English

The Complexity of (List) Edge-Coloring Reconfiguration Problem

Discrete Mathematics 2016-09-02 v1 Computational Complexity

Abstract

Let GG be a graph such that each edge has its list of available colors, and assume that each list is a subset of the common set consisting of kk colors. Suppose that we are given two list edge-colorings f0f_0 and frf_r of GG, and asked whether there exists a sequence of list edge-colorings of GG between f0f_0 and frf_r such that each list edge-coloring can be obtained from the previous one by changing a color assignment of exactly one edge. This problem is known to be PSPACE-complete for every integer k6k \ge 6 and planar graphs of maximum degree three, but any complexity hardness was unknown for the non-list variant. In this paper, we first improve the known result by proving that, for every integer k4k \ge 4, the problem remains PSPACE-complete even if an input graph is planar, bounded bandwidth, and of maximum degree three. We then give the first complexity hardness result for the non-list variant: for every integer k5k \ge 5, we prove that the non-list variant is PSPACE-complete even if an input graph is planar, of bandwidth linear in kk, and of maximum degree kk.

Keywords

Cite

@article{arxiv.1609.00109,
  title  = {The Complexity of (List) Edge-Coloring Reconfiguration Problem},
  author = {Hiroki Osawa and Akira Suzuki and Takehiro Ito and Xiao Zhou},
  journal= {arXiv preprint arXiv:1609.00109},
  year   = {2016}
}
R2 v1 2026-06-22T15:37:19.871Z