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Machine Learning Techniques for Undertaking Roundabouts in Autonomous Driving

This article presents a machine learning-based technique to build a predictive model and generate rules of action to allow autonomous vehicles to perform roundabout maneuvers. The approach consists of building a predictive model of vehicle speeds and steering angles based on collected data related t...

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Autores principales: García Cuenca, Laura, Sanchez-Soriano, Javier, Puertas, Enrique, Fernandez Andrés, Javier, Aliane, Nourdine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6566321/
https://www.ncbi.nlm.nih.gov/pubmed/31137714
http://dx.doi.org/10.3390/s19102386
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author García Cuenca, Laura
Sanchez-Soriano, Javier
Puertas, Enrique
Fernandez Andrés, Javier
Aliane, Nourdine
author_facet García Cuenca, Laura
Sanchez-Soriano, Javier
Puertas, Enrique
Fernandez Andrés, Javier
Aliane, Nourdine
author_sort García Cuenca, Laura
collection PubMed
description This article presents a machine learning-based technique to build a predictive model and generate rules of action to allow autonomous vehicles to perform roundabout maneuvers. The approach consists of building a predictive model of vehicle speeds and steering angles based on collected data related to driver–vehicle interactions and other aggregated data intrinsic to the traffic environment, such as roundabout geometry and the number of lanes obtained from Open-Street-Maps and offline video processing. The study systematically generates rules of action regarding the vehicle speed and steering angle required for autonomous vehicles to achieve complete roundabout maneuvers. Supervised learning algorithms like the support vector machine, linear regression, and deep learning are used to form the predictive models.
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spelling pubmed-65663212019-06-17 Machine Learning Techniques for Undertaking Roundabouts in Autonomous Driving García Cuenca, Laura Sanchez-Soriano, Javier Puertas, Enrique Fernandez Andrés, Javier Aliane, Nourdine Sensors (Basel) Article This article presents a machine learning-based technique to build a predictive model and generate rules of action to allow autonomous vehicles to perform roundabout maneuvers. The approach consists of building a predictive model of vehicle speeds and steering angles based on collected data related to driver–vehicle interactions and other aggregated data intrinsic to the traffic environment, such as roundabout geometry and the number of lanes obtained from Open-Street-Maps and offline video processing. The study systematically generates rules of action regarding the vehicle speed and steering angle required for autonomous vehicles to achieve complete roundabout maneuvers. Supervised learning algorithms like the support vector machine, linear regression, and deep learning are used to form the predictive models. MDPI 2019-05-24 /pmc/articles/PMC6566321/ /pubmed/31137714 http://dx.doi.org/10.3390/s19102386 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
García Cuenca, Laura
Sanchez-Soriano, Javier
Puertas, Enrique
Fernandez Andrés, Javier
Aliane, Nourdine
Machine Learning Techniques for Undertaking Roundabouts in Autonomous Driving
title Machine Learning Techniques for Undertaking Roundabouts in Autonomous Driving
title_full Machine Learning Techniques for Undertaking Roundabouts in Autonomous Driving
title_fullStr Machine Learning Techniques for Undertaking Roundabouts in Autonomous Driving
title_full_unstemmed Machine Learning Techniques for Undertaking Roundabouts in Autonomous Driving
title_short Machine Learning Techniques for Undertaking Roundabouts in Autonomous Driving
title_sort machine learning techniques for undertaking roundabouts in autonomous driving
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6566321/
https://www.ncbi.nlm.nih.gov/pubmed/31137714
http://dx.doi.org/10.3390/s19102386
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