已知一元二次方程ax²+b=0有实根 则必须是
Aa.b同号或b=0且a≠0Ba.b异号或b=0且a≠0Ca>b且a≠0Da<b且a≠0问下大家怎么算的谢谢解答...
A a.b同号或b=0且a≠0 B a.b异号或b=0 且a≠0
C a >b 且a≠0 D a<b 且a≠0
问下大家 怎么算的 谢谢解答 展开
C a >b 且a≠0 D a<b 且a≠0
问下大家 怎么算的 谢谢解答 展开
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ax^2=-b
x^2=-b/a
所以-b/a>=0
A.同号一定是负数,肯定不对
B.对的,而且b=0,a不等于0的情况也考虑了
C.D这道题和a,b谁大谁小没关系,舍掉
所以答案是B
x^2=-b/a
所以-b/a>=0
A.同号一定是负数,肯定不对
B.对的,而且b=0,a不等于0的情况也考虑了
C.D这道题和a,b谁大谁小没关系,舍掉
所以答案是B
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ax²+b=0,
ax² = -b,
x² = -b/a,
x² >0,
所以 -b/a >0,
b/a <0,
也就是说 a和b异号。
或者 b=0,那么解为 x=0
ax² = -b,
x² = -b/a,
x² >0,
所以 -b/a >0,
b/a <0,
也就是说 a和b异号。
或者 b=0,那么解为 x=0
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答案选B
首先一元二次方程需满足 a≠0
x²=-b/a>=0
所以:a.b异号或b=0
希望采纳,鼓励下,谢谢!
首先一元二次方程需满足 a≠0
x²=-b/a>=0
所以:a.b异号或b=0
希望采纳,鼓励下,谢谢!
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