Tight Complexity Bounds for Counting Generalized Dominating Sets in Bounded-Treewidth Graphs
Jacob Focke, Dániel Marx, Fionn Mc Inerney, Daniel Neuen, Govind S. Sankar, Philipp Schepper, Philip Wellnitz
摘要
We investigate how efficiently a well-studied family of domination-type problems can be solved on bounded-treewidth graphs. For sets σ, ρ of non-negative integers, a (σ, ρ)-set of a graph G is a set S of vertices such that | N (u) ∩ S| ∈ σ for every u ∈ S, and | N (v) ∩ S| ∈ ρ for every v ∉ S. The problem of finding a (σ, ρ)-set (of a certain size) unifies standard problems such as INDEPENDENT SET, DOMINATING SET, INDEPENDENT DOMINATING SET, and many others. For all pairs of finite or cofinite sets (σ, ρ), we determine (under standard complexity assumptions) the best possible value cσ,ρ such that there is an algorithm that counts (σ, ρ)-sets in time ctwσ,ρ · nO(1) (if a tree decomposition of width tw is given in the input). Let stop denote the largest element of σ if σ is finite, or the largest missing integer +1 if σ is cofinite; rtop is defined analogously for ρ. Surprisingly, cσ,ρ is often significantly smaller than the natural bound stop + rtop + 2 achieved by existing algorithms [van Rooij, 2020]. Toward defining cσ,ρ, we say that (σ,ρ) is m-structured if there is a pair (α,β) such that every integer in σ equals α mod m, and every integer in ρ equals β mod m. Then, setting • cσ,ρ = stop + rtop +2 if (σ, ρ) is not m-structured for any m ≥ 2 • cσ,ρ = maxstop,rtop + 2 if (σ,ρ) is 2-structured, but not m-structured for any m ≥ 3, and stop = rtop is even, and • cσ,ρ = maxstop, rtop + 1, otherwise we provide algorithms counting (σ, ρ)-sets in time ctwσ,ρ · nO(1). For example, for the EXACT INDEPENDENT DOMINATING SET problem (also known as PERFECT CODE) corresponding to σ = 0 and ρ = 1, this improves the 3tw · nO(1) algorithm of van Rooij to 2tw· nO(1). Despite the unusually delicate definition of cσ,ρ, we show that our algorithms are most likely optimal, i.e., for any pair (σ, ρ) of finite or cofinite sets where the problem is non-trivial, and any ε > 0, a (cσ,ρ — ε)tw · nO(1)- algorithm counting the number of (σ, ρ)-sets would violate the COUNTING STRONG EXPONENTIAL-TIME HYPOTHESIS (#SETH). For finite sets σ and ρ, our lower bounds also extend to the decision version, showing that our algorithms are optimal in this setting as well. In contrast, for many cofinite sets, we show that further significant improvements for the decision and optimization versions are possible using the technique of representative sets. * The full version of this work can be accessed at https://arxiv.org/abs/2211.04278. Research supported by the European Research Council (ERC) consolidator grant No. 725978 SYSTEMATICGRAPH.
问问这篇 Paper
问问你的智能体。
Lune 读过与它相关的顶会 Paper,每个回答都会注明依据哪几篇。
引用它的顶会 Paper4
- The Primal Pathwidth SETHMichael LampisSODA 2025 · 被引用 1 次
- k-SUM Hardness Implies Treewidth-SETHMichael LampisSODA 2026
- Fine-Grained Bounds for Courcelle's TheoremDaniel Lokshtanov, Fahad Panolan, Saket Saurabh, Jie Xue 等STOC 2026
- Circuits and Backdoors: Five Shades of the SETHMichael LampisSODA 2026
相关 Paper
- Counting list homomorphisms from graphs of bounded treewidth: tight complexity boundsJacob Focke, Dániel Marx, Pawel RzazewskiSODA 2022 · 被引用 1 次
- The Growth Rate Over Trees Of Any Family Of Sets Defined By A Monadic Second Order Formula Is Semi-computableMatthieu RosenfeldSODA 2021 · 被引用 5 次
- A complexity dichotomy for hitting connected minors on bounded treewidth graphs: the chair and the banner draw the boundaryJulien Baste, Ignasi Sau, Dimitrios M. ThilikosSODA 2020 · 被引用 21 次
- The Complexity of Pattern Counting in Directed Graphs, Parameterised by the OutdegreeMarco Bressan, Matthias Lanzinger, Marc RothSTOC 2023 · 被引用 9 次
- Treewidth-Aware Complexity in ASP: Not all Positive Cycles are Equally HardJorge Fandinno, Markus HecherAAAI 2021 · 被引用 10 次
