Approximations for Fault-Tolerant Total and Partial Positive Influence Domination
June 15, 2025 Β· Declared Dead Β· π Discrete Mathematics & Theoretical Computer Science
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Authors
Ioannis Lamprou, Ioannis Sigalas, Ioannis Vaxevanakis, Vassilis Zissimopoulos
arXiv ID
2506.12828
Category
cs.DS: Data Structures & Algorithms
Citations
0
Venue
Discrete Mathematics & Theoretical Computer Science
Last Checked
5 months ago
Abstract
In $\textit{total domination}$, given a graph $G=(V,E)$, we seek a minimum-size set of nodes $S\subseteq V$, such that every node in $V$ has at least one neighbor in $S$. We define a $\textit{fault-tolerant}$ version of total domination, where we require any node in $V \setminus S$ to have at least $m$ neighbors in $S$. Let $Ξ$ denote the maximum degree in $G$. We prove a first $1 + \ln(Ξ+ m - 1)$ approximation for fault-tolerant total domination. We also consider fault-tolerant variants of the weighted $\textit{partial positive influence dominating set}$ problem, where we seek a minimum-size set of nodes $S\subseteq V$, such that every node in $V$ is either a member of $S$ or the sum of weights of its incident edges leading to nodes in $S$ is at least half of the sum of weights over all its incident edges. We prove the first logarithmic approximations for the simple, total, and connected variants of this problem. To prove the result for the connected case, we extend the general approximation framework for non-submodular functions from integer-valued to fractional-valued functions, which we believe is of independent interest.
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