设a-b=-2,求二分之a²;+b²减去ab的值 已知y+2x=1,求代数式(y+1²)-(y²-4x)的值
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设a-b=-2,求二分之a²;+b²减去ab的值 已知y+2x=1,求代数式(y+1²)-(y²-4x)的值
设a-b=-2,求二分之a²;+b²减去ab的值 已知y+2x=1,求代数式(y+1²)-(y²-4x)的值
设a-b=-2,求二分之a²;+b²减去ab的值 已知y+2x=1,求代数式(y+1²)-(y²-4x)的值
a-b=-2
(a-b)^2=(-2)^2
(a-b)^2=4
(a^2+b^2)/2-ab
=(a^2+b^2-2ab)/2
=(a-b)^2/2
=4/2
=2
(y+1)^2-(y²-4x)
=y^2+2y+1-y^2+4x
=2y+4x+1
=2(y+2x)+1
y+2x=1
=2*1+1
=3
设a-b=-2,
二分之a²;+b²减去ab的值
=(a²+b²-2ab)/2
=(a-b)²/2
=(-2)²/2
=2
已知y+2x=1,
y=1-2x
代数式(y+x²)-(y²-4x)的值
=y+1-y²+4x
=1-2x+1-(1-2x)²+4x
=2-2x-1+4x-4x²+4x
=1+6x-4x²