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Added the c0 space.

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Bokuan Li
2026-03-14 21:06:58 -04:00
parent 4687e9e4fc
commit 1200e0bce0
2 changed files with 80 additions and 1 deletions
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51
src/topology/functions/uniform.tex
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@@ -11,12 +11,41 @@
then the \textbf{uniform topology} on $X^T$ is the topology induced by the uniformity generated by $\bracs{E(U)| U \in \fU}$.
\end{definition}
\begin{remark}
\label{remark:uniform-uniformity}
Properties such as completeness require the presence of a uniform structure. However, referring to it as the uniform uniformity is a little ridiculous. As such, in this section, completeness with respect to the uniform topology corresponds to completeness with respect to the uniform uniformity.
\end{remark}
\begin{definition}[Space of Bounded Functions]
\label{definition:bounded-function-space}
Let $T$ be a set, $E$ be a TVS over $K \in \RC$, and $f: T \to E$ be a function, then $f$ is \textbf{bounded} if $f(T)$ is a bounded subset of $E$. The set $B(T; E) \subset E^T$ is the space of all bounded functions from $T$ to $E$, and:
\begin{enumerate}
\item $B(T; E)$ equipped with the uniform topology and pointwise operations is a TVS over $K \in \RC$.
\item $B(T; E)$ is a closed subset of $E^T$ with respect to the uniform topology. In particular, if $E$ is complete, then so is $B(T; E)$.
\end{enumerate}
\end{definition}
\begin{proof}
(1): For any $f, g \in B(T; E)$ and $\lambda \in K$, $(\lambda f + g)(T) \subset (\lambda f)(T) + g(T)$, which is bounded by \autoref{proposition:bounded-operations}, so $B(T; E)$ is closed under addition and scalar multiplication.
Since $f(E)$ is bounded for all $f \in B(T; E)$, $B(T; E)$ forms a TVS over $K$ by \autoref{proposition:tvs-set-uniformity}.
(2): Let $f \in \ol{B(T; E)}$ and $U \in \cn_E(0)$ be circled, then there exists $g \in B(T; E)$ such that $(f - g)(E) \subset U$. Since $g \in B(T; E)$, there exists $\lambda \ge 0$ such that $g(E) \subset \lambda U$. In which case,
\[
f(E) \subset g(E) + (f - g)(E) \subset (\lambda + 1)U
\]
so $f \in B(T; E)$.
If $E$ is complete, then $E^T$ with the uniform topology is complete by \autoref{proposition:set-uniform-complete}. Thus $B(T; E)$ is also complete by \autoref{proposition:complete-closed}.
\end{proof}
\begin{proposition}
\label{proposition:uniform-limit-continuous}
Let $X$ be a topological space and $Y$ be a uniform space, then:
\begin{enumerate}
\item $C(X; Y) \subset Y^X$ is closed with respect to the uniform topology.
\item If $X$ is a uniform space, then $UC(X; Y) \subset Y^X$ is closed with respect to the uniform topology.
\item If $X$ is a uniform space, then $UC(X; Y) \subset Y^X$ is closed with respect to the uniform topology.
\end{enumerate}
In particular, if $Y$ is complete, then the above spaces are complete.
\end{proposition}
@@ -39,4 +68,24 @@
\]
so $(f(x), f(y)) \in W \circ W \circ W \subset V$.
If $Y$ is complete, then $Y^T$ with the uniform topology is complete by \autoref{proposition:set-uniform-complete}. Thus $C(T; X)$ and $UC(T; X)$ are both complete subspaces by \autoref{proposition:complete-closed}.
\end{proof}
\begin{definition}[Space of Bounded Continuous Functions]
\label{definition:bounded-continuous-function-space}
Let $X$ be a topological space and $E$ be a TVS over $K \in \RC$, then $BC(X; E) = B(X; E) \cap C(X; E)$ is the space of bounded and continuous functions from $X$ to $E$, and
\begin{enumerate}
\item $BC(X; E)$ equipped with the uniform topology and pointwise operations is a TVS over $K \in \RC$.
\item $BC(X; E)$ is a closed subspace of $C(X; E)$ and $B(X; E)$ with respect to the uniform topology. In particular, if $E$ is complete, then so is $BC(X; E)$.
\end{enumerate}
\end{definition}
\begin{proof}
(1): Since addition and scalar multiplication are continuous, $BC(X; E)$ is a subspace of $B(X; E)$, and hence a TVS over $K \in \RC$ by \autoref{definition:bounded-function-space}.
(2): Since $B(X; E)$ and $C(X; E)$ are both closed subspaces of $E^X$ by \autoref{definition:bounded-function-space}, $BC(X; E)$ is a closed subspace.
If $E$ is complete, then $B(X; E)$ and $C(X; E)$ are both complete under the uniform topology by \autoref{definition:bounded-function-space}. Therefore $BC(X; E)$ is also complete.
\end{proof}

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src/topology/main/c0.tex Normal file
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@@ -0,0 +1,30 @@
\section{Continuous Functions Vanishing at Infinity}
\label{section:vanish-at-infinity}
\begin{definition}[Vanish at Infinity]
\label{definition:vanish-at-infinity}
Let $X$ be a topological space, $E$ be a TVS over $K \in \RC$, and $f \in C(X; E)$, then $f$ \textbf{vanishes at infinity} if for every $U \in \cn_E^o(0)$, $\bracs{f \not\in U}$ is compact.
The set $C_0(X; \complex)$ is the space of all functions that vanish at infinity.
\end{definition}
\begin{proposition}
\label{proposition:c0-properties}
Let $X$ be a topological space and $E$ be a TVS over $K \in \RC$, then:
\begin{enumerate}
\item $C_0(X; E) \subset BC(X; E)$.
\item $C_0(X; E)$ is a closed subspace of $BC(X; E)$ with respect to the uniform topology.
\item If $X$ is a LCH space, then $C_c(X; E)$ is a dense subspace of $C_0(X; E)$ with respect to the uniform topology.
\end{enumerate}
\end{proposition}
\begin{proof}
(1): Let $U \in \cn_E^o(0)$ be balanced, then $f(X) = \bracs{f \in U} \sqcup \bracs{f \not\in U}$. Since $f(\bracs{f \not\in U})$ is compact, there exists $\lambda > 0$ such that $f(\bracs{f \not\in U}) \subset \lambda U$. In which case, $f(X) \subset (1 \vee \lambda)(U)$.
(2): Let $f \in \ol{C_0(X; E)}$ and $U \in \cn_E^o(0)$, then there exists $V \in \cn_E^o(0)$ balanced such that $V + V \subset U$.
Let $g \in C_0(X; E)$ such that $(f - g)(X) \subset V$. Since $g \in C_0(X; E)$, $\bracs{g \not\in V}$ is compact, so
\[
f(\bracs{g \in V}) \subset (f - g)(X) + g(\bracs{g \in V}) \subset V + V = U
\]
Thus $\bracs{f \not\in U}$ is a closed subset of $\bracs{g \not\in V}$, which is compact by \autoref{proposition:compact-extensions}.
\end{proof}