已知实数x y满足x² y² 4x-6y 13=0
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x²+25+√(y+4)=10xx²-10x+25+√(y+4)=0(x-5)²+√(y+4)=0x=5,y=-4(x+y)^(1/3)=(5-4)^(1/3)=1答:1
将其看出关于x的方程5x²-(6y+4)x+2y²+2y+1=0其判别式△≥0而△=(6y+4)²-20(2y²+2y+1)=-4y²+8y-4=-4
4x²+4xy+y²+2x+y-6=0(2x+y)²+(2x+y)-6=0(2x+y+3)(2x+y-2)=02x+y+3=0或2x+y-2=0y=-2x-3或y=2-2
再问:该方法此处计算是错的,应该为,接下来的都不对了再答:那就从那步开始吧x+y=xy-8若x,y大于0xy-8=x+y≥2√xyxy-8≥2√xyxy-2√xy-8≥0(√xy-4)(√xy+2)≥
x^2+y^2-6x+4y+13=0x^2-6x+9+y^2+4x+4=0(x-3)^2+(y+2)^2=0平方项恒非负,两平方项之和等于0,则两平方项都等于0.x-3=0x=3y+2=0y=-2x^
x²+y²-xy+2x-y+1=0x²+2x+1-y(x+1)+y²=0(x+1)²-y(x+1)+y²=0(x+1-y/2)²+
∵正实数x,y满足xy+2x+y=4,∴y=4−2xx+1(0<x<2).∴x+y=x+4−2xx+1=x+6−(2+2x)x+1=(x+1)+6x+1-3≥2(x+1)•6x+1-3=26-3,当且
答:正实数x和y:xy+2x+y=4设x+y=k>0,y=k-x代入得:x(k-x)+2x+k-x-4=0-x^2+(k+1)x+k-4=0关于x的方程有判别式=(k+1)^2-4*(-1)*(k-4
设y/x=k,即有y=kx代入方程中有:x^2+k^2x^2-4x+1=0(1+k^2)x^2-4x+1=0判别式=16-4(1+k^2)>=01+k^2
x>=4x/y=x-yx=(x-y)yx=xy-y2y2=x(y-1)x=y2/(y-1)设y-1=t因为y>1所以t>0故x=(t2+2t+1)/tx=t+1/t+2>=2根号1+2x>=4
由2x^2+4xy+4y^2+8x+12y+10=0得x^2+2xy+2y^2+4x+6y+5=0x^2+2(y+2)x+(y+2)^2-(y+2)^2+2y^2+6y+5=0(x+y+2)^2+(y
分解因式有(x-3y)(2x-y)=0所以有x=3y或2x=y所以x:y=3:1或x:y=1:2
xy+1=4x+y①∵x>0,y>0根据均值定理∴4x+y≥2√(4x*y)=4√(xy)②①②==>xy+1≥4√(xy)∴(xy)-4√(xy)+1≥0解得√(xy)≥2+√3或0
z=3x+y=13(x+2y)/6+5(x-4y)/6当x=5,y=2时取到,z最大值17
x²+y²-xy+2x-y+1=[3(x+1)²+(x-2y+1)²]/4=0,由于(x+1)²>=0且(x-2y+1)²>=0,则有x+1
(x+1)^2+(y+2)^2=25(x,y)在以(-1,-2)为圆心,5为半径的圆上用线性规划思想,(1)设k=y/x,则只需y=kx与圆有公共点即可,用圆心到直线距离=0,k为全体实数(2)x^2
y=-x²+x+3x+y=-x²+2x+3=-x²+2x-1+4=-(x-1)²+4因为-1<0所以当x=1时,x+y的最大值=4
如图这是我自己做的
10x²-2xy+y²+6x+1=0(3x+1)²+(x-y)²=03x+1=0x-y=0所以x=y=-1/3x+y=-2/3再问:3x+1=x-y=再答:3x
x、y∈R且x+y=1,∴1/(2x+y)+4/(2x+3y)=1^2/(2x+y)+2^2/(2x+3y)≥(1+2)^2/[(2x+y)+(2x+3y)]=9/[4(x+y)]=9/4.故(2x+