Learning event-driven switched linear systems

A. Kundu, P. Prabhakar
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Abstract

We propose an automata theoretic learning algorithm for the identification of black-box switched linear systems whose switching logics are event-driven. A switched system is expressed by a deterministic finite automaton (FA) whose node labels are the subsystem matrices. With information about the dimensions of the matrices and the set of events, and with access to two oracles, that can simulate the system on a given input, and provide counter-examples when given an incorrect hypothesis automaton, we provide an algorithm that outputs the unknown FA. Our algorithm first uses the oracle to obtain the node labels of the system run on a given input sequence of events, and then extends Angluin's $L^{\ast}$ -algorithm to determine the FA that accepts the language of the given FA. We demonstrate our learning algorithm on a numerical example.
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学习事件驱动的切换线性系统
针对切换逻辑为事件驱动的黑盒切换线性系统,提出了一种自动机理论学习算法。交换系统用确定性有限自动机(FA)来表示,其节点标签是子系统矩阵。有了矩阵的维度和事件集的信息,以及访问两个可以在给定输入上模拟系统的预言器,并在给定不正确的假设自动机时提供反例,我们提供了一个输出未知FA的算法。我们的算法首先使用oracle获取在给定输入事件序列上运行的系统的节点标签,然后扩展Angluin的$L^{\ast}$ -算法来确定接受给定FA语言的FA。我们在一个数值例子上演示了我们的学习算法。
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