paper

Time Optimal Distance--Dispersion on Dynamic Ring

arXiv:2408.12220

Abstract

Dispersion by mobile agents is a well studied problem in the literature on computing by mobile robots. In this problem, robots placed arbitrarily on nodes of a network having nodes are asked to relocate themselves autonomously so that each node contains at most robots. When , then each node of the network contains at most one robot. Recently, in NETYS'23, Kaur et al. introduced a variant of dispersion called \emph{Distance-2-Dispersion}. In this problem, robots have to solve dispersion with an extra condition that no two adjacent nodes contain robots. In this work, we generalize the problem of Dispersion and Distance-2-Dispersion by introducing another variant called \emph{Distance--Dispersion (D--D)}. In this problem, the robots have to disperse on a network in such a way that shortest distance between any two pair of robots is at least and there exist at least one pair of robots for which the shortest distance is exactly . Note that, when we have normal dispersion and when we have D--D. Here, we studied this variant for a dynamic ring (1-interval connected ring) for rooted initial configuration. We have proved the necessity of fully synchronous scheduler to solve this problem and provided an algorithm that solves D--D in rounds under a fully synchronous scheduler. So, the presented algorithm is time optimal too. To the best of our knowledge, this is the first work that considers this specific variant.

Time Optimal Distance-$k$-Dispersion on Dynamic Ring · wovepaper