已知x y满足x-4 (y-8)^2=0,则以x y-搜答案-大师作文网

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

一、x²y-xy²-x+y=56xy(x-y)-(x-y)=56(xy-1)(x-y)=56将xy=8代入：7(x-y)=56x-y=8①又x²+y²=(x-y

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)≥

提取公因式原式=xy(x+y)xy=4,x+y=7带入4*7=28

首先根据画图能得到（2,3）（4,2）两个交点,然后根据2x+5y=0的斜率发现在点（2,3）处最大,代入求得z=19再问：嗯跟我算得一样

因为(y-5)的平方等0.所以y=5所以x=15或3代入求值

(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

因为（x+y-√3）²与√（2x-y）互为相反数且（x+y-√3）²和√（2x-y)均为非负数可得：（x+y-√3）²＝0,√（2x-y）＝0x+y=√32x-y=0解得

设m=x+1n=2y+1所以mn=2x=1-my=(1-n)/24xy+1/xy=2(m-1)(n-1)+2/(m-1)(n-1)=2((mn-m-n+1)+1/(mn-m-n+1))=2((3-m-

2X^2+4XY+4Y^2+8X+12Y+10=2(x+y)^2+2Y^2+8x+12y+10=2(x+y)^2+8(x+y)+8+[2Y^2+4y+2]=2[(x+y)+2]^2+2(y+1)^2=

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

2X+Y

已知xy满足x²+y²+5/4(四分之五)=2x+y,求代数式(x+y)xyx²+y²+5/4=2x+yx²-2x+1+y²-y+1/4=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

将xy=8代入x平方y-8xy平方-x+y=56得8x-8y-x+y=56x-y=8x平方+y平方=(x-y)^2+2xy=8^2+2*8=64+16=80

(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

依题意2y+x+2xy=1,4xy+1/xy=4xy+2/x+1/y+2>=3*(3√(4xy*2/x*1/y))+2=8故最小值为8小于等于号右边为3倍的三次开括号内的乘积,

2X方-4XY+4Y方-6X+9=0(x^2-4xy+4y^2)+(x^2-6x+9)=0(x-2y)^2+(x-3)^2=0所以有x-2y=0,x-3=0即有x=3,y=x/2=3/2x*根号8Y=