求函数Y=1/√[sin(-2x+π/6)+1/2]的定义域?【分母上的1/2在根号里,对吗?】解:y=1/√[sin(-2x+π/6)+1/2]=1/√[-sin(2x-π/6)+1/2]由-sin(2x-π/6)+1/2>0,得sin(2x-π/6)<1/2,故得2kπ-7π/6<2x-π/6<2kπ+π/6,即kπ-π/2
X小于或等于12分之π(pain)
