已知x,y∈R,求证:x^2+y^2≥xy+x+y-1
来源:学生作业帮助网 编辑:六六作业网 时间:2025/01/21 13:03:04
已知x,y∈R,求证:x^2+y^2≥xy+x+y-1已知x,y∈R,求证:x^2+y^2≥xy+x+y-1已知x,y∈R,求证:x^2+y^2≥xy+x+y-1(x2+y2)-(xy+x+y-1)=
已知x,y∈R,求证:x^2+y^2≥xy+x+y-1
已知x,y∈R,求证:x^2+y^2≥xy+x+y-1
已知x,y∈R,求证:x^2+y^2≥xy+x+y-1
(x2+y2)-(xy+x+y-1)
=(1/2)*[(x^2-2xy+y^2)+(x^2-2x+1)+(y^2-2y+1)]
=(1/2)*[(x-y)^2+(x-1)^2+(y-1)^2]
因为(x-y)^2≥0,(x-1)^2≥0,(y-1)^2≥0
(三项都取=号,有解x=y=1)
所以
(x2+y2)-(xy+x+y-1)≥0
x^2+y^2≥xy+x+y-1
已知x,y∈R,求证:x^2+y^2≥xy+x+y-1
已知x,y,z∈R,求证:x^2+y^2>=xy+x+y-1
已知x,y∈R,求证(x2+y2)2≥xy(x+y)2
已知x,y∈R*,x+y=1,求证2/x+1/y≥3+2根号2
已知x,y∈R,求证:x+y+1≥x+y+xy
已知x,y∈R,求证:x-xy+y≥x+y-1
用反证法证明:“已知x,y∈R,x+y≥2,求证x,y中至少有一个大于1”.则所作的反设是?
x,y∈R.x+y=1 求证(x+1)²+(y+2)²≥25/2x,y∈R.x+y=1 求证(x+2²+(y+2)²≥25/2
若xy∈R+ x+y=2 求证1/x+1/y≥2
若xy∈R+ x+y=2 求证1/x+1/y≥2
x,y∈R.x+y=1 求证(x+2²+(y+2)²≥25/2
x,y∈R.x+y=1 求证(x+1)²+(y+2)²≥25/2
已知x.y∈R,求证x2+y2+1≥x+y+xy
已知x,y,z∈R+,且x+y+z=3,求证:x^2/(y^2+z^2+yz)+y^2/(x^2+z^2+zx)+z^2/(x^2+y^2+xy)≥1
已知x,y属于 R +,且x+2y=1,求证 xy
已知x,y属于正R,且x+2y=1,求证xy=
已知f(x)的定义域为R,对任意x,y∈R,有f(x+y)+f(x-y)=2f(x)f(y),且f(0)≠0.求证:y=f(x)为偶函数
证明 已知xyz∈R^+, x^2x * y^2y* z^2z≥x^y+x* y^z+x * z^x+y