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Trajectory-observers of timed stochastic discrete event systems: Applications to privacy analysis

机译:定时随机离散事件系统的轨迹观测器:在隐私分析中的应用

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Various aspects of security and privacy in many application domains can be assessed based on proper analysis of successive measurements that are collected on a given system. This work is devoted to such issues in the context of timed stochastic Petri net models. We assume that certain events and part of the marking trajectories are observable to adversaries who aim to determine when the system is performing secret operations, such as time intervals during which the system is executing certain critical sequences of events (as captured, for instance, in language-based opacity formulations). The combined use of the k-step trajectory-observer and the Markov model of the stochastic Petri net leads to probabilistic indicators helpful for evaluating language-based opacity of the given system, related timing aspects, and possible strategies to improve them.
机译:可以基于对在给定系统上收集的连续测量值的正确分析,来评估许多应用程序域中安全性和隐私性的各个方面。在定时随机Petri网模型的背景下,这项工作致力于解决这些问题。我们假定某些事件和部分标记轨迹对于旨在确定系统何时执行秘密操作的对手是可观察到的,例如系统执行事件的某些关键序列的时间间隔(例如,捕获到的事件)。基于语言的不透明度公式)。 k步轨迹观测器和随机Petri网的Markov模型的组合使用可导致概率指标,这些指标有助于评估给定系统基于语言的不透明度,相关的计时方面以及改进它们的可能策略。

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