Difference between revisions of "Compactness in Metric Spaces"

Compact Sets in a Metric Space

If ${\displaystyle (M,d)}$ is a metric space and ${\displaystyle S\subseteq M}$ then a cover or covering of ${\displaystyle S}$ is a collection of subsets ${\displaystyle {\mathcal {F}}}$ in ${\displaystyle M}$ such that:

${\displaystyle {\begin{aligned}\quad S\subseteq \bigcup _{A\in {\mathcal {F}}}A\end{aligned}}}$

Furthermore, we said that an open cover (or open covering) is simply a cover that contains only open sets.

We also said that a subset ${\displaystyle {\mathcal {S}}\subseteq {\mathcal {F}}}$ is a subcover/subcovering (or open subcover/subcovering if ${\displaystyle {\mathcal {F}}}$ is an open covering) if ${\displaystyle {\mathcal {S}}}$ is also a cover of ${\displaystyle S}$, that is:

${\displaystyle {\begin{aligned}\quad S\subseteq \bigcup _{A\in {\mathcal {S}}}A\quad {\text{ where }}{\mathcal {S}}\subseteq {\mathcal {F}}\end{aligned}}}$

We can now define the concept of a compact set using the definitions above.

Definition: Let ${\displaystyle (M,d)}$ be a metric space. The subset ${\displaystyle S\subseteq M}$ is said to be Compact if every open covering ${\displaystyle {\mathcal {F}}}$ of ${\displaystyle S}$ has a finite subcovering of ${\displaystyle S}$.

In general, it may be more difficult to show that a subset of a metric space is compact than to show a subset of a metric space is not compact. So, let's look at an example of a subset of a metric space that is not compact.

Consider the metric space ${\displaystyle (\mathbb {R} ,d)}$ where ${\displaystyle d}$ is the Euclidean metric and consider the set ${\displaystyle S=[0,1)\subseteq \mathbb {R} }$. We claim that this set is not compact. To show that ${\displaystyle S}$ is not compact, we need to find an open covering ${\displaystyle {\mathcal {F}}}$ of ${\displaystyle S}$ that does not have a finite subcovering. Consider the following open covering:

${\displaystyle {\begin{aligned}\quad {\mathcal {F}}=\left\{\left((0,1-{\frac {1}{n}}\right):n\in \mathbb {Z} ,n\geq 1\right\}=\left\{\left(0,{\frac {1}{2}},\right),\left(0,{\frac {2}{3}}\right),\left(0,{\frac {3}{4}}\right),...\right\}\end{aligned}}}$

Clearly ${\displaystyle {\mathcal {F}}}$ is an infinite subcovering of ${\displaystyle (0,1)}$ and furthermore:

${\displaystyle {\begin{aligned}\quad (0,1)\subseteq \bigcup _{k=2}^{\infty }\left(0,1-{\frac {1}{k}}\right)\end{aligned}}}$

Let ${\displaystyle {\mathcal {F}}^{*}}$ be a finite subset of ${\displaystyle {\mathcal {F}}}$ containing ${\displaystyle p}$ elements. Then:

${\displaystyle {\begin{aligned}\quad {\mathcal {F}}^{*}=\left\{\left(0,1-{\frac {1}{n_{1}}}\right),\left(0,1-{\frac {1}{n_{2}}}\right),...,\left(0,1-{\frac {1}{n_{p}}}\right)\right\}\end{aligned}}}$

Let ${\displaystyle n^{*}=\max\{n_{1},n_{2},...,n_{p}\}}$. Then due to the nesting of the open covering ${\displaystyle {\mathcal {F}}}$, we see that:

${\displaystyle {\begin{aligned}\quad \bigcup _{k=1}^{p}\left(0,1-{\frac {1}{n_{p}}}\right)=\left(0,1-{\frac {1}{n^{*}}}\right)\end{aligned}}}$

But for ${\displaystyle (0,1)\subseteq \left(0,1-{\frac {1}{n^{*}}}\right)}$ we need ${\displaystyle 1\leq 1-{\frac {1}{n^{*}}}}$. But ${\displaystyle n^{*}\in \mathbb {N} }$, so ${\displaystyle n^{*}>0}$ and ${\displaystyle {\frac {1}{n^{*}}}>0}$, so ${\displaystyle 1-{\frac {1}{n^{*}}}<1}$. Therefore any finite subset ${\displaystyle {\mathcal {F}}^{*}}$ of ${\displaystyle {\mathcal {F}}}$ cannot cover ${\displaystyle S=(0,1)}$. Hence, ${\displaystyle (0,1)}$ is not compact.