(x-2)(y+1)=-4
⇔xy+x-2y-2=-4
⇔-31+x-2y-2=-4
⇔x-2y=4+2+31
⇔x-2y=39
⇔x=39+2y
⇔y=x-39 / 2
1)ta có x.y=23=1.23=(-1)(-23)⇒các cặp (x,y)là(1,23);(23,1);(-1,-23);(-23;-1)
vậy......
2) ta có:(x-1 ).(y+2)= -4=-1.4=1.(-4)=-2.2=2.(-2)
⇒th1:x-1=-1 y+2=4
x=-1+1=0 y=4-2=2
th2:x-1=1 y+2=-4
x=1+1=2 y=-4-2=-6
th3:x-1=-2 y+2=2
x=-2+1=-1 y=2-2=0
th4:x-1=2 y+2=-2
x=2+1=3 y=-2-2=-4
vậy các cặp (x,y)là(0,2);(2,-6);(-1,0);(3,-4)
(x-2)(y+1)=-4
⇔xy+x-2y-2=-4
⇔-31+x-2y-2=-4
⇔x-2y=4+2+31
⇔x-2y=39
⇔x=39+2y
⇔y=x-39 / 2☺ tick mình với nhé
