$解:(1)把點(diǎn)P(-1�,a)代入y=-x+1得a=2$
$則點(diǎn)P 坐標(biāo)為(-1,2)$
$把點(diǎn)A(-2��,0)���,點(diǎn)P(-1�����,2)代入y=kx+b$
$得\begin{cases}{0=-2k+b}\\{-k+b=2}\end{cases}��,解得\begin{cases}{k=2}\\{b=4}\end{cases}$
$∴直線l_{1}的表達(dá)式為y=2x+4$
$(2)解為\begin{cases}{x=-1}\\{y=2}\end{cases}$
$(3)(更多請點(diǎn)擊查看作業(yè)精靈詳解)$
