x² y² z²≤2z z≤x² y²所确定立体的体积

∑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

令x/3=y/4=z/5=k；则x=3k,y=4k,z=5k;(xy+yz+xz)/(xx+yy+zz)=(3k*4k+4k*5k+3k*5k)/(3k*3k+4k*4k+5k*5k)=(12+20+

X:Y:Z=1:2:3因为：14(XX+YY+ZZ)=(X+2Y+3Z)^214(XX+YY+ZZ)-(X+2Y+3Z)^2=013X^2+10Y^2+5Z^2-4XY-6XZ-12YZ=0(4X^2

设z=x+yi，x、y∈R，由于zz-1=x+yix-1+yi=(x+yi)(x-1-yi)(x-1+yi)(x-1-yi)=x2+y2-x(x-1)2+y2+y(x-1)2+y2i是纯虚数，故有x2

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

x-z=(x-y)+(y-z)=5+4=9(x-y)²=x²-2xy+y²=25(y-z)²=y²-2yz+z²=16(x-z)²

∵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

（X+Y+Z）*（X+Y+Z）=XX+YY+ZZ+2（XY+YZ+XZ）=1,又XY+YZ+XZ=0,所以XX+YY+ZZ=1

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

X=3K,Y=K,Z=2K（2X方-2Y方+5Z方）/（XY+YZ+ZX）=（2*9-2+5*4）/（3+2+6）=36/11

由于f'(x)=arcsiny+2xz则f“(xz)=2x；同理,f'(y)=x/√(1-y²)+z²则f"(yz)=2z；f'(z)=2yz+x²则f"(zz)=2y

(y+z-2z)这步有错吧

xx'+yy'+zz'可以由前面的推导过来.|a|=√（x^2+y^2+z^2）|b|=√（x'^2+y'^2+z'^2）|c|=√（(x-x')^2+(y-y')^2+(z-z')^2）cosθ=|

x2+y2-z2+2xy/x2-y2+z2-2xz=(x+y)2-z2/(x-z)2-y2=(x+y-z)(x+y+z)/(x-y-z)(x-z+y)=(x+y+z)/(x-y-z)然后就是代入了

用一个变量来表示另外两个变量即可得解.如用Y表示X有X=3Y/4用Y表示Z有z=5Y/4所以(xy+yz+xz)/xx+yy+zz=（3YY/4+5YY/4+15YY/16）/（9YY/16+YY+2

这是线性规划的题目根据x-y≥-1,x+y≥1,2x-y≤1画图可以发现满足的点位于三条直线所围成的三角形内.x-y=-1与2x-y=1交点为x=2,y=3即交点为(2,3)Z=(x-2y)/(x+y

如果是xy+xz+yz的话：xy+xz+yz=[(x+y+z)^2-(x*x+y*y+z*z)]/2=5*5-6=19

x=1,y=0,z=9首先x、y、z都是个位数xyy可以写成100x+10y+y同理,zz可以写成10z+zyx写成10y+x等式重新代入以上化解后的式子,就是：100x+11y-11z=10y+x合

第二个分母写错了?(y-x)(z-x)/(x-2y+z)/(x+y-2z)+(z-y)(x-y)/(x+y-2z)/(y+z-2x)+(x-z)(y-z)/(y+z-2x)/(x-2y+z)=1

(x+y)^2=(x-y)^2+4xy=64+4(-z^2-16)=-4z^2=0所以(x+y)^2=0所以x+y=0x-y=8x=4,y=-4z=0