已知x²+y²+13-4x+6y=0,求(2x-y)²-2(2x-y)(x+2y)+(x+2y)²的值
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x²+y²+13-4x+6y=0
(x-2)²+(y+3)²=0
x=2,y=-3
(2x-y)²-2(2x-y)(x+2y)+(x+2y)²
=【(2x-y)-(x+2y)】²
=(x-3y)²
=【2-3×(-3)】²
=11²
=121
(x-2)²+(y+3)²=0
x=2,y=-3
(2x-y)²-2(2x-y)(x+2y)+(x+2y)²
=【(2x-y)-(x+2y)】²
=(x-3y)²
=【2-3×(-3)】²
=11²
=121
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展开全部
x²+y²+13-4x+6y=0
(x-2)²+(y+3)²=0
x=2,y=-3
(2x-y)²-2(2x-y)(x+2y)+(x+2y)²
=[(2x-y)-(x+2y)]²
=(x-3y)²
=11²
=121
(x-2)²+(y+3)²=0
x=2,y=-3
(2x-y)²-2(2x-y)(x+2y)+(x+2y)²
=[(2x-y)-(x+2y)]²
=(x-3y)²
=11²
=121
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