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多智能体深度强化学习在多机器人应用中的研究综述

Multi-Agent Deep Reinforcement Learning for Multi-Robot Applications: A Survey.

机构信息

School of Computing, University of North Florida, Jacksonville, FL 32224, USA.

出版信息

Sensors (Basel). 2023 Mar 30;23(7):3625. doi: 10.3390/s23073625.

Abstract

Deep reinforcement learning has produced many success stories in recent years. Some example fields in which these successes have taken place include mathematics, games, health care, and robotics. In this paper, we are especially interested in multi-agent deep reinforcement learning, where multiple agents present in the environment not only learn from their own experiences but also from each other and its applications in multi-robot systems. In many real-world scenarios, one robot might not be enough to complete the given task on its own, and, therefore, we might need to deploy multiple robots who work together towards a common global objective of finishing the task. Although multi-agent deep reinforcement learning and its applications in multi-robot systems are of tremendous significance from theoretical and applied standpoints, the latest survey in this domain dates to 2004 albeit for traditional learning applications as deep reinforcement learning was not invented. We classify the reviewed papers in our survey primarily based on their multi-robot applications. Our survey also discusses a few challenges that the current research in this domain faces and provides a potential list of future applications involving multi-robot systems that can benefit from advances in multi-agent deep reinforcement learning.

摘要

近年来,深度强化学习取得了许多成功案例。在数学、游戏、医疗保健和机器人等领域都有这些成功案例。在本文中,我们特别关注多智能体深度强化学习,其中环境中存在的多个智能体不仅可以从自身经验中学习,还可以从彼此和多机器人系统的应用中学习。在许多现实场景中,单个机器人可能不足以独立完成给定任务,因此我们可能需要部署多个机器人,它们共同朝着完成任务的共同全局目标努力。尽管从理论和应用的角度来看,多智能体深度强化学习及其在多机器人系统中的应用具有重要意义,但该领域的最新调查可追溯到 2004 年,尽管当时深度强化学习尚未发明,只是针对传统学习应用。我们主要根据多机器人应用对综述中的论文进行分类。我们的调查还讨论了当前该领域研究面临的一些挑战,并提供了一个潜在的未来涉及多机器人系统的应用列表,这些应用可以受益于多智能体深度强化学习的进展。

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