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An SVM-Based Method for Classification of External Interference in Industrial Wireless Sensor and Actuator Networks
Mittuniversitetet, Fakulteten för naturvetenskap, teknik och medier, Avdelningen för informationssystem och -teknologi. (Communication Systems and Networks (CSN))
Mittuniversitetet, Fakulteten för naturvetenskap, teknik och medier, Avdelningen för informationssystem och -teknologi. (Communication Systems and Networks (CSN))ORCID-id: 0000-0003-3717-7793
Mittuniversitetet, Fakulteten för naturvetenskap, teknik och medier, Avdelningen för informationssystem och -teknologi. (Communication Systems and Networks (CSN))ORCID-id: 0000-0003-0873-7827
2017 (engelsk)Inngår i: Journal of Sensor and Actuator Network, ISSN 2224-2708, Vol. 6, nr 2, artikkel-id 9Artikkel i tidsskrift (Fagfellevurdert) Published
Abstract [en]

In recent years, the adoption of industrial wireless sensor and actuator networks (IWSANs) has greatly increased. However, the time-critical performance of IWSANs is considerably affected by external sources of interference. In particular, when an IEEE 802.11 network is coexisting in the same environment, a significant drop in communication reliability is observed. This, in turn, represents one of the main challenges for a wide-scale adoption of IWSAN. Interference classification through spectrum sensing is a possible step towards interference mitigation, but the long sampling window required by many of the approaches in the literature undermines their run-time applicability in time-slotted channel hopping (TSCH)-based IWSAN. Aiming at minimizing both the sensing time and the memory footprint of the collected samples, a centralized interference classifier based on support vector machines (SVMs) is introduced in this article. The proposed mechanism, tested with sample traces collected in industrial scenarios, enables the classification of interference from IEEE 802.11 networks and microwave ovens, while ensuring high classification accuracy with a sensing duration below 300 ms. In addition, the obtained results show that the fast classification together with a contained sampling frequency ensure the suitability of the method for TSCH-based IWSAN

sted, utgiver, år, opplag, sider
2017. Vol. 6, nr 2, artikkel-id 9
Emneord [en]
Industrial wireless sensor and actuator networks; support vector machine; interference classification; spectrum sensing; Wireless LAN; microwave owen
HSV kategori
Identifikatorer
URN: urn:nbn:se:miun:diva-30891DOI: 10.3390/jsan6020009ISI: 000404529000005Scopus ID: 2-s2.0-85029484316Lokal ID: STCOAI: oai:DiVA.org:miun-30891DiVA, id: diva2:1110894
Prosjekter
ASISTIMELINESSSMART (Smarta system och tjänster för ett effektivt och innovativt samhälle)
Forskningsfinansiär
Knowledge FoundationTilgjengelig fra: 2017-06-16 Laget: 2017-06-16 Sist oppdatert: 2025-09-25bibliografisk kontrollert
Inngår i avhandling
1. Towards Radio-Environment Aware IoT Networks: Wireless Coexistence Methods for Low-complexity Devices
Åpne denne publikasjonen i ny fane eller vindu >>Towards Radio-Environment Aware IoT Networks: Wireless Coexistence Methods for Low-complexity Devices
2020 (engelsk)Doktoravhandling, med artikler (Annet vitenskapelig)
Abstract [en]

Wireless technologies for short-range communication play a central role in the massive diffusion of the Internet of Things (IoT) paradigm. Such communication solutions rely extensively on the availability of unlicensed spectrum in the form of bands for industrial, scientific, and medical (ISM) applications. While ISM bands greatly simplify network deployments by avoiding operator-related costs and facilitating worldwide applicability, they present the shortcoming of non-cooperative spectrum usage, which manifests in the form of radio interference. Interference and time-varying environments generate complex and dynamic scenarios for wireless network deployments, endangering communication performance. The problem becomes especially critical when the timeliness and reliability of the communication are subject to stringent requirements, which is the case for several industrial IoT (IIoT) applications.

This work aims to enhance the reliability and performance of wireless communication in IoT networks by enriching the existing methods for radio-environment analysis. The central idea of this research is that a run-time analysis of the radio channel properties is a crucial element to ensure performance stability in unpredictable radio environments with potentially disruptive interference.An added challenge of this work comes from the hypothesis that such an analysis can be performed even with strongly resource-constrained platforms without hindering routine network functionalities. The employed methodology is heavily reliant on experimental validation, encompassing implementation on IoT radio devices and measurement campaigns. This thesis makes two principal scientific contributions.

The first contribution is the design of a comprehensive collection of methods for the analysis of the radio environment, designed to operate entirely onboard on IoT radio platforms.The approaches encompass interference detection, classification, spectrum analysis, link-state analysis, and detection of outages in end-to-end communication. The methods are designed to overcome the gap that exists in the related literature between the elaborate signal analysis operated with dedicated hardware and the lightweight, but sub-optimal, analysis methods developed for legacy wireless sensor networks.

The second contribution of this work is made by showing potential uses of the developed analysis methods to: i) safeguard the performance of wireless communication under interference and ii) enhance the coexistence of co-located wireless networks. To this end, firstly, a proactive method for dynamic blacklisting is designed that exploits real-time signal analysis and significantly improves the communication reliability of an IIoT radio link under heavy radio interference. Secondly, a method for autonomous radio environment mapping (REM) in IoT networks is proposed that employs onboard interference identification and tracks the sources of wireless interference in space, time, and frequency. The approach ensures a dynamic level of REM detail and provides a powerful tool for predicting the IoT network performance and adapting the network parameters at run-time.

sted, utgiver, år, opplag, sider
Sundsvall: Mid Sweden University, 2020. s. 92
Serie
Mid Sweden University doctoral thesis, ISSN 1652-893X ; 323
Emneord
IoT, Industrial IoT, Interference, Machine Learning, Wireless Coexistence, Wireless Networks
HSV kategori
Identifikatorer
urn:nbn:se:miun:diva-39034 (URN)978-91-88947-53-6 (ISBN)
Disputas
2020-06-16, Zoom, Holmgatan,10, Sundsvall, 09:00 (engelsk)
Opponent
Veileder
Forskningsfinansiär
Knowledge Foundation
Merknad

Vid tidpunkten för disputationen var följande delarbete opublicerat: delarbete 7 inskickat.

At the time of the doctoral defence the following paper was unpublished: paper 7 submitted.

Tilgjengelig fra: 2020-05-18 Laget: 2020-05-15 Sist oppdatert: 2025-09-25bibliografisk kontrollert

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