动态系统中固定参数估计的粒子滤波新算法

J. Míguez, M. Bugallo, P. Djuric
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引用次数: 5

摘要

标准粒子滤波器不能处理具有未知固定参数的动态系统。在本文中,我们扩展了最近提出的成本参考粒子滤波方法(CRPF)来联合估计动态系统的时变状态和静态参数。特别是,我们引入了三种策略,允许在状态空间中独立于固定参数为随机样本分配成本。推导出了说明各方法之间关系的渐近结果,并给出了计算机仿真结果来说明它们在车辆导航问题中的实际实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Novel particle filtering algorithms for fixed parameter estimation in dynamic systems
Standard particle filters cannot handle dynamic systems with unknown fixed parameters. In this paper, we extend the recently proposed cost-reference particle filtering methodology (CRPF) to jointly estimate the time-varying state and the static parameters of a dynamic system. In particular, we introduce three strategies that allow assigning costs to the random samples in the state-space independently of the fixed parameters. Asymptotic results that illuminate the relationships among the methods are derived, and computer simulation results are presented to illustrate their practical implementation in a vehicle navigation problem.
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