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Control of Cellular Automata by Moving Agents with Reinforcement Learning

Franco Bagnoli, Bassem Sellami, Amira Mouakher, Samira El Yacoubi

arXiv:2604.10066Published April 11, 20260 citations
  • nlin.CG
  • eess.SY
  • reinforcement learning

Abstract

In this exploratory paper we introduce the problem of cognitive agents that learn how to modify their environment according to local sensing to reach a global goal. We concentrate on discrete dynamics (cellular automata) on a two-dimensional system. We show that agents may learn how to approximate their goal when the environment is passive, while this task becomes impossible if the environment follows an active dynamics.

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