The Ginsburg--Sands theorem and computability theory
Abstract
The Ginsburg--Sands theorem from topology states that every infinite topological space has an infinite subspace homeomorphic to exactly one of the following five topologies on : indiscrete, discrete, initial segment, final segment, and cofinite. The original proof is nonconstructive, and features an interesting application of Ramsey's theorem for pairs (). We analyze this principle in computability theory and reverse mathematics, using Dorais's formalization of CSC spaces. Among our results are that the Ginsburg-Sands theorem for CSC spaces is equivalent to , while for Hausdorff spaces it is provable in . Furthermore, if we enrich a CSC space by adding the closure operator on points, then the Ginsburg-Sands theorem turns out to be equivalent to the chain/antichain principle (). The most surprising case is that of the Ginsburg-Sands theorem restricted to spaces. Here, we show that the principle lies strictly between and , yielding arguably the first natural theorem from outside logic to occupy this interval. As part of our analysis of the case we introduce a new class of purely combinatorial principles below and not implied by which form a strict hierarchy generalizing the stable Ramsey's theorem for pairs (). We show that one of these, the subset principle (-), has the property that it, together with the cohesive principle (), is equivalent over to the Ginsburg--Sands theorem for CSC spaces.
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Cite
@article{arxiv.2402.05990,
title = {The Ginsburg--Sands theorem and computability theory},
author = {Heidi Benham and Andrew De Lapo and Damir Dzhafarov and Reed Solomon and Java Darleen Villano},
journal= {arXiv preprint arXiv:2402.05990},
year = {2024}
}
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