先化简(3 x 1-x 1) x的平方-4x

X1,X2是方程2x的平方+3x-4=0的两个实数根x1+x2=-3/2x1x2=-2x1^2+2x1x2+x^2=9/4x1^2-2x1x2+x^2=9/4-4x1x2(x1-x2)^2=41/4x

x1+x2=5x1x2=31/x1+1/x2=(x1+x2)/(x1x2)=5/3x1²+x2²=(x1+x2)²-2x1x2=19

x1,x2是方程x平方+6x+3=0的两个实数根,可得：x1+x2=-6;x1x2=3所以有：(x2-x1)^2=(x1+x2)^2-4x1x2=36-12=24即：x2-x1=±2√6x2/x1-x

x1,x2是方程x平方+6x+3=0的两个实数根,可得：x1+x2=-6;x1x2=3（韦达定理）所以有：(x2-x1)^2=(x1+x2)^2-4*x1x2=36-12=24即：x2-x1=±2√6

“x2/x1=x1/x2的值是什么”这里不清楚,请你对一下题目,我十分愿意帮你解答,再问：x2/x1+x1/x2谢谢再答：x1+x2=-6,x1x2=3所以x2/x1+x1/x2=（x1的平方+x2的

由韦达定理得：因为a=1,b=-2m,c=m^2+2m+3所以X1+X2=2mX1X2=m^2+2m+3所以X1^2+X2^2=(X1+X2)^2-2X1X2=2m^2-4m-6由△=b^2-4ac=

x1+x2=3x1x2=-2007x1的平方加X2的平方=(x1+x2)^2-2x1x2=9+4014=4023

设x1,x2是方程ax^2+bx+c=0的两根,由韦达定理:x1+x2=-b/a,x1x2=c/ax1、x2是一元二次方程2x2-3x+1=0的两个根由韦达定理有:x1+x2=3/2,x1x2=1/2

2x^2-2x+1-3m=0由根与系数的关系：x1+x2=1x1x2=(1-3m)/2代入x1x2+2(x1+x2)>0得：（1-3m)/2+2>0解得：m

∵x²+6x+3=0∴x1+x2=-6x1x2=3x1/x2+x2/x1=(x1+x2)²-2x1x2/x1x2=10

X的平方-3X+1=0的两个实数根是X1,X2X1+X2=3X1X2=1(X1-X2)^2=(X1+X2)^2-4X1X2=3^2-4=5X1-X2=正负根号5

x-x+3=0所以x1+x2=1,x1x2=3因此(1)(X1+2)(X2+2)=x1x2+2(x1+x2)+4=3+2x1+4=9(2)(X1-X2)=(x1+x2)-4x1x2=1-4x3=-11

根据韦达定理：x1+x2=－b/ax1*x2=c/a代入：x1+x2=－5/3x1*x2=－2/3即：x1+x2+x1*x2=(－5/3)+(－2/3)=－7/3

3x^2+4x-7=0由韦达到理得：x1+x2=-4/3、x1x2=-7/3.x1^2+x2^2=(x1+x2)^2-2x1x2=16/9+14/3=58/9.1/x1^2+1/x2^2=(x1^2+

方程3x^2-5x-2=0有一个根为x1,∴3x1^2-5x1-2=0,∴3x1^2-5x1=2,∴6x1^2-10x1=2(3x1^2-5x1)=4.

x^2+3x+1=0x1+x2=-3,x1x2=1,x1

如图一元二次方程X平方+2X-3=0的两根X1,X2(X1

首先解x*2-4x+2=0的解,解出x1=根号2+2,x2=2-根号2然后可算x1+x2=根号2+2+2-根号2=4x1x2=（根号2+2）（2-根号2）=4-2=2问题1：x1分之1加x2分之1=x

已知X1X2为方程5X平方-3X-1=0两个根；所以x1+x2=3/5;x1x2=-1/5;x1-x2=√(x1-x2)²=√[(x1+x2)²-4x1x2]=√(9/25+4/5

x²-x=0x(x-1)=0x1