Compact Hausdorff implies normal

This article gives the statement and possibly, proof, of an implication relation between two topological space properties. That is, it states that every topological space satisfying the first topological space property (i.e., compact Hausdorff space) must also satisfy the second topological space property (i.e., normal space)
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Statement

Property-theoretic statement

The property of topological spaces of being compact Hausdorff implies, or is stronger than, the property of being normal.

Verbal statement

Any compact Hausdorff space (a topological space that is both a compact and Hausdorff) is normal.

Related facts

Intermediate properties

• Paracompact Hausdorff space: Further information: paracompact Hausdorff implies normal

Other related facts

• any closed subset of a compact space is compact
• any compact subset of a Hausdorff space is closed: The proof of this uses a very similar argument.
• Any locally compact Hausdorff space is completely regular

Facts used

1. Compactness is weakly hereditary: Any closed subset of a compact space is compact.

Proof

Suppose ${\displaystyle X}$ is a compact Hausdorff space. We need to show that ${\displaystyle X}$ is normal. We will proceed in two steps: we will first show that ${\displaystyle X}$ is a regular space, and then show that ${\displaystyle X}$ is normal.

Proof of regularity

Given: ${\displaystyle x\in X}$ is a point and ${\displaystyle A}$ is a closed subset of ${\displaystyle X}$ not containing ${\displaystyle x}$.

To do: Exhibit disjoint open subsets containing ${\displaystyle A}$ and ${\displaystyle x}$ respectively.

Step no.	Assertion/construction	Given data used	Facts used	Previous steps used
1	For every ${\displaystyle y\in A}$, construct disjoint open subsets ${\displaystyle V_{y}\ni x}$ and ${\displaystyle U_{y}\ni y}$. In particular, the union of the ${\displaystyle U_{y}}$s contains ${\displaystyle A}$	${\displaystyle X}$ is Hausdorff	--	--
2	${\displaystyle A}$ is compact	${\displaystyle X}$ is compact, ${\displaystyle A}$ is closed in ${\displaystyle X}$	Fact (1)
3	The ${\displaystyle U_{y}\cap A}$ have a finite subcover (as an open cover of ${\displaystyle A}$). Thus, there is a finite set ${\displaystyle y_{1},y_{2},\ldots ,y_{r}}$ of points such that the union of ${\displaystyle U_{y_{i}}}$ is an open subset of ${\displaystyle X}$ containing ${\displaystyle A}$.	--	--	Step (2)
4	${\displaystyle U=\bigcup _{i=1}^{n}U_{y_{i}}}$ and ${\displaystyle V=\bigcap _{i=1}^{n}V_{y_{i}}}$ are disjoint open subsets containing ${\displaystyle A}$ and ${\displaystyle x}$ respectively.	--	--	Step (3)

Proof of normality

The process of jacking up from regularity to normality is completely analogous to the process of jacking up from Hausdorffness to regularity. Let's describe this process.

Suppose ${\displaystyle A}$ and ${\displaystyle B}$ are disjoint closed subsets of ${\displaystyle X}$. Then, for every point ${\displaystyle x\in B}$, we can define disjoint open subsets ${\displaystyle U_{x}\supset A}$ and ${\displaystyle V_{x}\supset x}$. The open sets ${\displaystyle V_{x}}$ yield an open cover of ${\displaystyle B}$, which is a closed, hence compact, subset of ${\displaystyle X}$, so there is a finite subcover ${\displaystyle x_{1},x_{2},\ldots ,x_{n}}$. The intersection of the ${\displaystyle U_{x_{i}}}$s and the union of the ${\displaystyle V_{x_{i}}}$s are disjoint open subsets containing ${\displaystyle A}$ and ${\displaystyle B}$.

References

Textbook references

• Topology (2nd edition) by James R. Munkres, Page 202, Theorem 32.3, ^{More info}
• Lecture Notes on Elementary Topology and Geometry (Undergraduate Texts in Mathematics) by I. M. Singer and J. A. Thorpe, Page 29, ^{More info}