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Sensor configuration selection for discrete-event systems under unreliable observations

机译:观测不可靠的离散事件系统的传感器配置选择

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Algorithms for counting the occurrences of special events in the framework of partially-observed discrete-event dynamical systems (DEDS) were developed in previous work. Their performances typically become better as the sensors providing the observations become more costly or increase in number. This paper addresses the problem of finding a sensor configuration that achieves an optimal balance between cost and the performance of the special event counting algorithm, while satisfying given observability requirements and constraints. Since this problem is generally computational hard in the framework considered, a sensor optimization algorithm is developed using two greedy heuristics, one myopic and the other based on projected performances of candidate sensors. The two heuristics are sequentially executed in order to find best sensor configurations. The developed algorithm is then applied to a sensor optimization problem for a multi-unit-operation system. Results show that improved sensor configurations can be found that may significantly reduce the sensor configuration cost but still yield acceptable performance for counting the occurrences of special events.
机译:在先前的工作中,开发了用于在部分观测的离散事件动态系统(DEDS)框架内对特殊事件的发生进行计数的算法。当提供观测的传感器变得更昂贵或数量增加时,它们的性能通常会变得更好。本文解决了寻找一种传感器配置的问题,该传感器配置可以在成本和特殊事件计数算法的性能之间实现最佳平衡,同时满足给定的可观察性要求和约束。由于此问题通常在所考虑的框架中计算困难,因此基于候选传感器的预期性能,使用两种贪婪启发式算法(一种近视和另一种)开发了传感器优化算法。顺序执行这两种启发式方法,以找到最佳的传感器配置。然后将开发的算法应用于多单元操作系统的传感器优化问题。结果表明,可以发现改进的传感器配置,可以显着降低传感器配置的成本,但仍能为统计特殊事件的发生提供可接受的性能。

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