Identification of Vehicle Dynamics Parameters Using Simulation-based Inference

Ali Boyali, S. Thompson, D. Wong
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Abstract

Identifying tire and vehicle parameters is an essential step in designing control and planning algorithms for autonomous vehicles. This paper proposes a new method: Simulation-Based Inference (SBI), a modern interpretation of Approximate Bayesian Computation methods (ABC) for parameter identification. The simulation-based inference is an emerging method in the machine learning literature and has proven to yield accurate results for many parameter sets in complex problems. We demonstrate in this paper that it can handle the identification of highly nonlinear vehicle dynamics parameters and gives accurate estimates of the parameters for the governing equations.
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基于仿真推理的车辆动力学参数辨识
识别轮胎和车辆参数是设计自动驾驶汽车控制和规划算法的重要步骤。本文提出了一种新的参数识别方法:基于仿真的推理方法(SBI),这是对近似贝叶斯计算方法(ABC)的现代解释。基于模拟的推理是机器学习文献中新兴的一种方法,已被证明可以对复杂问题中的许多参数集产生准确的结果。本文证明了该方法能够处理高度非线性车辆动力学参数的辨识,并给出了控制方程参数的准确估计。
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