作者
Stratis Kanarachos, Jino Mathew, Alexander Chroneos, Michael Fitzpatrick
发表日期
2015/8/7
研讨会论文
Information, Intelligence, Systems and Applications (IISA), 2015 6th International Conference on
页码范围
1-6
出版商
IEEE
简介
In this paper, a new signal processing algorithm for detecting anomalies in time series data is proposed. Real time detection of anomalies is crucial in structural health monitoring applications as it can be used for an early detection of structural damage as well as for discovery of abnormal operating conditions that can shorten a structure's life. A new algorithm - a combination of wavelets, neural networks and Hilbert transform - is presented and discussed in this study. The algorithm has been evaluated for a number of benchmark tests, commonly used in the literature, and has been found to perform robustly.
引用总数
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S Kanarachos, J Mathew, A Chroneos, M Fitzpatrick - 2015 6th International Conference on Information …, 2015