求解2元2次方程组!!!
求解此方程组:X^2+Y^2=7225(140-X)^2+(Y-12.5)^2=9506.25貌似有4个解求高手帮忙解答多谢,最好能把过程写一下!...
求解此方程组:
X^2+Y^2=7225
(140-X)^2+(Y-12.5)^2=9506.25
貌似有4个解求高手帮忙解答多谢,最好能把过程写一下! 展开
X^2+Y^2=7225
(140-X)^2+(Y-12.5)^2=9506.25
貌似有4个解求高手帮忙解答多谢,最好能把过程写一下! 展开
2个回答
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X^2+Y^2=7225
(140-X)^2+(Y-12.5)^2=9506.25
相减
280x-140^2+25y-12.5^2= - 2281.25
280x-25y = 17475
56x-5y = 3495
5y = 3495 - 56x
25x^2+(5y)^2 = 7225*25
25x^2+(3495 - 56x )^2 = 7225*25
3161x^2-391440x +12034400=0
Δ=1062320000
x1 = 391440+32593.25 / 2*3161 =67
x2 = 391440-32593.25 / 2*3161 = 56.76
y的4个值代这里面就行了5y = 3495 - 56x
(140-X)^2+(Y-12.5)^2=9506.25
相减
280x-140^2+25y-12.5^2= - 2281.25
280x-25y = 17475
56x-5y = 3495
5y = 3495 - 56x
25x^2+(5y)^2 = 7225*25
25x^2+(3495 - 56x )^2 = 7225*25
3161x^2-391440x +12034400=0
Δ=1062320000
x1 = 391440+32593.25 / 2*3161 =67
x2 = 391440-32593.25 / 2*3161 = 56.76
y的4个值代这里面就行了5y = 3495 - 56x
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