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Autori principali: Ghosh, Bineet, André, Étienne
Natura: Preprint
Pubblicazione: 2022
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Accesso online:https://arxiv.org/abs/2204.11505
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author Ghosh, Bineet
André, Étienne
author_facet Ghosh, Bineet
André, Étienne
contents Monitoring the correctness of distributed cyber-physical systems is essential. Detecting possible safety violations can be hard when some samples are uncertain or missing. We monitor here black-box cyber-physical system, with logs being uncertain both in the state and timestamp dimensions: that is, not only the logged value is known with some uncertainty, but the time at which the log was made is uncertain too. In addition, we make use of an over-approximated yet expressive model, given by a non-linear extension of dynamical systems. Given an offline log, our approach is able to monitor the log against safety specifications with a limited number of false alarms. As a second contribution, we show that our approach can be used online to minimize the number of sample triggers, with the aim at energetic efficiency. We apply our approach to three benchmarks, an anesthesia model, an adaptive cruise controller and an aircraft orbiting system.
format Preprint
id arxiv_https___arxiv_org_abs_2204_11505
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Offline and online energy-efficient monitoring of scattered uncertain logs using a bounding model
Ghosh, Bineet
André, Étienne
Systems and Control
Software Engineering
Monitoring the correctness of distributed cyber-physical systems is essential. Detecting possible safety violations can be hard when some samples are uncertain or missing. We monitor here black-box cyber-physical system, with logs being uncertain both in the state and timestamp dimensions: that is, not only the logged value is known with some uncertainty, but the time at which the log was made is uncertain too. In addition, we make use of an over-approximated yet expressive model, given by a non-linear extension of dynamical systems. Given an offline log, our approach is able to monitor the log against safety specifications with a limited number of false alarms. As a second contribution, we show that our approach can be used online to minimize the number of sample triggers, with the aim at energetic efficiency. We apply our approach to three benchmarks, an anesthesia model, an adaptive cruise controller and an aircraft orbiting system.
title Offline and online energy-efficient monitoring of scattered uncertain logs using a bounding model
topic Systems and Control
Software Engineering
url https://arxiv.org/abs/2204.11505