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A clustering-based approach for the identification of a class of temporally switched linear systems

机译:基于聚类的一类时间切换线性系统的识别方法

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The behaviours of hybrid dynamic systems (HDS) are determined by combining continuous variables with discrete switching logic. The identification of a HDS aims to find an accurate model of the system's dynamics based on its past inputs and outputs. In pattern recognition (PR) methods, each mode is repre sented by a set of similar patterns that form restricted regions in the feature space. These sets of patterns are called classes. A pattern is a vector built from past inputs and outputs. HDS identification is a chal lenging problem since it involves the estimation of different sets of parameters without knowing in advance which sections of the measured data correspond to the different modes of the system. Therefore, HDS identification can be achieved by combining two steps: clustering and parameter estimation. In the clustering step, the number of discrete modes (i.e., the classes that input-output data points belong) is estimated. The parameter estimation step finds the parameters of the models that govern the continuous dynamics in each mode. In this paper, an unsupervised PR method is proposed to achieve the clustering step of the identification of temporally switched linear HDS. The determination of the number of modes does not require prior information about the modes or their number.
机译:混合动力系统(HDS)的行为是通过将连续变量与离散开关逻辑相结合来确定的。 HDS的识别旨在根据其过去的输入和输出来找到系统动力学的准确模型。在模式识别(PR)方法中,每种模式都由一组在特征空间中形成受限区域的相似模式表示。这些模式集称为类。模式是根据过去的输入和输出构建的向量。 HDS识别是一个艰巨的问题,因为它涉及对不同参数集的估计,而无需事先知道测量数据的哪些部分对应于系统的不同模式。因此,可以通过组合两个步骤来实现HDS识别:聚类和参数估计。在聚类步骤中,估计离散模式的数量(即,输入-输出数据点所属的类)。参数估计步骤找到控制每种模式下连续动态的模型参数。本文提出了一种无监督的PR方法来实现时间交换线性HDS识别的聚类步骤。模式数量的确定不需要关于模式或其数量的先验信息。

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