Adaptive Lane-Change Trajectory Planning and MPC-Based Tracking Control for Rear-End Collision Avoidance Under Varying Road Friction Conditions

Rear-end collision avoidance is one of the most critical active safety features in modern vehicles. This paper proposes a steering-based rear-end collision avoidance strategy designed to enhance vehicle safety and stability under various driving conditions. Collision avoidance is achieved through lateral maneuvering using a smooth and feasible trajectory generated by a quintic polynomial. To ensure dynamic feasibility and vehicle stability, the minimum feasible lane change time is determined according to allowable lateral acceleration limited by the available tire-road friction. Unlike conventional approaches that assume a fixed lane-change time, the proposed method adapts the maneuver according to road conditions, thereby reducing the risk of instability, particularly on low-friction roads. To accurately track the generated trajectory, a Model Predictive Control (MPC) controller is employed. Simulation results using MATLAB/Simulink demonstrate that the proposed approach successfully achieves collision avoidance while maintaining vehicle stability and acceptable ride comfort under different driving conditions. Furthermore, a comparative analysis with a conventional fixed lane-change strategy shows that the proposed adaptive approach significantly improves vehicle stability and path tracking performance under low-friction road conditions. Specifically, at μ = 0.4, the adaptive strategy maintains tire slip angle within ±1.5°, well below the 3°–4° linear stability limit and reduces peak acceleration by 44% compared to the fixed lane-change strategy. The results confirm that the proposed approach effectively prevents excessive lateral acceleration and vehicle instability, ensuring safe obstacle avoidance on wet roads.

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Publication Details

Journal
International Journal of Automotive Science And Technology
Published
2026-10-03
DOI
https://doi.org/10.30939/ijastech..1963083
Primary Topic
Vehicle Dynamics and Control Systems
Type
article
Field-Weighted Citation Impact
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article

Adaptive Lane-Change Trajectory Planning and MPC-Based Tracking Control for Rear-End Collision Avoidance Under Varying Road Friction Conditions

Mostafa M. Makrahy, Ali M. Abd‐El‐Tawwab, Mohamed Hassan, Eslam Makhlouf
International Journal of Automotive Science And Technology
Vehicle Dynamics and Control Systems
article

Adaptive Lane-Change Trajectory Planning and MPC-Based Tracking Control for Rear-End Collision Avoidance Under Varying Road Friction Conditions

Mostafa M. Makrahy, Ali M. Abd‐El‐Tawwab, Mohamed Hassan, Eslam Makhlouf
article en

Abstract

Rear-end collision avoidance is one of the most critical active safety features in modern vehicles. This paper proposes a steering-based rear-end collision avoidance strategy designed to enhance vehicle safety and stability under various driving conditions. Collision avoidance is achieved through lateral maneuvering using a smooth and feasible trajectory generated by a quintic polynomial. To ensure dynamic feasibility and vehicle stability, the minimum feasible lane change time is determined according to allowable lateral acceleration limited by the available tire-road friction. Unlike conventional approaches that assume a fixed lane-change time, the proposed method adapts the maneuver according to road conditions, thereby reducing the risk of instability, particularly on low-friction roads. To accurately track the generated trajectory, a Model Predictive Control (MPC) controller is employed. Simulation results using MATLAB/Simulink demonstrate that the proposed approach successfully achieves collision avoidance while maintaining vehicle stability and acceptable ride comfort under different driving conditions. Furthermore, a comparative analysis with a conventional fixed lane-change strategy shows that the proposed adaptive approach significantly improves vehicle stability and path tracking performance under low-friction road conditions. Specifically, at μ = 0.4, the adaptive strategy maintains tire slip angle within ±1.5°, well below the 3°–4° linear stability limit and reduces peak acceleration by 44% compared to the fixed lane-change strategy. The results confirm that the proposed approach effectively prevents excessive lateral acceleration and vehicle instability, ensuring safe obstacle avoidance on wet roads.

International Journal of Automotive Science And TechnologyVol. 10(3)
Minia University (EG)
Openalex Percentile: Top 20%
Vehicle Dynamics and Control Systems
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