Difference between revisions of "Isolated points"
From timescalewiki
(Created page with "Let $X \subset \mathbb{R}$. We say a point $x \in X$ is an isolated point if there exists a $\delta > 0$ such that $(t-\delta,t+\delta) \cap X = \emptyset$. It is known that f...") |
|||
Line 22: | Line 22: | ||
|- | |- | ||
|[[Delta_integral | $\Delta$-integral:]] | |[[Delta_integral | $\Delta$-integral:]] | ||
− | | | + | | |
|- | |- | ||
|[[Exponential_functions | Exponential function]]: | |[[Exponential_functions | Exponential function]]: | ||
− | | | + | | |
− | |||
− | |||
− | |||
− | |||
|} | |} |
Revision as of 05:05, 18 May 2014
Let $X \subset \mathbb{R}$. We say a point $x \in X$ is an isolated point if there exists a $\delta > 0$ such that $(t-\delta,t+\delta) \cap X = \emptyset$. It is known that for any such $X$, the set of isolated points of $X$ is at most countable. Moreover a set of isolated points is closed in $\mathbb{R}$ because its complement is a union of open intervals.
Let $\mathbb{T}=\{\ldots,t_{-1},t_0,t_1,\ldots\}$ be a time scale of isolated points with $t_k > t_n$ iff $k>n$. Define the bijection $\pi \colon \mathbb{T} \rightarrow \mathbb{Z}$, $\pi(t_k)=k$.
The set $h\mathbb{Z}=\{\ldots,-2h,-h,0,h,2h,\ldots\}$ of multiples of the integers is a time scale.
Generic element $t\in \mathbb{T}$: | For some $n \in \mathbb{Z}, t=t_n$ |
Jump operator: | $\sigma(t)=\sigma(t_n)=t_{n+1}$ |
Graininess operator: | $\mu(t)=\mu(t_n)=t_{n+1}-t_n$ |
$\Delta$-derivative: | $f^{\Delta}(t)=f^{\Delta}(t_n) = \dfrac{f(t_{n+1})-f(t_n)}{t_{n+1}-t_n}$ |
$\Delta$-integral: | |
Exponential function: |