Abstract:
Autonomous ships are expected to improve the level of safety and efficiency in future maritime navigation. Such vessels need perception for two purposes: to perform auton...Show MoreMetadata
Abstract:
Autonomous ships are expected to improve the level of safety and efficiency in future maritime navigation. Such vessels need perception for two purposes: to perform autonomous situational awareness and to monitor the integrity of the sensor system itself. In order to meet these needs, the perception system must fuse data from novel and traditional perception sensors using Artificial Intelligence (AI) techniques. This article overviews the recognized operational requirements that are imposed on regular and autonomous seafaring vessels, and then proceeds to consider suitable sensors and relevant AI techniques for an operational sensor system. The integration of four sensors families is considered: sensors for precise absolute positioning (Global Navigation Satellite System (GNSS) receivers and Inertial Measurement Unit (IMU)), visual sensors (monocular and stereo cameras), audio sensors (microphones), and sensors for remote-sensing (RADAR and LiDAR). Additionally, sources of auxiliary data, such as Automatic Identification System (AIS) and external data archives are discussed. The perception tasks are related to well-defined problems, such as situational abnormality detection, vessel classification, and localization, that are solvable using AI techniques. Machine learning methods, such as deep learning and Gaussian processes, are identified to be especially relevant for these problems. The different sensors and AI techniques are characterized keeping in view the operational requirements, and some example state-of-the-art options are compared based on accuracy, complexity, required resources, compatibility and adaptability to maritime environment, and especially towards practical realization of autonomous systems.
Published in: IEEE Transactions on Intelligent Transportation Systems ( Volume: 23, Issue: 1, January 2022)
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- IEEE Keywords
- Index Terms
- Situational Awareness ,
- Artificial Intelligence Techniques ,
- Autonomous Surface Vehicles ,
- Machine Learning ,
- Deep Learning ,
- Artificial Intelligence ,
- Autonomic System ,
- Sensory Systems ,
- Remote Sensing ,
- Performance Requirements ,
- Light Detection And Ranging ,
- Gaussian Process ,
- Monocular ,
- Inertial Measurement Unit ,
- Perceptual System ,
- Global Navigation Satellite System ,
- Vision Sensors ,
- Stereo Camera ,
- Automatic Identification System ,
- Deep Learning Processing ,
- International Maritime Organization ,
- Monochrome Camera ,
- Object Classification ,
- Autonomous Navigation ,
- Microphone Array ,
- Sound Analysis ,
- Artificial Intelligence Software ,
- Head-related Transfer Functions ,
- Deep Neural Network ,
- Range Resolution
- Author Keywords
- Positioning ,
- camera ,
- microphone ,
- LiDAR ,
- RADAR ,
- machine learning ,
- GNSS ,
- sensor fusion ,
- maritime
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- Situational Awareness ,
- Artificial Intelligence Techniques ,
- Autonomous Surface Vehicles ,
- Machine Learning ,
- Deep Learning ,
- Artificial Intelligence ,
- Autonomic System ,
- Sensory Systems ,
- Remote Sensing ,
- Performance Requirements ,
- Light Detection And Ranging ,
- Gaussian Process ,
- Monocular ,
- Inertial Measurement Unit ,
- Perceptual System ,
- Global Navigation Satellite System ,
- Vision Sensors ,
- Stereo Camera ,
- Automatic Identification System ,
- Deep Learning Processing ,
- International Maritime Organization ,
- Monochrome Camera ,
- Object Classification ,
- Autonomous Navigation ,
- Microphone Array ,
- Sound Analysis ,
- Artificial Intelligence Software ,
- Head-related Transfer Functions ,
- Deep Neural Network ,
- Range Resolution
- Author Keywords
- Positioning ,
- camera ,
- microphone ,
- LiDAR ,
- RADAR ,
- machine learning ,
- GNSS ,
- sensor fusion ,
- maritime