$解:?(1)?令?-2x^2-x=0����,?解得?x_{1}=0��,??x_{2}=-\frac {1}{2}?$
$∴?y=-2x^2-x?與?x?軸有兩個(gè)公共點(diǎn)���,坐標(biāo)分別為?(0,??0)����、??(-\frac 12,??0)?$
$?(2)?令?x^2-8x+16=0���,?解得?x_{1}=x_{2}=4?$
$∴?y=x^2-8x+16?與?x?軸只有一個(gè)公共點(diǎn)���,坐標(biāo)為?(4,??0)?$
$?(3)?令?3x^2-2x+1=0�����,??b^2-4ac=(-2)^2-4×3×1=-8<0?$
$∴該一元二次方程無實(shí)數(shù)根$
$則?y=3x^2-2x+1?與?x?無公共點(diǎn)$
