标签:style color sp 2014 on amp ad bs size
试求 $$\bex \vlm{n}n^2\sex{x^\frac{1}{n}-x^\frac{1}{n+1}},\quad x>0. \eex$$
解答: $$\beex \bea \mbox{原极限} &=\vlm{n}n^2\cdot x^\xi\ln x\sex{\frac{1}{n}-\frac{1}{n+1}}\quad\sex{\frac{1}{n+1}<\xi<\frac{1}{n}}\\ &=\ln x. \eea \eeex$$
[再寄小读者之数学篇](2014-10-18 利用 Lagrange 中值定理求极限)
标签:style color sp 2014 on amp ad bs size
原文地址:http://www.cnblogs.com/zhangzujin/p/4039397.html
