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Research paper

Multiagent Autonomous Source Search Using Submodularity and Branch-and-Bound

School of Automation, Guangdong University of Technology, Guangdong Province Key Laboratory of Intelligent Decision and Cooperative Control Guangzhou 510006, P. R. China
French Argentine International Center for Information and Systems Sciences National Scientific and Technical Research Council, Argentina
School of Engineering University of Newcastle, NSW 2308, Australia

This paper was recommended for publication in its revised form by editorial board member, Hai Lin.

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Abstract

This paper is concerned with near-optimal source search problem using a multiagent system in cluttered indoor environments. The goal of the problem is to maximize the detection probability within the minimum search time. We propose a two-stage strategy to achieve this goal. In the first stage, a greedy approach is used to define a set of grid cells with the aim of maximizing the detection probability. In the second stage, an iterative branch-and-bound procedure is used to design the search paths of all agents so that all grid cells are visited by one agent and the largest search path among all agents is minimized. Simulation results show that the proposed search algorithm has better performance in terms of exploration time compared to other existing methods.

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Unmanned Systems
Pages 19-28

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Cite this article:
Xu X, Marelli D, Meng W, et al. Multiagent Autonomous Source Search Using Submodularity and Branch-and-Bound. Unmanned Systems, 2024, 12(1): 19-28. https://doi.org/10.1142/S230138502450002X

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Received: 06 May 2022
Revised: 21 September 2022
Accepted: 21 September 2022
Published: 09 November 2022
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