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Collective Decision Making in Communication-Constrained Environments

Thomas G. Kelly, Mohammad Divband Soorati, Klaus‐Peter Zauner, Sarvapali D. Ramchurn, Danesh Tarapore

Year
2022
Citations
4

Abstract

One of the main tasks for autonomous robot swarms is to collectively decide on the best available option. Achieving that requires a high quality communication between the agents that may not always be available in a real world environment. In this paper we introduce the communication-constrained collective decision-making problem where some areas of the environment limit the agents' ability to communicate, either by reducing success rate or blocking the communication channels. We propose a decentralised algorithm for mapping environmental features for robot swarms as well as improving collective decision making in communication-limited environments without prior knowledge of the communication landscape. Our results show that making a collective aware of the communication environment can improve the speed of convergence in the presence of communication limitations, at least 3 times faster, without sacrificing accuracy.

Keywords

Computer scienceRobotLimit (mathematics)Distributed computingConvergence (economics)Quality (philosophy)Blocking (statistics)Human–computer interactionArtificial intelligenceComputer network

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