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首页> 外文期刊>IEEE Transactions on Aerospace and Electronic Systems >Multiple-model estimation with variable structure. III. Model-groupswitching algorithm
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Multiple-model estimation with variable structure. III. Model-groupswitching algorithm

机译:具有可变结构的多模型估计。三,模型组切换算法

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摘要

A general multiple-model (MM) estimator with a variable structure (VSMM), railed model-group switching (MGS) algorithm, is presented. It assumes that the total set of models can be covered by a number of model groups, each representing a cluster of closely related system behavior patterns or structures, and a particular group is running at any given time determined by a hard decision. This algorithm is the first VSMM estimator that is generally applicable to a large class of problems with hybrid (continuous and discrete) uncertainties. It is also easily implementable. It is illustrated, via a simple fault detection and identification example, that the MGS algorithm provides a substantial reduction in computation while having identical performance with the fixed-structure Interacting Multiple-Model (FSIMM) estimator
机译:提出了一种具有可变结构(VSMM)的通用多模型(MM)估计器,有轨模型组切换(MGS)算法。假定整个模型集可以由多个模型组覆盖,每个模型组代表一组紧密相关的系统行为模式或结构,并且特定组在任何艰难的决定确定的给定时间运行。该算法是第一个VSMM估计器,通常可用于具有混合(连续和离散)不确定性的一大类问题。它也很容易实现。通过一个简单的故障检测和识别示例说明,MGS算法可显着减少计算量,同时具有与固定结构交互多模型(FSIMM)估计器相同的性能

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