English

Local Algorithms for Sparse Spanning Graphs

Data Structures and Algorithms 2021-04-28 v3

Abstract

Constructing a spanning tree of a graph is one of the most basic tasks in graph theory. We consider a relaxed version of this problem in the setting of local algorithms. The relaxation is that the constructed subgraph is a sparse spanning subgraph containing at most (1+ϵ)n(1+\epsilon)n edges (where nn is the number of vertices and ϵ\epsilon is a given approximation/sparsity parameter). In the local setting, the goal is to quickly determine whether a given edge ee belongs to such a subgraph, without constructing the whole subgraph, but rather by inspecting (querying) the local neighborhood of ee. The challenge is to maintain consistency. That is, to provide answers concerning different edges according to the same spanning subgraph. We first show that for general bounded-degree graphs, the query complexity of any such algorithm must be Ω(n)\Omega(\sqrt{n}). This lower bound holds for constant-degree graphs that have high expansion. Next we design an algorithm for (bounded-degree) graphs with high expansion, obtaining a result that roughly matches the lower bound. We then turn to study graphs that exclude a fixed minor (and are hence non-expanding). We design an algorithm for such graphs, which may have an unbounded maximum degree. The query complexity of this algorithm is poly(1/ϵ,h)poly(1/\epsilon, h) (independent of nn and the maximum degree), where hh is the number of vertices in the excluded minor. Though our two algorithms are designed for very different types of graphs (and have very different complexities), on a high-level there are several similarities, and we highlight both the similarities and the differences.

Keywords

Cite

@article{arxiv.1402.3609,
  title  = {Local Algorithms for Sparse Spanning Graphs},
  author = {Reut Levi and Dana Ron and Ronitt Rubinfeld},
  journal= {arXiv preprint arXiv:1402.3609},
  year   = {2021}
}

Comments

Upper bounds for expanding graphs and minor free graphs

R2 v1 2026-06-22T03:08:44.539Z