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Iterative Smooth Variable Structure Filter for Parameter Estimation

机译:迭代平滑变量结构滤波器用于参数估计

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The smooth variable structure filter (SVSF) is a recently proposed predictor-corrector filter for state and parameter estimation. The SVSF is based on the sliding mode control concept. It defines a hyperplane in terms of the state trajectory and then applies a discontinuous corrective action that forces the estimate to go back and forth across that hyperplane. The SVSF is robust and stable to modeling uncertainties making it suitable for fault detection application. The discontinuous action of the SVSF results in a chattering effect that can be used to correct modeling errors and uncertainties in conjunction with adaptive strategies. In this paper, the SVSF is complemented with a novel parameter estimation technique referred to as the iterative bi-section/shooting method (IBSS). This combined strategy is used for estimating model parameters and states for systems in which only the model structure is known. This combination improves the performance of the SVSF in terms of rate of convergence, robustness, and stability. The benefits of the proposed estimation method are demonstrated by its application to an electrohydrostatic actuator.
机译:平滑可变结构滤波器(SVSF)是最近提出的用于状态和参数估计的预测校正器滤波器。 SVSF基于滑模控制概念。它根据状态轨迹定义了一个超平面,然后应用了不连续的纠正措施,迫使估计值在该超平面上来回移动。 SVSF对建模不确定性具有鲁棒性和稳定性,使其适合于故障检测应用。 SVSF的不连续动作会产生颤动效应,可将其与自适应策略结合使用来校正建模误差和不确定性。在本文中,SVSF补充了一种新颖的参数估计技术,称为迭代二等分/射击方法(IBSS)。此组合策略用于估计仅模型结构已知的系统的模型参数和状态。这种组合在收敛速度,鲁棒性和稳定性方面提高了SVSF的性能。所提出的估计方法的优点通过将其应用于静电静力执行器得到了证明。

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