5,617 research outputs found

    Group Colorability and Hamiltonian Properties of Graphs

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    The research of my dissertation was motivated by the conjecture of Thomassen that every 4-connected line graph is hamiltonian and by the conjecture of Matthews and Sumner that every 4-connected claw-free graph is hamiltonian. Towards the hamiltonian line graph problem, we proved that every 3-edge-connected, essentially 4-edge-connected graph G has a spanning eulerian subgraph, if for every pair of adjacent vertices u and v, dG(u) + dG(v) ≥ 9. A straight forward corollary is that every 4-connected, essentially 6-connected line graph with minimum degree at least 7 is hamiltonian.;We also investigate graphs G such that the line graph L(G) is hamiltonian connected when L( G) is 4-connected. Ryjacek and Vrana recently further conjectured that every 4-connected line graph is hamiltonian-connected. In 2001, Kriesell proved that every 4-connected line graph of a claw free graph is hamiltonian connected. Recently, Lai et al showed that every 4-connected line graph of a quasi claw free graph is hamiltonian connected, and that every 4-connected line graph of an almost claw free graph is hamiltonian connected. In 2009, Broersma and Vumer discovered the P3-dominating (P3D) graphs as a superfamily that properly contains all quasi claw free graphs, and in particular, all claw-free graphs. Here we prove that every 4-connected line graph of a P3D graph is hamiltonian connected, which extends several former results in this area.;R. Gould [15] asked what natural graph properties of G and H are sufficient to imply that the product of G and H is hamiltonian. We first investigate the sufficient and necessary conditions for G x H being hamiltonian or traceable when G is a hamiltonian graph and H is a tree. Then we further investigate sufficient and necessary conditions for G x H being hamiltonian connected, or edge-pancyclic, or pan-connected.;The problem of group colorings of graphs is also investigated in this dissertation. Group coloring was first introduced by Jeager et al. [21]. They introduced a concept of group connectivity as a generalization of nowhere-zero flows. They also introduced group coloring as a dual concept to group connectivity. Prior research on group chromatic number was restricted to simple graphs, and considered only Abelian groups in the definition of chi g(G). The behavior of group coloring for multigraphs is different to that of simple graphs. Thus we extend the definition of group coloring by considering general groups (both Abelian groups and non-Abelian groups), and investigate the properties of chig for multigraphs by proving an analogue to Brooks\u27 Theorem

    Coloring curves that cross a fixed curve

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    We prove that for every integer t1t\geq 1, the class of intersection graphs of curves in the plane each of which crosses a fixed curve in at least one and at most tt points is χ\chi-bounded. This is essentially the strongest χ\chi-boundedness result one can get for this kind of graph classes. As a corollary, we prove that for any fixed integers k2k\geq 2 and t1t\geq 1, every kk-quasi-planar topological graph on nn vertices with any two edges crossing at most tt times has O(nlogn)O(n\log n) edges.Comment: Small corrections, improved presentatio

    The Incidence Chromatic Number of Toroidal Grids

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    An incidence in a graph GG is a pair (v,e)(v,e) with vV(G)v \in V(G) and eE(G)e \in E(G), such that vv and ee are incident. Two incidences (v,e)(v,e) and (w,f)(w,f) are adjacent if v=wv=w, or e=fe=f, or the edge vwvw equals ee or ff. The incidence chromatic number of GG is the smallest kk for which there exists a mapping from the set of incidences of GG to a set of kk colors that assigns distinct colors to adjacent incidences. In this paper, we prove that the incidence chromatic number of the toroidal grid Tm,n=CmCnT_{m,n}=C_m\Box C_n equals 5 when m,n0(mod5)m,n \equiv 0 \pmod 5 and 6 otherwise.Comment: 16 page

    Online and quasi-online colorings of wedges and intervals

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    We consider proper online colorings of hypergraphs defined by geometric regions. We prove that there is an online coloring algorithm that colors NN intervals of the real line using Θ(logN/k)\Theta(\log N/k) colors such that for every point pp, contained in at least kk intervals, not all the intervals containing pp have the same color. We also prove the corresponding result about online coloring a family of wedges (quadrants) in the plane that are the translates of a given fixed wedge. These results contrast the results of the first and third author showing that in the quasi-online setting 12 colors are enough to color wedges (independent of NN and kk). We also consider quasi-online coloring of intervals. In all cases we present efficient coloring algorithms
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