解X+2Y-Z=3,2X+Y+Z=5方程组
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1.x+y+z2.-x-3y-1
①式+②式得x-y=5……④①式+③式得2x-5y=4……⑤2×④式-⑤式得y=2将y=2带入④式得x=7带入①式可得z=-2即x=7y=2z=-2
∑是循环和例如∑a=a+b+c∑a^2=a^2+b^2+c^2∑(z-y)(x-y)/(x+y-2z)(y+z-2x)=∑(z-y)(x-y)(x+z-2y)/(x+y-2z)(y+z-2x)(x+z
解由2x+3y+z=11.①x+y+z=0.②3x-y+z=-2.③由(1)-(2)得x+2y=11.④由(2)-(3)得-2x+2y=2.⑤由(4)-(5)得3x=9即x=3把x=3代入④中解得y=
{3x+y-z=4①,2x-y+3z=12②,x+y+z=6③}①+②得5x+2z=16④,②+③得3x+4z=18⑤④×2—⑤得7x=14,x=2所以z=3、y=1所以方程组的解为x=2、y=1、z
有这样的公式:a^3+b^3+c^2-3abc=(a+b+c)(a^2+b^2+c^2-ab-bc-ca)左边减右边,证明:(x+y-2z)^3+(y+z-2x)^3+(z+x-2y)^3-3(x+y
方程(1)+(2)得:3x-z=9④,方程(2)+(3)得:2x-z=7⑤,④-⑤得:x=2,把它代入⑤得:z=-3,把它代入(1)得:y=-3,∴原方程的解为x=2y=−3z=−3.
∵x-2y+z=(x-y)-(y-z),x+y-2z=(y-z)-(z-x),y+z-2x=(z-x)-(x-y).设x-y=a,y-z=b,z-x=c,则原式=-ac/(a-b)(b-c)+(-ba
正整数?取对数即证:2xlnx+2ylny+2zlnz>(y+z)lnx+(x+z)lny+(x+y)lnzx>y>z,lnx>lny>lnz由排序不等式得xlnx+ylny+zlnz>ylnx+zl
(1)2x+3y+z=7(2)x+y+z=4(3)3x+y-z=-4(1)和(2)相减得(4)x+2y=3(2)和(3)相加得(5)4x+2y=0(4)和(5)相减:3x=-3;x=-1代入到(4)2
z=x+y(1)3x-2y-2z=-5(2)2x+y-z=3(3)由(1)得x+y-z=0(4)(3)-(4)得x=3把x=3代入(2)得9-2y-2z=-5y+z=7(5)把x=3代入(4)得y-z
x=2y=3z=13x-y+z=42x+3y-z=12消z得5x+2y=162x+3y-z=12x+y+z=6消z得3x+4y=185x+2y=163x+4y=18合并得x=2y=3代入x+y+z=6
3x-y+z=3(1)2x+y-3z=11(2)x+y+z=12(3)(1)+(2)5x-2z=14(4)(1)+(3)4x+2z=15(5)(4)+(5)9x=29所以x=29/9z=(5x-14)
①x+2y-4z=0②3x+y-z=0①-2②x-6x-4z+2z=05x=2z代入①z=5x/2x+2y-10x=02y=9xy=9x/2x:y:z=1:9/2:5/2=2:9:5
2x+y+3z=38①3x+2y+4z=56②4x+y+5z=66③③-①得:2x+2z=28,即x+z=14④,①×2-②得:x+2z=20⑤,由④和⑤组成方程组:x+z=14x+2z=20,解得:
x+2y+3z=1 ①2x+3y+z=2 &nb
3元一次方程,好像是初一的问题哦.根据前面两个等式可以得出x=3zy=z(平方)/32x+3y+4z=2*(3z)+3*(z方/3)+4z现在变成了一元二次方程,你应该会解吧.
x-2y+z=-1①x+y+z=2②x+2y+3z=-1③①+③2x+4z=-2x+2z=-1④①+②×23x+3z=-1+4x+z=1⑤由⑤得x=1-z代入④1-z+2z=-1z=-2∴x=1-(-
x+y-z=0(1)x+2y-z=3(2)2x-3y+2z=5(3)2-1式得y=3将y=3代入2、3得x-z=-3(4)x+z=7(5)4+5式得2x=4解得x=2y=5综合得x=2y=3z=5
设x/2=y/3=z/5=ax=2ay=3az=5a是不是求的是:(x+3y-z)/(x-3y+z)?若是,如下:(x+3y-z)/(x-3y+z)=(2a+9a-5a)/(2a-9a+5a)=-3