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首页> 外文期刊>Applied Soft Computing >Active modes and switching instants identification for linear switched systems based on Discrete Particle Swarm Optimization
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Active modes and switching instants identification for linear switched systems based on Discrete Particle Swarm Optimization

机译:基于离散粒子群算法的线性切换系统主动模式和切换瞬间辨识

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摘要

In this paper, a methodology for identifying switching sequences and switching instants of switched linear systems (SLS) is derived. The identification problem of a SLS is a challenging and non-trivial problem. In fact, it involves interaction between binary, discrete and real-valued variables. A SLS switches many times over a finite time horizon and thus estimating the sequence of activated modes and the switches locations is a crucial problem for both control and Fault Detection and Isolation (FDI). The proposed methodology is based on the Discrete Particle Swarm Optimization (DPSO) technique. The identification problem is formulated as an optimization problem involving noisy data (system inputs and outputs). Both a set of binary variables corresponding to each sub-model before and after each switch, and the corresponding switching instants are iteratively adjusted by the DPSO algorithm. Thus, the DPSO algorithm has to classify which sub-system has generated which data. The efficiency of the proposed approach is illustrated through a numerical example and a physical one. The numerical example is a Switched Auto-Regressive exogenous (SARX) system and the physical one is a buck-boost DC/DC converter.
机译:在本文中,推导了一种用于识别开关线性系统(SLS)的开关序列和开关瞬间的方法。 SLS的识别问题是一个具有挑战性且不平凡的问题。实际上,它涉及二进制,离散和实值变量之间的交互。 SLS在有限的时间范围内进行了多次切换,因此,估计激活模式的顺序和切换位置对于控制以及故障检测与隔离(FDI)都是至关重要的问题。所提出的方法基于离散粒子群优化(DPSO)技术。识别问题被表述为涉及噪声数据(系统输入和输出)的优化问题。每次开关前后对应于每个子模型的一组二进制变量,以及相应的开关时刻均由DPSO算法进行迭代调整。因此,DPSO算法必须对哪个子系统生成了哪些数据进行分类。通过数值实例和物理实例说明了所提出方法的效率。数值示例是交换式自回归外生(SARX)系统,物理示例是降压-升压型DC / DC转换器。

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