x2-y2=34, x-y=2,求xy的值
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再问:对不起题目打错了,是已知实数x,y满足x2+y2-2x+4y-20=0,则x2+y2的最小值是A.30-10√5B.5-5√5C.5D.25再答:更改后的答案:
x-y=1,(x-y)^2=x^2+y^2-2xy=12xy=25-1=24,xy=12(x+y)^2=x^2+y^2+2xy=25+24=49x^2-xy+y^2=25-12=13
(x-1)^2+(y-1)^2=1令x-1=sinay-1=cosa则x=1+sina,y=1+cosax^2+y^2=1+2sina+(sina)^2+1+2cosa+(cosa)^2=3+2(si
X2+Y2+8X+6Y+25=0x²+8x+16+y²+6y+9=0(x+4)²+(y+3)²=0∴x+4=0y+3=0x=-4y=-3X2+4XY+4Y2分之
X2+Y2+8X+6Y+25=0x^2+y^2+8x+6y+25=0x^2+8x+16+y^2+6y+9=0(X+4)^2+(y+3)^2=0x=-4y=-3(x^2-4y^2)/(x^2+4xy+4
你好x²+y²-10x-6y+34=0(x-5)²+(y-3)²=0每项都大于等于0,只有等于0时上式才成立,所以x=5y=3(x-y/x+y)²÷(
(1)x2+y2-10x-10y=0,①;x2+y2+6x-2y-40=0②;②-①得:2x+y-5=0为公共弦所在直线的方程;(2)弦心距为:|10+5−5|22+12=20,弦长的一半为50−20
已知2x=3y,求xy/(x^2+y^2)-y^2/(x^2-y^2)的值2x=3y-->x=(3/2)yx^2=(9/4)y^2xy/(x^2+y^2)-y^2/(x^2-y^2)==(3/2)y*
y^2=x^3-3x^2+2xx^2=y^3-3y^2+2y两式相减得:y^2-x^2=(x^3-y^3)-3(x^2-y^2)+2(x-y)(x-y)(x^2+xy+y^2-2x-2y+2)=0所以
10拆成1+9X2-2X+1+Y2-6Y+9=0(X-1)2+(Y-3)2=0平方大于等于0,相加等于0,若有一个大于0,则另一个小于0,不成立.所以两个都等于0所以X-1=0,Y-3=0X=1,Y=
x=0或x=整负根号下1-y方
设t=x2+y2(t大于等于0)则t(t+2)-3=0(t+3)(t-1)=0t=-3(舍去)或t=1所以,x2+y2=1
即(x²+4x+4)+(y²-6y+9)=0(x+2)²+(y-3)²=0所以x+2=y-3=0x=-2,y=3所以原式=(4+4)/(4+27)=8/31
可设x²+y²=t.则t(t-1)=2.===>t²-t-2=0.===>(t-2)(t+1)=0.===>t=2.即x²+y²=2.
x²-2xy+y²/x²-y²=(x-y)²/(x-y)(x+y)=(x-y)/(x+y)因为x=3,y=-5,所以(3-(-5))/(3+(-5))
不对=x2(x-y)-y2(x-y)=(x2-y2)(x-y)=(x+y)(x-y)2再问:噢。我看懂了
原式可化简为(x+2)^2+(y-1)^2=9这是一个以(-2,1)为半径的圆所以x^2+y^2的最大值就是圆上一点到原点的最大距离就是圆心到原点的距离加上半径等于3+根号5
x2+y2-2x+2y=6(x-1)²+(y+1)²=2²所以可设x=1+2cosay=-1+2sina于是x²+y²=(1+2cosa)²
因为x2+xy-2y2=2(x+2y)即(x-y)(x+2y)=2(x+2y)所以x-y=2(x-y)2=x2-2xy+y2=4所以xy=(x2+y2-4)/2=(20-4)/2=8(x+y)2=x2
x2+4x+y2-2y+5=0,x2+4x+4+y2-2y+1=0,(x+2)2+(y-1)2=0,x+2=0,y-1=0,解得x=-2,y=1,x2+y2=5,故答案为:5.