Transmissibility-based Kalman Filtering For Systems With Non-Gaussian Process Noise

A. Khalil, Almuatazbellah M. Boker, Khaled F. Aljanaideh, M. Al Janaideh
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引用次数: 0

Abstract

The concept of transmissibility operators refers to the mathematical relationships between system outputs. They can be used to estimate the independent output of a system based on sensor measurements only. In this case, the output estimation is independent of the process noise or unmodeled dynamics. This allows for the estimation of process noise regardless of its probability distribution. The proposed approach takes into account the possibility of using the Kalman filter theme in the filtering of output noise regardless of the process noise distribution. The proposed approach does not require the covariance estimation of the process noise. Since the proposed approach considers the ability to formulate unmodeled dynamics or parameter uncertainties as non-Gaussian process noise, it can handle both. The potential of this approach is demonstrated by implementing it in a group of connected autonomous robots.
非高斯过程噪声系统的透射率卡尔曼滤波
传递算子的概念是指系统输出之间的数学关系。它们可用于仅基于传感器测量来估计系统的独立输出。在这种情况下,输出估计与过程噪声或未建模的动态无关。这样就可以对过程噪声进行估计,而不考虑其概率分布。该方法考虑了在不考虑过程噪声分布的情况下使用卡尔曼滤波主题对输出噪声进行滤波的可能性。该方法不需要对过程噪声进行协方差估计。由于所提出的方法考虑了将未建模动力学或参数不确定性表述为非高斯过程噪声的能力,因此它可以同时处理这两者。这种方法的潜力通过在一组连接的自主机器人中实现来证明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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