English

Quickly excluding an annotated planar graph

Combinatorics 2026-02-10 v2 Discrete Mathematics

Abstract

We provide proofs certifying that the structure theorem for vertex sets of bounded bidimensionality holds with polynomial bounds. The bidimensionality of vertex sets is a common generalisation of both treewidth and the face-cover-number of vertex sets in planar graphs. As such, it plays a crucial role in extensions of Courcelle's Theorem to HH-minor-free graphs. Recently, bidimensionality and similar parameters have emerged as key for extensions of known parameterized algorithms for problems defined on a terminal set RR. A prominent example for such a problem is Steiner Tree, which admits efficient algorithms on planar graphs whenever RR can be covered with few faces. Key to the algorithmic applications of bidimensionality is a structure theorem that explains how a graph GG can be decomposed into pieces where the behaviour of RR is highly controlled. One may see this structure theorem as a rooted analogue of Robertson and Seymour's celebrated Grid Theorem. Combining recent advances in obtaining polynomial bounds in the Graph Minors framework with new techniques for handling annotated vertex sets, we show that all parameters in the structure theorem above admit polynomial bounds. As an application, we also provide a sketch showing how our techniques imply polynomial bounds for the structure theorem for graphs excluding an apex minor.

Keywords

Cite

@article{arxiv.2602.06516,
  title  = {Quickly excluding an annotated planar graph},
  author = {Maximilian Gorsky and Evangelos Protopapas and Sebastian Wiederrecht},
  journal= {arXiv preprint arXiv:2602.06516},
  year   = {2026}
}

Comments

77 pages, 9 figures