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Asymptotically Optimal Vertex Ranking of Planar Graphs

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arxiv 2007.06455 v3 pith:I3CHMK7I submitted 2020-07-13 math.CO cs.DS

classification math.COcs.DS
keywords graphsvarphicoloursrankingplanarvertexboundsgraph
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abstract

A (vertex) $\ell$-ranking is a colouring $\varphi:V(G)\to\mathbb{N}$ of the vertices of a graph $G$ with integer colours so that for any path $u_0,\ldots,u_p$ of length at most $\ell$, $\varphi(u_0)\neq\varphi(u_p)$ or $\varphi(u_0)<\max\{\varphi(u_0),\ldots,\varphi(u_p)\}$. We show that, for any fixed integer $\ell\ge 2$, every $n$-vertex planar graph has an $\ell$-ranking using $O(\log n/\log\log\log n)$ colours and this is tight even when $\ell=2$; for infinitely many values of $n$, there are $n$-vertex planar graphs, for which any 2-ranking requires $\Omega(\log n/\log\log\log n)$ colours. This result also extends to bounded genus graphs. In developing this proof we obtain optimal bounds on the number of colours needed for $\ell$-ranking graphs of treewidth $t$ and graphs of simple treewidth $t$. These upper bounds are constructive and give $O(n)$-time algorithms. Additional results that come from our techniques include new sublogarithmic upper bounds on the number of colours needed for $\ell$-rankings of apex minor-free graphs and $k$-planar graphs.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 4 citations worldwide. Full citation record

  1. The r-Dynamic Chromatic Number is Bounded in the Strong 2-Coloring Number

    math.CO 2025-01 conditional novelty 7.0 of 10

    For every graph G, the r-dynamic chromatic number satisfies chi_r(G) <= (scol2(G)-1)r+1, so every bounded-expansion class has chi_r(G) in O(r).

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