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An algorithmic framework for colouring locally sparse graphs

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arxiv 2004.07151 v1 pith:J3XEXLZN submitted 2020-04-15 cs.DS math.CO

classification cs.DSmath.CO
keywords deltacolouringvarepsilonalgorithmicgraphsframeworkachlioptasalgorithm
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abstract

We develop an algorithmic framework for graph colouring that reduces the problem to verifying a local probabilistic property of the independent sets. With this we give, for any fixed $k\ge 3$ and $\varepsilon>0$, a randomised polynomial-time algorithm for colouring graphs of maximum degree $\Delta$ in which each vertex is contained in at most $t$ copies of a cycle of length $k$, where $1/2\le t\le \Delta^\frac{2\varepsilon}{1+2\varepsilon}/(\log\Delta)^2$, with $\lfloor(1+\varepsilon)\Delta/\log(\Delta/\sqrt t)\rfloor$ colours. This generalises and improves upon several notable results including those of Kim (1995) and Alon, Krivelevich and Sudakov (1999), and more recent ones of Molloy (2019) and Achlioptas, Iliopoulos and Sinclair (2019). This bound on the chromatic number is tight up to an asymptotic factor $2$ and it coincides with a famous algorithmic barrier to colouring random graphs.

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  1. The hard-core model in graph theory

    math.CO 2025-01 unverdicted novelty 1.0 of 10

    A survey of the hard-core model and the local occupancy method, showing how local analysis of independent sets yields global bounds in graph theory.

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