下结论: ①f(x1+x2)=f(x1)·f(x2);②f(x1•x2)=f(x1)+f(x2);③
当f(x)=lgx时,上述结论中正确结论的序号是( )
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答案
①f(x1+x2)=lg(x1+x2)≠f(x1)f(x2)=lgx1•lgx2
②f(x1•x2)=lgx1x2=lgx1+lgx2=f(x1)+f(x2)
③f(x)=lgx在(0,+∞)单调递增,则对任意的0<x1<x2,d都有f(x1)<f(x2)
即 f(x1)-f(x2)x1-x2>0
④f(x1+x22)=lgx1+x22,f(x1)+f(x2)2=lgx1+lgx22=lgx1x22
∵x1+x22≥x1x2∴lgx1+x22≥lgx1x2=12lgx1x2
故选C