若方程组x 2y=m-2,4x 5y=6m 3

(x+y)(xy)=x^2y+xy^2=-8原式=-7

因为A+B+C=x3-2y3+3x2y+xy2-3xy+4+y3-x3-4x2y-3xy-3xy2+3+y3+x2y+2xy2+6xy-6=1，所以，对于x、y、z的任何值A+B+C是常数．

原式=2x2y+2xy-3x2y-3xy-4x2y=-5x2y-xy当x=-2，y=12时，原式=-9．

根据题意得：（3x2y-2xy2）÷（-3x+2y）=-xy，则m=-xy．故选B．

2X1+X2+X3+X4+X5=6①X1+2X2+X3+X4+X5=12②X1+X2+2X3+X4+X5=24③X1+X2+X3+2X4+X5=48④X1+X2+X3+X4+2X5=96⑤①+②+③+

sn=(2-3x5^-1)+(4-3x5^-2)+…+(2n-3x5^-n)=（2+4+.+2n)-(3x5^-1+3x5^-2+.+3x5^-n)=（2^1+2^2+.+2^n）-(3x5^-1+3

①+②+③+④+⑤(等号左边、右边各相加）得到：6*（x1+x2+x3+x4+x5）=6+12+24+48+96x1+x2+x3+x4+x5=(6+12+24+48+96)/6x1+x2+x3+x4+

原式=4x2y-6xy+3（4xy-2）+x2y+1=5x2y+6xy-5当x=2，y=-12时，原式=5×4×（-12）+6×2×（-12）-5=-21．

5式相加,3（x1+x2+x3+x4+x5）=1+5-5-3+2=0所以x1+x2+x3+x4+x5=0X1+X2+X3=5,X4+X5+X1=-3,两式相加：X1+（X1+X2+X3+X4+X5）=

化简得：9-12Y^2+6Y+4+12Y^2+4Y-10-10Y+X-Y+1=X-Y+4带入X、Y值得：=3

先将其写成矩阵的形式,然后化简成阶梯形,可知其有两个基础解系,化简结果第一行(1.0.0.-1.-5)第二行(0.1.0.2.6)第三行(0.0.6.0.0)第四行全是零,得基础解系是(1.-2.0.

先将5个方程相加,除以6,得到X1+X2+X3+X4+X5=某个数然后再依次减去前面的.

题目1看不明白解题目2x+y=4,(x+y)^2=4^2=16,同样x-y=10,(x-y)^2=10^2=100,(x+y)^2=x^2+2xy+y^2,(x-y)^2=x^2-2xy+y^2,(x

答案：2x^2y+2xy^2原式=4x2y-{x2y-[3xy2-2x2y+4xy2+x2y]}-5xy2=4x2y-{x2y-[7xy2-x2y]}-5xy2=4x2y-{x2y-7xy+x2y]}

2x1+x2+x3+x4+x5=61式x1+2x2+x3+x4+x5=122式x1+x2+2x3+x4+x5=243式x1+x2+x3+2x4+x5=484式x1+x2+x3+x4+2x5=965式1

1/2x²y+M=1/2xy(N+2y)=1/2xyN+xy²所以N=xM=xy²

x2y+xy2=xy*(x+y)因为x+y=-(7+xy)又x+y=（9+2xy)\3所以（9+2xy)\3=-(7+xy)3+2xy\3=-7-xy5xy\3=-10解得xy=-6所以x+y=-(7

原式=2x2y+2xy-3x2y+3xy-4x2y=-5x2y+5xy，当x=-1，y=1时，原式=-5×（-1）2×1+5×（-1）×1=-5-5=-10．

如果x,y符号相反,绝对值相等,即y=-x,代入原方程组,得3x-2x=m+1,4x-2x=m-1,即x=m+1,2x=m-1解之,2(m+1)=m-1,得m=-3如果x比y大1,即x=y+1,代入原

1*5+2*5+...+n*5=(1+2+...+n)*5=n(n+1)*5/2