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Multiple-Model Adaptive Estimation with A New Weighting Algorithm

机译:一种新的加权算法的多模型自适应估计

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摘要

The state estimation of a complex dynamic stochastic system is described by a discrete-time state-space model with large parameter (including the covariance matrices of system noises and measurement noises) uncertainties. A new scheme of weighted multiple-model adaptive estimation is presented, in which the classical weighting algorithm is replaced by a new weighting algorithm to reduce the calculation burden and to relax the convergence conditions. Finally, simulation results verified the effectiveness of the proposed MMAE scheme for each possibility of parameter uncertainties.
机译:复杂动态随机系统的状态估计由具有较大参数(包括系统噪声和测量噪声的协方差矩阵)不确定性的离散时间状态空间模型描述。提出了一种新的加权多模型自适应估计方案,该方案将经典的加权算法替换为新的加权算法,以减轻计算量,减轻收敛条件。最后,仿真结果验证了所提出的MMAE方案对于每种参数不确定性的有效性。

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