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State Estimation for DES according to Partially Observed Stochastic Petri Nets

机译:基于部分观测随机Petri网的DES状态估计

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摘要

This paper concerns state estimation of stochastic discrete event systems. For that purpose, partially observed stochastic Petri nets are used to model the system and the sensors. From the proposed modelling and the collected measurements, timed sequences which are consistent with those measurements are obtained. Based on the events date, our approach consists on evaluating the probabilities of the marking trajectories using probabilistic model. Such probabilities are important since they reflect the most probable behavior of the system. State estimation is obtained as a consequence.
机译:本文涉及随机离散事件系统的状态估计。为此,使用部分观测的随机Petri网对系统和传感器进行建模。从提出的建模和收集的测量中,可以获得与那些测量一致的定时序列。基于事件日期,我们的方法包括使用概率模型评估标记轨迹的概率。这些概率很重要,因为它们反映了系统最可能的行为。结果获得状态估计。

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