证明【1】fx=x的平方+1,在【-无穷大,0】上是减函数
人气:371 ℃ 时间:2019-08-19 11:45:19
解答
令x1<x2<0
f(x2)-f(x1)
=x2^2+1-(x1^2+1)
=x2^2-x1^2
=(x2+x1)(x2-x1)
x2+x1<0,x2-x1>0
∴f(x)=(x2+x1)(x2-x1)<0,得证
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