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Deep Reinforcement Learning-Based MPC for Lateral Maneuver of Autonomous Vehicles

  • Mohammed VI Polytechnic University
  • Université du Québec en Abitibi-Témiscamingue
  • Mohammed V University in Rabat

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Résumé

This paper presents an intelligent control framework for autonomous vehicles that integrates Model Predictive Control (MPC) with Deep Reinforcement Learning (DRL) to improve trajectory tracking performance under variable driving conditions. The proposed approach employs a Deep Deterministic Policy Gradient (DDPG) agent to dynamically adjust the weighting parameters of the MPC cost function in real time, enabling adaptive balance between tracking precision and steering smoothness. A NARX (Nonlinear AutoRegressive with eXogenous inputs) neural network model is used to capture the nonlinear and time-varying dynamics of the vehicle, providing accurate multi-step state predictions for the MPC. Simulation results demonstrate that the DRL-enhanced MPC significantly improves lateral tracking accuracy - up to 68% reduction in error - and enhances control stability compared with conventional fixed-weight MPC. The controller exhibits robustness to abrupt changes in road friction and external disturbances. Despite its simulation-based validation, the proposed framework highlights the feasibility of real-time adaptive control and provides a promising direction toward experimental implementation on embedded automotive platforms.

langue originaleAnglais
titre2025 4th International Conference on Embedded Systems and Artificial Intelligence, ESAI 2025
EditeurInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronique)9798331551391
Les DOIs
étatPublié - 2025
Evénement2025 4th International Conference on Embedded Systems and Artificial Intelligence, ESAI 2025 - Fez, Maroc
Durée: 18 déc. 202519 déc. 2025

Série de publications

Nom2025 4th International Conference on Embedded Systems and Artificial Intelligence, ESAI 2025

Conférence

Conférence2025 4th International Conference on Embedded Systems and Artificial Intelligence, ESAI 2025
Pays/TerritoireMaroc
La villeFez
période18/12/2519/12/25

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