Connected greedy coloring of H-free graphs

被引:3
作者
Mota, Esdras [1 ]
Rocha, Leonardo [2 ]
Silva, Ana [3 ]
机构
[1] Inst Fed Educ Ciencia & Tecnol Ceara UFC, Quixada, CE, Brazil
[2] Univ Estadual Ceara UECE, Fortaleza, Ceara, Brazil
[3] Univ Fed Ceara UFC, Dept Matemat, Fortaleza, Ceara, Brazil
关键词
Vertex coloring; Greedy coloring; Connected greedy coloring; H-free graphs; Computational complexity; COMPLEXITY; HARD;
D O I
10.1016/j.dam.2020.04.024
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
A connected ordering (v(1), v(2) ...., v(n)) of V(G) is an ordering of the vertices such that vi has at least one neighbor in {v(1), ..., v(i-1)} for every i is an element of {2, ..., n}. A connected greedy coloring (CGC for short) is a coloring obtained by applying the greedy algorithm to a connected ordering. This has been first introduced in 1989 by Hertz and de Werra, but still very little is known about this problem. An interesting aspect is that, contrary to the traditional greedy coloring, it is not always true that a graph has a connected ordering that produces an optimal coloring; this motivates the definition of the connected chromatic number of G, which is the smallest value chi(c)(G) such that there exists a CGC of G with chi(c)(G) colors. An even more interesting fact is that chi(c)(G) <= chi(G)+1 for every graph G (Benevides et al. 2014). In this paper, in the light of the dichotomy for the coloring problem restricted to H-free graphs given by Kral' et al. in 2001, we are interested in investigating the problems of, given an H-free graph G: (1). deciding whether chi(c)(G) = chi(G); and (2). given also a positive integer k, deciding whether chi(c)(G) <= k. We denote by P-t the path on t vertices, and by P-t +K-1 the union of P-t and a single vertex. We have proved that Problem (2) has the same dichotomy as the coloring problem (namely, it is polynomial when H is an induced subgraph of P-4 or of P-3 +K-1, and it is NP-complete otherwise). As for Problem (1), we have proved that chi(c)(G) = chi(G) always hold when H is an induced subgraph of P-5 or of P-4 +K-1, and that it is NP-complete to decide whether chi(c)(G) = chi(G) when H is not a linear forest or contains an induced P-9. We mention that some of the results involve fixed k and fixed chi(G). (C) 2020 Elsevier B.V. All rights reserved.
引用
收藏
页码:572 / 584
页数:13
相关论文
共 50 条
  • [1] On Switching to H-Free Graphs
    Jelinkova, Eva
    Kratochvil, Jan
    JOURNAL OF GRAPH THEORY, 2014, 75 (04) : 387 - 405
  • [2] Choosability on H-free graphs
    Golovach, Petr A.
    Heggernes, Pinar
    van't Hof, Pim
    Paulusma, Daniel
    INFORMATION PROCESSING LETTERS, 2013, 113 (04) : 107 - 110
  • [3] 4-Coloring H-Free Graphs When H Is Small
    Golovach, Petr A.
    Paulusma, Daniel
    Song, Jian
    SOFSEM 2012: THEORY AND PRACTICE OF COMPUTER SCIENCE, 2012, 7147 : 289 - 300
  • [4] 4-coloring H-free graphs when H is small
    Golovach, Petr A.
    Paulusma, Daniel
    Song, Jian
    DISCRETE APPLIED MATHEMATICS, 2013, 161 (1-2) : 140 - 150
  • [5] Complexity of the (Connected) Cluster Vertex Deletion Problem on H-free Graphs
    Le, Hoang-Oanh
    Le, Van Bang
    THEORY OF COMPUTING SYSTEMS, 2024, 68 (02) : 250 - 270
  • [6] Complexity of the (Connected) Cluster Vertex Deletion Problem on H-free Graphs
    Hoang-Oanh Le
    Van Bang Le
    Theory of Computing Systems, 2024, 68 : 250 - 270
  • [7] Finding Matching Cuts in H-Free Graphs
    Lucke, Felicia
    Paulusma, Daniel
    Ries, Bernard
    ALGORITHMICA, 2023, 85 (10) : 3290 - 3322
  • [8] Contraction and deletion blockers for perfect graphs and H-free graphs
    Diner, Oznur Yasar
    Paulusma, Daniel
    Picouleau, Christophe
    Ries, Bernard
    THEORETICAL COMPUTER SCIENCE, 2018, 746 : 49 - 72
  • [9] List-k-Coloring H-Free Graphs for All k &gt; 4
    Chudnovsky, Maria
    Hajebi, Sepehr
    Spirkl, Sophie
    COMBINATORICA, 2024, 44 (05) : 1063 - 1068
  • [10] The connected greedy coloring game
    Lima, Carlos V. G. C.
    Marcilon, Thiago
    Martins, Nicolas
    Sampaio, Rudini
    THEORETICAL COMPUTER SCIENCE, 2023, 940 : 1 - 13