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本帖最后由 hbghlyj 于 2023-6-11 12:45 编辑 与a Continuous Mapping is Sequentially Continuous类似可证.
$\newcommand{\map}[2]{#1 \left( #2 \right)}\newcommand{\sequence}[1]{\left\langle #1 \right\rangle}$
If $f$ is not continuous at $x$, there exists $\epsilon_0 > 0$ such that for all $\delta > 0$ there exists $y \in X$ such that $\map d {x, y} < \delta$ and $\map e {\map f x, \map f y} \ge \epsilon_0$.
For $n \ge 1$, define $\delta_n = \dfrac 1 n$.
For $n \ge 1$, we may choose $y_n \in X$ such that $\map d {x, y_n} < \delta_n$ and $\map e {\map f x, \map f {y_n} } \ge \epsilon_0$.
Therefore, by definition the sequence $\sequence {y_n}_{n \mathop \ge 1}$ converges to $x$.
However, the sequence $\sequence {\map f {y_n} }_{n \mathop \ge 1}$ does not have a subsequence converging to $\map f x$. |
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Czhang271828
发表于 2023-6-11 13:46
