因式分解x^5-y^5
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解决时间 2021-01-25 03:48
- 提问者网友:咪咪
- 2021-01-24 13:20
因式分解x^5-y^5
最佳答案
- 五星知识达人网友:往事埋风中
- 2021-01-24 13:46
x^5-y^5=(x^3+y^3)(x^2-y^2)+x^3y^2-x^2y^3=(x+y)(x^2-xy+y^2)(x+y)(x-y)+x^2y^2(x-y)=(x-y)[(x+y)^2(x^2-xy+y^2)+x^2y^2]=(x-y)[(x+y)(x^3+y^3)+x^2y^2)=(x-y)[x^4+x^3y+x^2y^2+xy^3+y^4)======以下答案可供参考======供参考答案1:x^5-y^5=x^5-x^4y+x^4y-x^3y^2+x^3y^2-x^2y^3+x^2y^3-xy^4+xy^4-y^5=x^4(x-y)+x^3y(x-y)+x^2y^2(x-y)+xy^3(x-y)+y^4(x-y)=(x-y)(x^4x^3y+x^2y^2+xy^3+y^4)供参考答案2:X*X*X*X*X-Y*Y*Y*Y*Y供参考答案3:x^5-y^5=?设x^5-y^5=(x-y)(x^4+ax^3y+bx^2y^2+cxy^3+dy^4)==x^5+ax^4y+bx^3y^2+cx^2y^3+dxy^4-(x^4y+ax^3y^2+bx^2y^3+cxy^4+dy^5)==x^5+(a-1)x^4y+(b-a)x^3y^2+(c-b)x^2y^3+(d-c)xy^4-dy^5,比较,得:a-1=0,b-a=0,c-b=0,d-c=0,d=1,解得:a=1,b=a=1,c=b=1,d=c=1,所以, x^5-y^5=x^5-dy^5,又返回到起点!可见这种思路是不妥的。设x^5-y^5=(x^2-y^2)(x^3+ax^2y+bxy^2+y^3)==x^5+ax^4y+bx^3y^2+x^2y^3-(x^3y^2+ax^2y^3+bxy^4+y^5)==x^5+ax^4y+(b-1)x^3y^2+(1-a)x^2y^3-bxy^4-y^5,a=0,b=1,a=1,b=0,在一个式子里,a和b不能固定却要是两个数值,说明这个因式分解是不成功的!以上是我的思路。先解到这里吧!抛出来-抛砖引玉吧! 以下的思路和处理过程,可以完成x^5-y^5的因式分解!x^5-y^5==x^2x^3-y^2y^3==x^2y^3{(x/y)^3-(x/y)+(x/y)-(y/x)^2}==x^2y^3{(x/y)[(x/y)^2-1]+(x/y)[1-(y/x)^3]}==x^2y^3(x/y)[(x/y+1)(x/y-1)+(1-y/x)(1+x/y+x^2/y^2)]==x^3y^2[(x/y+1)(x/y-1)+(1-y/x)(1+x/y+x^2/y^2)].到此为止可以说也算完成了因式分解。试着把分母去除、整式化:^5-y^5==x^3y^2[(x/y+1)(x/y-1)+(1-y/x)(1+x/y+x^2/y^2)]==x^2[xy(x^2+xy)(x-y)+(x-y)(y^2+xy+x^2)]==x^2(x-y)[x^2y(x+y)+x^2+xy+y^2]. 采纳吧供参考答案4:x^2-y^2=(x+y)(x-y), x^5-y^5=?设x^5-y^5=(x-y)(x^4+ax^3y+bx^2y^2+cxy^3+dy^4)=
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- 1楼网友:醉吻情书
- 2021-01-24 14:41
谢谢回答!!!
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