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Reinforcement-learning robotic sailboats: simulator and preliminary results

Authors :
Vasconcellos, Eduardo Charles
Sampaio, Ronald M
Araújo, André P D
Clua, Esteban Walter Gonzales
Preux, Philippe
Guerra, Raphael
Gonçalves, Luiz M G
Martí, Luis
Lira, Hernan
Sanchez-Pi, Nayat
Source :
NeurIPS 2023 Workshop on Robot Learning Workshop: Pretraining, Fine-Tuning, and Generalization with Large Scale Models, Dec 2023, New Orelans, United States
Publication Year :
2024

Abstract

This work focuses on the main challenges and problems in developing a virtual oceanic environment reproducing real experiments using Unmanned Surface Vehicles (USV) digital twins. We introduce the key features for building virtual worlds, considering using Reinforcement Learning (RL) agents for autonomous navigation and control. With this in mind, the main problems concern the definition of the simulation equations (physics and mathematics), their effective implementation, and how to include strategies for simulated control and perception (sensors) to be used with RL. We present the modeling, implementation steps, and challenges required to create a functional digital twin based on a real robotic sailing vessel. The application is immediate for developing navigation algorithms based on RL to be applied on real boats.

Details

Database :
arXiv
Journal :
NeurIPS 2023 Workshop on Robot Learning Workshop: Pretraining, Fine-Tuning, and Generalization with Large Scale Models, Dec 2023, New Orelans, United States
Publication Type :
Report
Accession number :
edsarx.2402.03337
Document Type :
Working Paper