xy(x^2-y^2)+yz(y^2-z^2)+zx(z^2-x^2)据说是轮换对称式,分解因式

来源：学生作业帮助网编辑：作业帮时间：2024/07/07 01:13:43

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xy(x^2-y^2)+yz(y^2-z^2)+zx(z^2-x^2)据说是轮换对称式,分解因式
xy(x^2-y^2)+yz(y^2-z^2)+zx(z^2-x^2)
据说是轮换对称式,
分解因式

xy(x^2-y^2)+yz(y^2-z^2)+zx(z^2-x^2)据说是轮换对称式,分解因式
由题式可以看出当x=y 或 y=z 或x=z时式子为0 所以肯定有因式(x-y)(y-z)(z-x) 展开后x最高项为-x^2 y 与 x^2z 而原式中x最高次项为x^3y和-x^3z 所以还差x的1次项因式,所以实际缺的是-(x+y+z)分解因式为
-（x-y)(y-z)(z-x)(x+y+z)

分解因式么？

x^3(y-z)+y^3(z-x)+z^3(x-y)

x换成y，y换成z，z换成x
yz(y^2-z^2)+zx(z^2-x^2)x+y(x^2-y^2)
多项式不变

xy(x^2-y^2)+yz(y^2-z^2)+zx(z^2-x^2)
=x^3y-xy^3+y^3z-yz^3+z^3x-zx^3
=x^3(y-z)+y^3(z-x)+z^3(x-y)
可以仔细观察最后化简完的式子，即x^3(y-z)+y^3(z-x)+z^3(x-y)，共三项，每一项都有x y z 三个字母，且轮换着3次方，其余两个字母就做减法，这就是轮换对称式希...

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xy(x^2-y^2)+yz(y^2-z^2)+zx(z^2-x^2)
=xy(x^2-y^2)+y^3z-yz^3+xz^3-x^3z
=xy(x+y)(x-y)+z(y^3-x^3)+z^3(x-y)
=xy(x+y)(x-y)-z(x-y)(x^2+xy+y^2)+z^3(x-y)
=(x-y)(x^2y+xy^2)-(x-y)(x^2z+xyz+y^2z)+...

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xy(x^2-y^2)+yz(y^2-z^2)+zx(z^2-x^2)
=xy(x^2-y^2)+y^3z-yz^3+xz^3-x^3z
=xy(x+y)(x-y)+z(y^3-x^3)+z^3(x-y)
=xy(x+y)(x-y)-z(x-y)(x^2+xy+y^2)+z^3(x-y)
=(x-y)(x^2y+xy^2)-(x-y)(x^2z+xyz+y^2z)+z^3(x-y)
=(x-y)(x^2y+xy^2-x^2z-xyz-y^2z+z^3)
=(x-y)[x^2(y-z)+xy(y-z)-z(y^2-z^2)]
=(x-y)[x^2(y-z)+xy(y-z)-z(y-z)(y+z)]
=(x-y)(y-z)(x^2+xy-yz-z^2)
=(x-y)(y-z)[(x+z)(x-z)+y(x-z)]
=(x-y)(y-z)(x-z)(x+y+z)

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如果我说很简单你一定不信，自己好好看看吧

确实是轮换对称式,
将x=y代入时,为0，
将x=z代入时,为0，
将z=y代入时,为0，
说明有因式x-y,y-z,z-x,
由于是四次多项式,还有因式X+Y+Z,
所以(x+y+z)(x-y)(y-z)(z-x)

(2X+Z-Y)/(X^2-XY+XZ-YZ)-(Y-Z)/(X^2-XY-XZ+YZ) 化简(2x-y-z/x^2-xy-xz+yz)+(2y-x-z/y^2-xy-yz+xz)+(2x-x-y/z^2-xz-yz+xy) 化简x^2-yz/[x^2-(y+z)x+yz]+y^2-zx/[y^2-(z+x)y+zx]+z^2-xy/[z^2-(x+y)z+xy] 求(2X+Z-Y)/(X^2-XY+XZ-YZ)-(2X+Y+Z)/(X^2+XY+XZ+YZ) 分式题:xy=x+y,yz=2(y+z),zx=3(z+x),求xyz/(xy+yz+xz)xy=x+y,yz=2(y+z),zx=3(z+x),求xyz/(xy+yz+xz) 求证不等式 xyz[yz(y+z)+zx(z+x)+xy(x+y)]>=2(xy+yz+xz)^2 (x^2+yz)/(x^2+x(y-z)-yz)+(y^2-xz)/(y^2+y(x+z)+zx)+(z^2+yx)/(x^2-z(x-y)-yx)最后一项应为：(z^2-xy)/(z^2+z(y-x)-xy) 2yz/x+2xz/y+2xy/z≥2x+2y+2z 若|x-3|+|y+2|+|2z+1|=0,求(xy-yz)(y-x+z) 已知XY=2(X+Y),YZ=4(Y+Z),ZX=5(Z+X),求X,Y,Z已知XY=2(X+Y),YZ=4(Y+Z),ZX=5(Z+X),求X,Y,Z 若Y/X=3/2,Y/Z=3/4.则2XY+YZ/2YZ-XY=多少若Y/X=3/2,Y/Z=3/4.则(2XY+YZ)/(2YZ-XY)=多少方程组xy/x+y=2 yz/y+z=4 zx/x+z=5 求x,y,z 求证：(x^3/x+y)+(y^3/y+z)+(z^3/z+x)大于等于（xy+yz+zx)/2 设x,y,z∈R+,xy+yz+xz=1,证明不等式:(xy)^2/z+(xz)^2/y+(yz)^2/x+6xyz≥x+y+zRt 计算,依据图片:{(x^2+yz)÷[x^2+(y-z)x-yz]}+{(y^2+zx)÷[y^2+(z+x)y-zx]}+{(z^2+xy)÷[z^2-(x-y)z-xy]} (x+y-xy)/(x+y+2xy)=(y+z-2yz)/(y+z+3yz)=(z+x-3zx)/(z+x+4zx),且2/x=3/y=1/z,则xyz=? 已知（x+y-xy）/(x+y+2xy)=(y+z-2yz)/(y+z+3yz)=(z+x-3zx)/(z+x+4zx),且2/x=3/y-1/z,则xyz=?