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A fast-moving horizon estimation method based on the symplectic pseudospectral algorithm

机译:一种基于辛伪谱算法的快速移动地平线估计方法

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In this paper, a fast-moving horizon state estimation algorithm for nonlinear continuous systems with measurement noises and model disturbances is developed. The optimization problem required to be solved at each sampling instant is formulated into a backward nonlinear optimal control problem over the finite past. Once prior knowledge of the observed system is available, constraints can be further imposed. The highly efficient and accurate symplectic pseudospectral algorithm is taken as the core solver, which leads to the symplectic pseudospectral moving horizon estimation (SP-MHE) method. The developed SP-MHE is first evaluated by numerical simulations for a hovercraft. Then the developed method is extended to parameter estimation and applied to a chaotic system with an unknown parameter. Simulation results show that the SP-MHE can generate accurate estimations even under large sampling periods or large noise where regular filters fail. In addition, the SP-MHE exhibits excellent online efficiency, suggesting it can be used for scenarios where the sampling period is relatively small.
机译:本文针对具有测量噪声和模型扰动的非线性连续系统,提出了一种快速移动时域状态估计算法。将每个采样时刻需要求解的优化问题转化为有限时间内的后向非线性最优控制问题。一旦观测系统的先验知识可用,就可以进一步施加约束。以高效准确的辛伪谱算法为核心求解器,提出了辛伪谱移动视界估计(SP-MHE)方法。开发的SP-MHE首先通过气垫船的数值模拟进行评估。然后将该方法推广到参数估计,并应用于参数未知的混沌系统。仿真结果表明,即使在常规滤波器失效的大采样周期或大噪声情况下,SP-MHE也能产生准确的估计。此外,SP-MHE具有出色的在线效率,这表明它可以用于采样周期相对较小的场景。

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