2个回答
展开全部
先都展开,再提取公因式。
这道题目=x2y+xy2+x2y+xy2+x2y+xy2-(x3+3x2y+3xy2+y3)-x3-y3
=3x2y+3xy2-x3-3x2y-3xy2-y3-x3-y3
=-2x3-2y3=-2(x3+y3)=-2(x+y)*(x^2+y^2-xy)
化简完毕。
这道题目=x2y+xy2+x2y+xy2+x2y+xy2-(x3+3x2y+3xy2+y3)-x3-y3
=3x2y+3xy2-x3-3x2y-3xy2-y3-x3-y3
=-2x3-2y3=-2(x3+y3)=-2(x+y)*(x^2+y^2-xy)
化简完毕。
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追答
满意点歌采纳哦
追问
化简的结果不是最简的吧
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展开全部
前三项长的模样虽然不一样,但它们的值是完全相同的,所以,原式可改写为:
原式=3xy(x+y)-(x+y)³-x³-y³
=3xy(x+y)-(x+y)³-(x³+y³)
=3xy(x+y)-(x+y)³-(x+y)(x²-xy+y²)
=(x+y)[3xy-(x+y)²-(x²-xy+y²)]
=(x+y)[3xy-(x²+2xy+y²)-(x²-xy+y²)]
=(x+y)[3xy-x²-2xy-y²-x²+xy-y²]
=(x+y)[2xy-2x²-2y²]
=-2(x+y)(x²-xy+y²)
=-2(x³+y³)
有什么问题请留言。
原式=3xy(x+y)-(x+y)³-x³-y³
=3xy(x+y)-(x+y)³-(x³+y³)
=3xy(x+y)-(x+y)³-(x+y)(x²-xy+y²)
=(x+y)[3xy-(x+y)²-(x²-xy+y²)]
=(x+y)[3xy-(x²+2xy+y²)-(x²-xy+y²)]
=(x+y)[3xy-x²-2xy-y²-x²+xy-y²]
=(x+y)[2xy-2x²-2y²]
=-2(x+y)(x²-xy+y²)
=-2(x³+y³)
有什么问题请留言。
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