Affiliation:
1. Division of Navigation and Information Systems, Mokpo National Maritime University, Mokpo 58628, Republic of Korea
Abstract
Discussions of autonomous ships are actively being conducted in the industry and by the International Maritime Organization (IMO). In addition, it is anticipated that a significant number of autonomous ships will be operational at sea soon, as a trial run of autonomous ships is underway. Fully autonomous ships will operate based on pre-programmed algorithms to prevent collisions, eliminating the need for onboard navigators or remote operators onshore. Most collision avoidance algorithms are typically based on an engineering approach that predicts the future movement of an approaching ship by observing its vector. However, it is worth noting that even if fully autonomous ships navigate at sea, the majority of ships encountered are still operated by humans. These ships adhere to the Convention on the International Regulations for Preventing Collisions at Sea (COLREG). Therefore, even fully autonomous ships can effectively and legally avoid approaching ships only when they are steered in compliance with the COLREG. However, it has rarely been addressed which procedures should be followed to determine the legally correct action in various situations where fully autonomous ships encounter traditional manned ships. Therefore, this study is divided into two parts. First, a decision-making tree is presented, as simply as possible, to determine the legally correct collision avoidance action according to the COLREG. Secondly, a quantitative analysis is presented for qualitative expressions such as “narrow channel”, “restricted visibility”, and “best aid to avoid collision”. This review will help fully autonomous ships determine legitimate collision avoidance actions and operate safely in seas where human-operated ships are sailing. However, for autonomous ships, the “Trolley problem” and issues related to decision-making for collision avoidance through communication with other ships are left as future challenges.
Subject
Ocean Engineering,Water Science and Technology,Civil and Structural Engineering
Reference78 articles.
1. Burmeister, H., and Bruhn, W. (2015). Maritime-Port Technology and Development, Taylor & Francis Group.
2. Marine News (2023, April 25). First Commercial Operation of an Autonomous Vessel Begins. Available online: https://www.marinetopia.com/news/articleView.html?idxno=43549.
3. Yonhap News (2023, July 12). A Large Ship without a Crew—Full-Scale Competition in the Autonomous Navigation Market. Available online: https://yonhapnewstv.co.kr/news/MYH20230712006200641.
4. A path planning strategy unified with a COLREGS collision avoidance function based on deep reinforcement learning and artificial potential field;Li;Appl. Ocean Res.,2021
5. Automatic ship collision avoidance using deep reinforcement learning with LSTM in continuous action spaces;Sawada;J. Mar. Sci. Technol.,2021
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