神马作文网通分x-y x.x^2 2xy y^2
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/23 18:49:48
原式=[x-y(x-y)2-y(x+y)(x+y)(x-y)]•xyy-1=(1x-y-yx-y)•xyy-1=1-yx-y•xyy-1=-xyx-y.故答案是:-xyx-y.
将xy提取公因式变成:xy(x+y)=-3*6=-18
原来A=x−yx+y,当x、y的值都扩大为原来的3倍时,现在A=(3x−3y)(3x+3y)=A,所以A的值不变.原来B=xyx+y,当x、y的值都扩大为原来的3倍时,现在B=9xy(3x+3y)=3
∵x+y=4,xy=3,∴原式=x2+y2xy=(x+y)2−2xyxy=16−63=103.
令y=ux则x^2(xdu+udx)/dx=2(ux)^2+ux^2约掉x^2(xdu+udx)/dx=2(u)^2+u所以(xdu)/dx=2(u)^2之后你该知道了吧求出u关于x的表达式再有y=u
∵x−yx+y=2,∴x-y=2(x+y),∴x−yx+y-2x+2yx−y=2(x+y)x+y-2(x+y)2(x+y)=2-1=1,故答案为:1.
2x+yx2-2xy+y2•(x-y)=2x+y(x-y)2•(x-y)(2分)=2x+yx-y;(4分)当x-3y=0时,x=3y;(6分)原式=6y+y3y-y=7y2y=72.(8分)
以x为主元,将方程整理为3x2-(3y+7)x+(3y2-7y)=0,∵x是整数,∴△=[-(3y+7)]2-4×3(3y2-7y)≥0,∴21−1439≤y≤21+1439,∴整数y=0,1,2,3
根据题意,x>0,y>0,则2yx>0,8xy>0,则2yx+8xy≥22yx•8xy=8,即2yx+8xy的最小值为8,若2yx+8xy>m2+2m恒成立,必有m2+2m<8恒成立,m2+2m<8⇔
原式=[(x+y)2(x-y)(x+y)+-4xy(x-y)(x+y)]×(x+3y)(x-3y)(x+3y)(x-y)=x-3yx+y,由已知得(3x-2y)(x+y)=0,因为x+y≠0,所以3x
-x^2y+5xy^2-yx^2=-2x^2y+5xy^2
x-yx+yandx+y>10
symsxy[xy]=solve('x*3012=x*1406+y*1753+202480','x+y=10000')这是求xy的临界值!
xy+yx=10x+y+10y+x=11x+11y=100+x10x=100-11yx=10-1.1y所以y只能是0
通分3/2x²与2/x²-x解,得:他们变形后得3/2x^22/x(x-1)通分后得3x(x-1)/2x^2(x-1)4x^2/2x^2(x-1)再问:没看懂,你能用画图的方式写出
-x/y与x/-y有相等关系?-x/-y与x/y有相等关系?-x/-y与x/yx有前者是后者的y倍?
由题意得,x−y=2x−2y+3=3,解得:x=4y=2,则可得a=3,b=2,b-a=-1,-1的立方根为:-1.
x=1,y=0,z=9首先x、y、z都是个位数xyy可以写成100x+10y+y同理,zz可以写成10z+zyx写成10y+x等式重新代入以上化解后的式子,就是:100x+11y-11z=10y+x合
1/ac;1/2b[通分]2b/2abc;ac/2abc1/x-1;4/x^2-1[通分]x+1/(x+1)(x-1);4/(x+1)(x-1)3/x-2;2/6-3x[通分]9/3(x-2);-2/
化简:[(y²-x²)/(5x²-4yx)]/[(x+y)/(5x-4y)]原式=[(y+x)(y-x)/x(5x-4y)]×[(x+y)/(5x-4y)]=(y-x)/