已知2x-y+1的绝对值+ (3x+2分之3y)平方=0,求代数式x+y分之y的平方除以(x-y分之x-1)(x-x-y分之x平方
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2x-y+1的绝对值+ (3x+2分之3y)平方=0
则2x-y+1=0
3x+3y/2=0,
则2x-y=-1①
2x+y=0②
①+②,得4x=-1,则x=-1/4
①-②,得-2y=-1,则y=-1/2
x+y分之y的平方除以(x-y分之x-1)(x-x-y分之x平方)
=x+y分之y的平方除以(x-y分之y)(x-y分之-xy)
=-x³/(x+y)
=(1/4)³/(-1/4-1/2)
=-1/48
则2x-y+1=0
3x+3y/2=0,
则2x-y=-1①
2x+y=0②
①+②,得4x=-1,则x=-1/4
①-②,得-2y=-1,则y=-1/2
x+y分之y的平方除以(x-y分之x-1)(x-x-y分之x平方)
=x+y分之y的平方除以(x-y分之y)(x-y分之-xy)
=-x³/(x+y)
=(1/4)³/(-1/4-1/2)
=-1/48
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解:
因为|2x-y+1|+(3x+3y/2)^2=0,则
2x-y+1=0
3x+3y/2=0,即
2x-y+1=0
2x+y=0,则
x+y=-x
4x+1=0
x=-1/4
y=1/2
[y^2/(x+y)]/[x/(x-y)-1)][(x-x^2/(x-y)]
=[y^2/(x+y)] [(x-x^2/(x-y)]/ [x/(x-y)-1)]
=[y^2/(x+y)] [(-xy/(x-y)]/ [y/(x-y)]
=[y^2/(-x)][-x]
=y^2
=1/4
因为|2x-y+1|+(3x+3y/2)^2=0,则
2x-y+1=0
3x+3y/2=0,即
2x-y+1=0
2x+y=0,则
x+y=-x
4x+1=0
x=-1/4
y=1/2
[y^2/(x+y)]/[x/(x-y)-1)][(x-x^2/(x-y)]
=[y^2/(x+y)] [(x-x^2/(x-y)]/ [x/(x-y)-1)]
=[y^2/(x+y)] [(-xy/(x-y)]/ [y/(x-y)]
=[y^2/(-x)][-x]
=y^2
=1/4
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