Model Parameter Identification via a Hyperparameter Optimization Scheme for Autonomous Racing Systems

被引:6
作者
Seong, Hyunki [1 ]
Chung, Chanyoung [2 ]
Shim, David Hyunchul [1 ]
机构
[1] Korea Adv Inst Sci & Technol, Sch Elect Engn, Daejeon 305701, South Korea
[2] NASA JPL, Mountain View, CA 91109 USA
来源
IEEE CONTROL SYSTEMS LETTERS | 2023年 / 7卷
关键词
Tires; Engines; Vehicle dynamics; Torque; Mathematical models; Planning; Optimization; Data-driven control; hyperparameter optimization; autonomous vehicle;
D O I
10.1109/LCSYS.2023.3267041
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In this letter, we propose a model parameter identification method via a hyperparameter optimization scheme (MI-HPO). Our method adopts an efficient explore-exploit strategy to identify the parameters of dynamic models in a data-driven optimization manner. We utilize our method for model parameter identification of the AV-21, a full-scaled autonomous race vehicle. We then incorporate the optimized parameters for the design of model-based planning and control systems of our platform. In experiments, MI-HPO exhibits more than 13 times faster convergence than traditional parameter identification methods. Furthermore, the parametric models learned via MI-HPO demonstrate good fitness to the given datasets and show generalization ability in unseen dynamic scenarios. We further conduct extensive field tests to validate our model-based system, demonstrating stable obstacle avoidance and high-speed driving up to 217 km/h at the Indianapolis Motor Speedway and Las Vegas Motor Speedway. The source code for our work and videos of the tests are available at https://github.com/hynkis/MI-HPO.
引用
收藏
页码:1652 / 1657
页数:6
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