Complexes of graph homomorphisms

dc.creatorBabson, Eric
dc.creatorKozlov, Dmitry N.
dc.date2003-10-05
dc.date2005-03-26
dc.date.accessioned2026-07-07T06:27:07Z
dc.date.available2026-07-07T06:27:07Z
dc.description$Hom(G,H)$ is a polyhedral complex defined for any two undirected graphs $G$ and $H$. This construction was introduced by Lovász to give lower bounds for chromatic numbers of graphs. In this paper we initiate the study of the topological properties of this class of complexes. We prove that $Hom(K_m,K_n)$ is homotopy equivalent to a wedge of $(n-m)$-dimensional spheres, and provide an enumeration formula for the number of the spheres. As a corollary we prove that if for some graph $G$, and integers $m\geq 2$ and $k\geq -1$, we have $\varpi_1^k(\thom(K_m,G))\neq 0$, then $χ(G)\geq k+m$; here $Z_2$-action is induced by the swapping of two vertices in $K_m$, and $\varpi_1$ is the first Stiefel-Whitney class corresponding to this action. Furthermore, we prove that a fold in the first argument of $Hom(G,H)$ induces a homotopy equivalence. It then follows that $Hom(F,K_n)$ is homotopy equivalent to a direct product of $(n-2)$-dimensional spheres, while $Hom(\bar{F},K_n)$ is homotopy equivalent to a wedge of spheres, where $F$ is an arbitrary forest and $\bar{F}$ is its complement.
dc.descriptionThis is the first part of the series of papers containing the complete proofs of the results announced in "Topological obstructions to graph colorings". This is the final version which is to appear in Israel J. Math., it has an updated list of references and new remarks on latest developments
dc.identifierhttps://arxiv.org/abs/math/0310056
dc.identifierhttp://arxiv.org/abs/math/0310056
dc.identifierIsrael Journal of Mathematics 152 (2006), pp. 285-312
dc.identifier.urihttp://salesiana.dossiersoluciones.com/handle/123456789/97323
dc.subjectCombinatorics
dc.subjectAlgebraic Topology
dc.subject05C15; 55P91, 55S35, 57M15
dc.titleComplexes of graph homomorphisms
dc.typetext

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