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Robust Fault Detection for Vehicle Lateral Dynamics: A Zonotope-based Set-membership Approach

机译:车辆横向动力学的鲁棒故障检测:一种基于Zonotope的集合成员方法

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In this work, a model-based fault detection layout for vehicle lateral dynamics system is presented. The major focus in this study is on the handling of model uncertainties and unknown inputs. In fact, the vehicle lateral model is affected by several parameter variations such as longitudinal velocity, cornering stiffnesses coefficients and unknown inputs like wind gust disturbances. Cornering stiffness parameters variation is considered to be unknown but bounded with known compact set. Their effect is addressed by generating intervals for the residuals based on the zonotope representation of all possible values. The developed fault detection procedure has been tested using real driving data acquired from a prototype vehicle.
机译:在这项工作中,提出了一种用于车辆横向动力学系统的基于模型的故障检测布局。本研究的主要重点是模型不确定性和未知输入的处理。实际上,车辆横向模型受几个参数变化的影响,例如纵向速度,转弯刚度系数和未知输入(如阵风干扰)。转弯刚度参数变化被认为是未知的,但以已知的紧凑集为界。通过基于所有可能值的区域同位素表示生成残差的间隔,可以解决其影响。已开发的故障检测程序已使用从原型车获取的真实驾驶数据进行了测试。

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