5x(x-1)+2=2x
5x(x-1)-2(x-1)=0
(x-1)(5x-2)=0
x1=1,x2=2/5
(2x+1)^2=4(2x+1)
(2x+1)^2-4(2x+1)=0
(2x+1)(2x+1-4)=0
(2x+1)(2x-3)=0
x1=-1/2,x2=3/2
2(x+3)^2=x^2-9
2(x+3)^2-(x^2-9)=0
2(x+3)^2-(x+3)(x-3)=0
(x+3)(x+9)=0
x1=-3,x2=-9
x²+4√3 x=-12
x²+4√3 x+12=0
(x+2√3)²=0
x1=x2=-2√3
4(x+3)²-9x²=0
[2(x+3)-3x][2(x+3)+3x]=0
(6-x)(5x+6)=0
x1=6,x2=-6/5
因为 (1-a)x²+2x+2=0有实数根
所以 2^2-4(1-a)*2>=0
解得 a>= - 1/2
又因为 1-a不等于0
a不等于1
所以 a>= - 1/2,且 a不等于1
5x(x-1)+2-2x=0
5x(x-1)-2(x-1)=0
(x-1)(5x-2)=0
x1=1,x2=2/5
(2x+1)²=4(2x+1)
(2x+1)²-4(2x+1)=0
(2x+1)(2x+1-4)=0
(2x+1)(2x-3)=0
x1=-1/2,x2=3/2
2(x+3)²=x²-9
2(x+3)²-(x²-9)=0
2(x+3)²-(x+3)(x-3)=0
(x+3)(x+9)=0
x1=-3,x2=-9
x²+4√3 x=-12
x²+4√3 x+12=0
(x+2√3)²=0
x1=x2=-2√3
4(x+3)²-9x²=0
[2(x+3)-3x][2(x+3)+3x]=0
(6-x)(5x+6)=0
x1=6,x2=-6/5
(1-a)x²+2x+2=0有实数根,求a的取值范围
a≥1/2
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