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Journal Article

Using log analytics and process mining to enable self-healing in the Internet of Things

Prasannjeet Singh; Mehdi Saman Azari; Francesco Vitale; Francesco Flammini; Nicola Mazzocca; Mauro Caporuscio; Johan Thornadtsson
Environment Systems and Decisions · Vol. 42, Issue 2 · pp. 234-250 · 2022

Abstract

The Internet of Things (IoT) is rapidly developing in diverse and critical applications such as environmental sensing and industrial control systems. IoT devices can be very heterogeneous in terms of hardware and software architectures, communication protocols, and/or manufacturers. Therefore, when those devices are connected together to build a complex system, detecting and fixing any anomalies can be very challenging. In this paper, we explore a relatively novel technique known as Process Mining, which—in combination with log-file analytics and machine learning—can support early diagnosis, prognosis, and subsequent automated repair to improve the resilience of IoT devices within possibly complex cyber-physical systems. Issues addressed in this paper include generation of consistent Event Logs and definition of a roadmap toward effective Process Discovery and Conformance Checking to support Self-Healing in IoT.

Bibliographic Information

JournalEnvironment Systems and Decisions
PublisherSpringer
Publication Date2022-06-01
Publication Year2022
Volume42
Issue2
Pages234-250
Document TypeJournal Article
Print ISSN2194-5403
eISSN2194-5411
DOI10.1007/s10669-022-09859-x

Access Information

NARA Access Coverage1981-01-01~Current
Journal Homepagehttps://www.springer.com/journal/10669
Publisher PageOpen Publisher Page
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