Abstract
Achieving robust cognitive autonomy in robots navigating complex, unpredictable environments remains a fundamental challenge in robotics. This paper presents Underwater Robot Self-Organizing Autonomy (UROSA), a groundbreaking architecture leveraging distributed Large Language Model AI agents integrated within the Robot Operating System 2 (ROS 2) framework to enable advanced cognitive capabilities in Autonomous Underwater Vehicles. UROSA decentralises cognition into specialised AI agents responsible for multimodal perception, adaptive reasoning, dynamic mission planning, and real-time decision-making. Central innovations include flexible agents dynamically adapting their roles, retrieval-augmented generation utilising vector databases for efficient knowledge management, reinforcement learning-driven behavioural optimisation, and autonomous on-the-fly ROS 2 node generation for runtime functional extensibility. Extensive empirical validation demonstrates UROSA's promising adaptability and reliability through realistic underwater missions in simulation and real-world deployments, showing significant advantages over traditional rule-based architectures in handling unforeseen scenarios, environmental uncertainties, and novel mission objectives. This work not only advances underwater autonomy but also establishes a scalable, safe, and versatile cognitive robotics framework capable of generalising to a diverse array of real-world applications.
| Original language | English |
|---|---|
| Title of host publication | 2026 IEEE/OES Autonomous Underwater Vehicles Symposium (AUV) |
| Publisher | IEEE |
| DOIs | |
| Publication status | Accepted/In press - 1 Mar 2026 |
| Event | 2026 IEEE/OES Symposium on Autonomous Underwater Vehicle Technology - Southampton, United Kingdom Duration: 1 Sept 2026 → 3 Sept 2026 https://www.auv2026-southampton.com/ |
Publication series
| Name | Symposium on Autonomous Underwater Vehicle Technology (AUV) |
|---|---|
| Publisher | IEEE |
| ISSN (Print) | 1522-3167 |
| ISSN (Electronic) | 2377-6536 |
Conference
| Conference | 2026 IEEE/OES Symposium on Autonomous Underwater Vehicle Technology |
|---|---|
| Abbreviated title | AUV 2026 |
| Country/Territory | United Kingdom |
| City | Southampton |
| Period | 1/09/26 → 3/09/26 |
| Internet address |
Keywords
- cs.RO
- cs.AI
- cs.MA
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