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Erschienen in: Wireless Personal Communications 4/2016

20.06.2016

Unsupervised Performance Functions for Wireless Self-Organising Networks

verfasst von: Ana Gómez-Andrades, Raquel Barco, Pablo Muñoz, Inmaculada Serrano

Erschienen in: Wireless Personal Communications | Ausgabe 4/2016

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Abstract

Traditionally, in cellular networks, troubleshooting experts have manually analyzed Key Performance Indicators (KPI), so that they could identify the cause of problems and fix them. With the emergence of Self-Organizing Networks, Self-Healing systems are designed to automate those troubleshooting tasks. With that aim, the behavior of the KPIs (i.e. their profile under normal and abnormal conditions) needs to be modeled. Since the behavior of the KPIs is network-dependent and it changes as the network evolves, their profile should be automatically defined and readjusted depending on the characteristics of the network. Therefore, in this letter, an automatic process to model the KPIs based on the real data taken from the network is proposed. In particular, this method is characterized by designing a pair of functions (named performance functions) from the statistical behavior of real data without requiring any information about the existence of faults (i.e. unsupervised learning). Results have shown the reliability and effectiveness of the proposed method in comparison to reference approaches.

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Metadaten
Titel
Unsupervised Performance Functions for Wireless Self-Organising Networks
verfasst von
Ana Gómez-Andrades
Raquel Barco
Pablo Muñoz
Inmaculada Serrano
Publikationsdatum
20.06.2016
Verlag
Springer US
Erschienen in
Wireless Personal Communications / Ausgabe 4/2016
Print ISSN: 0929-6212
Elektronische ISSN: 1572-834X
DOI
https://doi.org/10.1007/s11277-016-3435-1

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