解:設(shè)?$y_{1} = k_{1}(x + 3)�����,$??$y_{2} = k_{2}(x - 2),$?則?$y = k_{1}(x + 3)+k_{2}(x - 2)$?
把?$x = 5�,$??$y = 6$?和?$x = 7,$??$y = 0$?代入可得
?$\begin {cases}6 = k_{1}(5 + 3)+k_{2}(5 - 2)\\0 = k_{1}(7 + 3)+k_{2}(7 - 2)\end {cases}����,$?解得?$\begin {cases}{k_{1} = 3}\\{k_{2}=-6}\end {cases}$?
∴?$y = 3(x + 3)-6(x - 2)=-3x + 21,$??$y$?是?$x$?的一次函數(shù)
