Related Experiment Video
Updated: Sep 9, 2025

WheelCon: A Wheel Control-Based Gaming Platform for Studying Human Sensorimotor Control
Published on: August 15, 2020
Real time tire stiffness estimation using enhanced GDM and RLS for autonomous vehicles
Zhenyu Qin1, Jiaqi Wang2, Panxue Liu3
1School of Mechanical and Automotive Engineering, Xiamen University of Technology, Xiamen, 361024, Fujian, China.
None:
Yaw stability is essential for vehicle lateral control and is strongly influenced by the nonlinear dynamics of tire-road interaction. Tire Lateral Stiffness (TLS), a key parameter in this process, varies with tire properties and road conditions. Accurate TLS estimation is crucial for autonomous driving safety, especially during aggressive maneuvers or on low-friction surfaces. This paper proposes a novel TLS identification framework using modified Gradient Descent Methods (GDM) inspired by deep learning. A theoretical link is established between Recursive Least Squares (RLS) and GDM, revealing that RLS is a special case of GDM with adaptive learning rates. Based on this, improved RLS variants are developed for real-time use. Simulations compare different GDM and RLS algorithms, showing effective TLS tracking under varying conditions. Adaptive methods like Adam, which adjust gradients and learning rates, achieve improved performance, with Relative Steady-State Error (RSSE) below 5% and t10 (response time to reach 10% error band) under 3 s. These results offer practical guidance for estimator selection in safety-critical autonomous vehicle systems.
Related Concept Videos
Rolling Resistance: Problem Solving
Rolling Resistance
For instance, imagine a hard cylinder rolling on a comparatively soft surface. The cylinder's weight compresses the surface beneath it. As the cylinder moves, the material in front of it slows down...
PD Controller: Design
Designing a continuous-data controller requires selecting and linking components like adders and integrators, which are fundamental in Proportional,...
Relative Motion Analysis using Rotating Axes - Acceleration
Time differentiation is...
Differential Leveling
Relative Motion Analysis - Acceleration

