作者
Srinikethan Madapuzi Srinivasan, Tram Truong-Huu, Mohan Gurusamy
发表日期
2019/3/28
期刊
IEEE Internet of Things Journal
卷号
6
期号
4
页码范围
6556-6566
出版商
IEEE
简介
With the proliferation of network devices and rapid development in information technology, networks such as Internet of Things are increasing in size and becoming more complex with heterogeneous wired and wireless links. In such networks, link faults may result in a link disconnection without immediate replacement or a link reconnection, e.g., a wireless node changes its access point. Identifying whether a link disconnection or a link reconnection has occurred and localizing the failed link become a challenging problem. An active probing approach requires a long time to probe the network by sending signaling messages on different paths, thus incurring significant communication delay and overhead. In this paper, we adopt a passive approach and develop a three-stage machine learning-based technique for link fault identification and localization (ML-LFIL) by analyzing the measurements captured from the …
引用总数
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