English

Product Structure and Treewidth of Hyperbolic Uniform Disk Graphs

Combinatorics 2026-03-20 v1 Computational Geometry Discrete Mathematics

Abstract

Hyperbolic uniform disk graphs (HUDGs) are intersection graphs of disks with some radius rr in the hyperbolic plane, where rr may be constant or depend on the number of vertices in a family of HUDGs. We show that HUDGs with constant clique number do not admit \emph{product structure}, i.e., that there is no constant cc such that every such graph is a subgraph of HPH \boxtimes P for some graph HH of treewidth at most cc. This justifies that HUDGs are described as not having a grid-like structure in the literature, and is in contrast to unit disk graphs in the Euclidean plane, whose grid-like structure is evident from the fact that they are subgraphs of the strong product of two paths and a clique of constant size [Dvo\v{r}\'ak et al., '21, MATRIX Annals]. By allowing HH to be any graph of constant treewidth instead of a path-like graph, we reject the possibility of a grid-like structure not merely by the maximum degree (which is unbounded for HUDGs) but due to their global structure. We complement this by showing that for every (sub-)constant rr, HUDGs admit product structure, whereas the typical hyperbolic behavior is observed if rr grows with the number of vertices. Our proof involves a family of nn-vertex HUDGs with radius logn\log n that has bounded clique number but unbounded treewidth, and one for which the ratio of treewidth and clique number is logn/loglogn\log n / \log \log n. Up to a loglogn\log \log n factor, this negatively answers a question raised by Bl\"asius et al. [SoCG '25] asking whether balanced separators of HUDGs with radius logn\log n can be covered by less than logn\log n cliques. Our results also imply that the local and layered tree-independence number of HUDGs are both unbounded, answering an open question of Dallard et al. [arXiv '25].

Keywords

Cite

@article{arxiv.2603.18997,
  title  = {Product Structure and Treewidth of Hyperbolic Uniform Disk Graphs},
  author = {Thomas Bläsius and Emil Dohse and Deborah Haun and Laura Merker},
  journal= {arXiv preprint arXiv:2603.18997},
  year   = {2026}
}

Comments

An extended abstract of this paper is published in the Proceedings of the 42nd International Symposium on Computational Geometry (SoCG 2026)

R2 v1 2026-07-01T11:28:18.538Z