1.方程|x 1| |x-3|=4的整数解有( )
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根据韦达定理x1+x2=-3/2,x1x2=-2所以x1²+x2²=(x1+x2)²-2x1x2=(-3/2)²+4=9/4+4=25/4
由题意x1^2+3x1+1=0x1^2=-1-3x1原式=x1*x1^2+8x2+20=x1(-1-3x1)+8x2+20=-3x1^2-x1+8x2+20=-3(-1-3x1)-x1+8x2+20=
根据题意得x1+x2=-3/2x1x2=-2x³1+x³2=(x1+x2)(x²1+x²2-x1x2)=(x1+x2)[(x1+x2)²-3x1x2]
方程4x^2-7x-3=0的两根为x1,x2,所以x1+x2=7/4,x1x2=-3/4,x2/(x1+1)+x1/(x2+1)=(x1^2+x2^2+x1+x2)/(x1x2+x1+x2+1)x1^
方程3x²-4x=-1可化为:3x²-4x+1=0由根与系数的关系,有x1+x2=4/3,x1x2=1/3∴x2/x1+x1/x2=(x1²+x2²)/(x1x
x1^2-4x1+2=0x1^2-3x1=x1-2x1+x2-2=4-2=2
1方程x^2+4x+3=0的两个根为x1=?,x2=?.x1+x2=?,x1*x2=?x²+4x+3=0(x+1)(x+3)=0x=-1或x=-3x1=-1,x2=-3,x1+x2=-4,x
因为3x²-4x-2=0所以知X1+X2=-B/A=-(-4)/3=4/3X1X2=C/A=-2/3x1²+x2²=X1²+X2²+2X1X2-2X1
这是韦达定理x1+x2=-3/4x1x2=-2x1+x2=把根求出来才能得出记得采纳啊
是-3吧?x1+x2=-2x1x2=-3/2所以(x1+1)(x2+1)=x1x2+(x1+x2)+1=-3/2-2+1=-5/2x1+x2=-2两边平方x1²+2x1x2+x2²
已知x1是方程的解,则2x1²-2x1-5=0===>x1²-x1=5/2=2.5又,x1,x2是方程的两个解,则:x1+x2=1,x1x2=-5/2x1³+3x1
2x^2+3x-4=0a=2,b=3,c=-4x1+x2=-b/2=-3/2x1*x2=c/a=-4/2=-21/x1+1/x2=(x1+x2)/(x1x2)=3/4x1^2+x2^2=(x1+x2)
1.这个可以硬算,但不是出题的本意.本意是利用x1+x2=-b/a,x1*x2=c/a来做题.x1+x2=-4/4=-2,x1*x2=-3/2.(1)原式=x1*x2*(x1+x2)=-2*(-3/2
x1.x2是方程2x²-x-3=0的两实根∴x1+x2=1/2x1x2=-3/2∴x1+x2+x1*x2=1/2-3/2=-1
题目写清楚点儿啊X1+X2=-3/2X1*X2=-2|X1-X2|=√41/2析:由根与系数的关系即得X1+X2=-3/2与X1*X2=-2而|X1-X2|^2=(X1+X2)^2-4X1*X2m=-
设方程2X²-3X+1=0的两个根为X1X2则X1+X2=-(-3)/2=3/2X1*X2=1/2X1²+X2²=(X1+X2)²-2*X1*X2=(3/2)&
对于一元二次方程ax2+bx+c=0,若存在根x1、x2,则x1+x2=-b/a,x1*x2=c/a;对于本题,x1+x2=4/3,x1*x2=-2/3,所以(1)=(x1+x2)^2-2x1*x2=
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
(x-4)x1.6=16x-4=10x=14