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Multi-Horizon Virtual Sensor for Controllable Suspensions: A Benchmark of SOTA Deep Forecasting Models

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Résumé

In the pursuit of achieving autonomous driving, ensuring comfortable and efficient handling of the vehicle is of paramount importance. One way to meet these requirements is by utilizing controllable suspensions as an active system. How-ever, designing an effective control strategy requires knowledge of specific dynamical states, such as suspension stroke speed and displacement. The present study proposes a multi-horizon Virtual Sensor (VS) capable of estimating these states in order to address this issue. The VS is intended to replace or enhance limited direct measurement, and it is designed to cope with predictive control systems where future finite-horizon states are necessary. Importantly, the suggested approach is model-free and based on state-of-the-art deep forecasting models. The benchmark of the chosen models was conducted based on real experimental tests and evaluated using multiple metrics. Our study improves previous work in several aspects, including the use of a minimal instrumentation setup, accurate tracking performance over multiple horizons, the ability to explain the predictions, and the provision of confidence intervals for the estimated states.

langue originaleAnglais
titre2023 IEEE 26th International Conference on Intelligent Transportation Systems, ITSC 2023
EditeurInstitute of Electrical and Electronics Engineers Inc.
Pages2252-2259
Nombre de pages8
ISBN (Electronique)9798350399462
Les DOIs
étatPublié - 1 janv. 2023
Modification externeOui
Evénement26th IEEE International Conference on Intelligent Transportation Systems, ITSC 2023 - Bilbao, Espagne
Durée: 24 sept. 202328 sept. 2023

Série de publications

NomIEEE Conference on Intelligent Transportation Systems, Proceedings, ITSC
ISSN (imprimé)2153-0009
ISSN (Electronique)2153-0017

Une conférence

Une conférence26th IEEE International Conference on Intelligent Transportation Systems, ITSC 2023
Pays/TerritoireEspagne
La villeBilbao
période24/09/2328/09/23

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