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10.1109/ICDM.2011.51guideproceedingsArticle/Chapter ViewAbstractPublication PagesConference Proceedingsacm-pubtype
Article

Detection of Cross-Channel Anomalies from Multiple Data Channels

Published: 11 December 2011 Publication History

Abstract

We identify and formulate a novel problem: cross channel anomaly detection from multiple data channels. Cross channel anomalies are common amongst the individual channel anomalies, and are often portent of significant events. Using spectral approaches, we propose a two-stage detection method: anomaly detection at a single-channel level, followed by the detection of cross-channel anomalies from the amalgamation of single channel anomalies. Our mathematical analysis shows that our method is likely to reduce the false alarm rate. We demonstrate our method in two applications: document understanding with multiple text corpora, and detection of repeated anomalies in video surveillance. The experimental results consistently demonstrate the superior performance of our method compared with related state-of-art methods, including the one-class SVM and principal component pursuit. In addition, our framework can be deployed in a decentralized manner, lending itself for large scale data stream analysis.

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Published In

cover image Guide Proceedings
ICDM '11: Proceedings of the 2011 IEEE 11th International Conference on Data Mining
December 2011
1289 pages
ISBN:9780769544083

Publisher

IEEE Computer Society

United States

Publication History

Published: 11 December 2011

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  1. Anomaly detection
  2. Spectral methods
  3. topic detection

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