State estimation of a nonlinear system using particle filter

K. Anandhakumar, I. Ali, K. Selvakumar, K. Raja
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Abstract

In this paper, Particle Filter algorithm has been employed for estimating the states namely concentration and temperature of a Continuous Stirred Tank Reactor (CSTR) and simulation results are presented. The propagation of particles through the nonlinear system model for the state estimation has been discussed. The states of the system are estimated by using the Particle Filter algorithm under the steady state as well as transient system conditions. A step change in the coolant flow rate has been introduced in order to provide a dynamic operating point.
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基于粒子滤波的非线性系统状态估计
本文将粒子滤波算法应用于连续搅拌槽式反应器(CSTR)的浓度和温度状态估计,并给出了仿真结果。讨论了用非线性系统模型进行状态估计的粒子传播问题。在稳态和暂态条件下,采用粒子滤波算法对系统状态进行估计。为了提供一个动态工作点,引入了冷却剂流量的阶跃变化。
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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