设p= 1 x?2 ,q= 1 y+1 ,方程组变形得: 4p+q=9① 6p?2q=3② ,①×2+②得:14p=21,即p= 3 2 ,将p= 3 2 代入①得:q=3,∴ 1 x?2 = 3 2 1 y+1 =3 ,解得:x= 8 3 ,y=- 2 3 ,经检验是方程组的解.
