Compactness is weakly hereditary

This article gives the statement, and possibly proof, of a topological space property satisfying a topological space metaproperty
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Statement

Property-theoretic statement

The property of topological spaces of being compact satisfies the metaproperty of being weakly hereditary: in other words, it is inherited by closed subsets.

Verbal statement

Any closed subset of a compact space is compact (when given the subspace topology).

Proof

Proof in terms of open covers

Let ${\displaystyle X}$ be a compact space and ${\displaystyle A}$ be a closed subset (given the subspace topology). We need to prove that ${\displaystyle A}$ is compact.

Let's start with an open cover of ${\displaystyle A}$ by open sets ${\displaystyle U_{i}}$ with ${\displaystyle i\in I}$, an indexing set. Our goal is to exhibit a finite subcover.

By the definition of subspace topology, we can find open sets ${\displaystyle V_{i}}$ of ${\displaystyle X}$ such that ${\displaystyle V_{i}\cap A=U_{i}}$, thus the union of the ${\displaystyle V_{i}}$s contaiins ${\displaystyle A}$.

Since ${\displaystyle A}$ is closed, we can throw in the open set ${\displaystyle X\setminus A}$, and get an open cover of the whole space. But since the whole space is compact, this open cover has a finite subcover. In other words, there is a finite subcollection of the ${\displaystyle V_{i}}$s, that, possibly along with ${\displaystyle X\setminus A}$, covers the whole of ${\displaystyle X}$. By throwing out ${\displaystyle X\setminus A}$, we get a finite collection of ${\displaystyle V_{i}}$s whose union contains ${\displaystyle A}$. The corresponding ${\displaystyle U_{i}}$ now form a finite subcover of the original cover of ${\displaystyle A}$.

References

Textbook references

• Topology (2nd edition) by James R. Munkres^{More info}, Page 165 (Theorem 26.2)
• Lecture Notes on Elementary Topology and Geometry (Undergraduate Texts in Mathematics) by I. M. Singer and J. A. Thorpe^{More info}, Page 12 (Theorem 4)