The optimal chromatic bound for even-hole-free graphs without induced seven-vertex paths
Abstract
The class of even-hole-free graphs has been extensively studied on its own and on its relation to perfect graphs. In this paper, we study the -boundedness of even-hole-free graphs which itself is an important topic in graph theory. In particular, we prove that every even-hole-free graph without induced 7-vertex paths satisfies , where and denote the chromatic number and clique number of , respectively. This bound is optimal. Our result strictly extends the result of Karthick and Maffary \cite{KM19} on even-hole-free graphs without induced 6-vertex paths, and implies that even-hole-free graphs without induced 7-vertex paths satisfy Reed's Conjecture. Our proof relies on a heavy structural analysis on a maximal substructure called a nice blowup of a five-cycle and can be viewed for graphs in which all holes are of length five (graphs with all holes having the same length gain increasing interest in recent years \cite{COOK202496}). Our result gives a partial answer to a conjecture of Wang and Wu \cite{WW25} on graphs in which all holes are of length 5. One of the key technical ingredients is a technical lemma proved via clique cutset argument combined with the idea of Infinite Descent Method (often used in number theory).
Cite
@article{arxiv.2602.04403,
title = {The optimal chromatic bound for even-hole-free graphs without induced seven-vertex paths},
author = {Shenwei Huang and Yidong Zhou and Yeonsu Chang},
journal= {arXiv preprint arXiv:2602.04403},
year = {2026}
}
Comments
109 pages and 9 figures