神马作文网根号x-2 |y 2|+(z-1)²=0
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/17 19:13:20
2(√x+√(y-1)+√(z-2)=x+y=zy+x-2√x-2√(y-1)-2√(z-2)=0(x-2√x+1)+[(y-1)-2√(y-1)+1]-2√(z-2)-1=0(√x-1)^2+[√(
√x+√(y-1)+√(z-2)=1/2(x+y+z)变形后得[x-2√x+1]+[(y-1)-2√(y-1)+1]+[(z-2)-2√(z-2)+1=0即(√x-1)^2+[√(y-1)+1]^2+
设根号x=a根号下y-1=b根号下z-2=cx=a^2y=b^2+1z=c^2+22a+2b+2c=a^2+b^2+c^2+3(a-1)^2+(b-1)^2+(c-1)^=0a=1b=1c=1x=1y
x=p*cos(d)y=p*sin(d)1
(x-2√x+1)+[(y-1)+√(y-1)+1]+[(z-2)+2√(z-2)+1]=0(√x-1)^2+[√(y-1)-1]^2+[√(z-2)-1]^2=0平方相加为0则都等于0所以√x-1=
∵(x+y+z)(x²+y²+z²)=x³+y³+z³+x²(y+z)+y²(x+z)+z²(x+y)∴1*2
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1.z²-z+1/4=(z-1/2)².绝对值、根号、平方数都是非负的,而相加为0.所以都为0.即x=y,2y=z,z=1/2.所以x=y=1/4,z=1/2.2.2002x200
原题即:2[√x+√(y-1)+√(z-2)]=(x+y+z)2√x+2√(y-1)+2√(z-2)=x+y+z移项,得x+y+z-2√x-2√(y-1)-2√(z-2)=0(x-2√x+1)+[(y
x/(y+z)+y/(z+x)+z/(x+y)=1所以x/(y+z)=1-[y/(z+x)+z/(x+y)]y/(z+x)=1-[x/(y+z)+z/(x+y)]z/(x+y)=1-[x/(y+z)+
等于0.x/(y+z)=1-[y/(z+x)+z/(x+y)]y/(z+x)=1-[x/(y+z)+z/(x+y)]z/(x+y)=1-[x/(y+z)+y/(z+x)]x2/(y+z)+y2/(z+
经配方得(根号下x-1)²+(根号下y-1-1)²+(根号下z-2-1)²=0∴x=y-1=z-2=0∴x=0,y=1,z=2
根号x-3+|y-2|+z^2=2z-1根号x-3+|y-2|+(z^2-2z+1)=0根号x-3+|y-2|+(z-1)^2=0由于数值开根号,绝对值和平方数均为大于等于0的数则上式要成立只有X-3
lg(xyz)=lgx+lgy+lgzlgx2y/z=2lgx+lgy\lgzlgxy2/根号z=lgx+2lgy-(1/2)lgzlg根号x/y2z=(1/2)lgx-2lgy-lgz
x²+y²/2=12x²+y²=22x²+(y²+1)=3由均值不等式有2x²+(y²+1)≥2√[2x²(y
x+y+z=1xy+yz+zx=21*2=(x+y+z)(xy+yz+zx)=x(xy+yz+zx)+y(xy+yz+zx)+z(xy+yz+zx)=x²y+xyz+zx²+xy&
∵(x-2)2+(y+3)2+z+2=0,∴x-2=0,y+3=0,z+2=0,解得x=2,y=-3,z=-2,∴(xy)z=(-6)-2=136.
把x=y+根号2代入得2y^2+2根号2y+2根号2*z^2+1=02[y+(根号2)/2]^2+2根号2*Z^2=0∴y+(根号2)/2=02根号2*z^2=0∴y=-(根号2)/2z=0x=(根号