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  4. Hierarchical abnormal-node detection using fuzzy logic for ECA rule-based wireless sensor networks
 
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Hierarchical abnormal-node detection using fuzzy logic for ECA rule-based wireless sensor networks

Journal
Proceedings of IEEE Pacific Rim International Symposium on Dependable Computing, PRDC
Journal Volume
2018-December
Pages
289-298
Date Issued
2019
Author(s)
Berjab, N.
Le, H.H.
Yu, C.-M.
Kuo, S.-Y.
Yokota, H.
SY-YEN KUO  
DOI
10.1109/PRDC.2018.00051
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/500950
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85062870987&doi=10.1109%2fPRDC.2018.00051&partnerID=40&md5=88a9d4bdf0686dab1dffafb7a41b1f3e
Abstract
The Internet of things (IoT) is a distributed, networked system composed of many embedded sensor devices. Unfortunately, these devices are resource constrained and susceptible to malicious data-integrity attacks and failures, leading to unreliability and sometimes to major failure of parts of the entire system. Intrusion detection and failure handling are essential requirements for IoT security. Nevertheless, as far as we know, the area of data-integrity detection for IoT has yet to receive much attention. Most previous intrusion-detection methods proposed for IoT, particularly for wireless sensor networks (WSNs), focus only on specific types of network attacks. Moreover, these approaches usually rely on using precise values to specify abnormality thresholds. However, sensor readings are often imprecise and crisp threshold values are inappropriate. To guarantee a lightweight, dependable monitoring system, we propose a novel hierarchical framework for detecting abnormal nodes in WSNs. The proposed approach uses fuzzy logic in event-condition-action (ECA) rule-based WSNs to detect malicious nodes, while also considering failed nodes. The spatiotemporal semantics of heterogeneous sensor readings are considered in the decision process to distinguish malicious data from other anomalies. Following our experiments with the proposed framework, we stress the significance of considering the sensor correlations to achieve detection accuracy, which has been neglected in previous studies. Our experiments using real-world sensor data demonstrate that our approach can provide high detection accuracy with low false-alarm rates. We also show that our approach performs well when compared to two well-known classification algorithms.
Type
conference paper

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