初二的因式分解题目!
(x+y)(x+y+2xy)+(xy+1)(xy-1)(x+y)(x-y)+4(y-1)要有详细过程!...
(x+y)(x+y+2xy)+(xy+1)(xy-1)
(x+y)(x-y)+4(y-1)
要有详细过程! 展开
(x+y)(x-y)+4(y-1)
要有详细过程! 展开
2个回答
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(x+y)(x+y+2xy)+(xy+1)(xy-1)
=(x+y)(x+y)+2xy(x+y)+(xy+1)(xy-1) 乘法分配律
2 2 2 2 2 2
=x +2xy+y +2x y+2xy +x y -1
(x+y)(x-y)+4(y-1)
2 2
=x -y +4y-4
=(x+y)(x+y)+2xy(x+y)+(xy+1)(xy-1) 乘法分配律
2 2 2 2 2 2
=x +2xy+y +2x y+2xy +x y -1
(x+y)(x-y)+4(y-1)
2 2
=x -y +4y-4
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