A Survey on Active Simultaneous Localization and Mapping: State of the Art and New Frontiers

计算机科学 同时定位和映射 机器人 人工智能 国家(计算机科学) 计算机视觉 移动机器人 算法
作者
Julio A. Placed,Jared Strader,Henry Carrillo,Nikolay Atanasov,Vadim Indelman,Luca Carlone,José A. Castellanos
出处
期刊:IEEE Transactions on Robotics [Institute of Electrical and Electronics Engineers]
卷期号:39 (3): 1686-1705 被引量:324
标识
DOI:10.1109/tro.2023.3248510
摘要

Active simultaneous localization and mapping (SLAM) is the problem of planning and controlling the motion of a robot to build the most accurate and complete model of the surrounding environment. Since the first foundational work in active perception appeared, more than three decades ago, this field has received increasing attention across different scientific communities. This has brought about many different approaches and formulations, and makes a review of the current trends necessary and extremely valuable for both new and experienced researchers. In this article, we survey the state of the art in active SLAM and take an in-depth look at the open challenges that still require attention to meet the needs of modern applications. After providing a historical perspective, we present a unified problem formulation and review the well-established modular solution scheme, which decouples the problem into three stages that identify, select, and execute potential navigation actions. We then analyze alternative approaches, including belief-space planning and deep reinforcement learning techniques, and review related work on multirobot coordination. This article concludes with a discussion of new research directions, addressing reproducible research, active spatial perception, and practical applications, among other topics.
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