一元二次方程式求解,x^2 + 3x - 2 = 0?
回答 (1)
2017-02-06 5:25 am
Sol
x^2+3x-2=0
x=[-3+/-√(3^2+4*1*2)]/2
=(-3+/-√17)/2
or
x^2+3x-2=0
x^2+3x=2
x^2+2*x*(3/2)=2
x^2+2*x*(3/2)+(3/2)^2=2+9/4
(x+3/2)^2=17/4
x+3/2=+/-√17)2
x==(-3+/-√17)/2
x^2+3x-2=0
x=[-3+/-√(3^2+4*1*2)]/2
=(-3+/-√17)/2
or
x^2+3x-2=0
x^2+3x=2
x^2+2*x*(3/2)=2
x^2+2*x*(3/2)+(3/2)^2=2+9/4
(x+3/2)^2=17/4
x+3/2=+/-√17)2
x==(-3+/-√17)/2
收錄日期: 2021-04-30 22:09:14
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