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research-article

Anomaly detection in IP networks

Published: 01 August 2003 Publication History

Abstract

Network anomaly detection is a vibrant research area. Researchers have approached this problem using various techniques such as artificial intelligence, machine learning, and state machine modeling. In this paper, we first review these anomaly detection methods and then describe in detail a statistical signal processing technique based on abrupt change detection. We show that this signal processing technique is effective at detecting several network anomalies. Case studies from real network data that demonstrate the power of the signal processing approach to network anomaly detection are presented. The application of signal processing techniques to this area is still in its infancy, and we believe that it has great potential to enhance the field, and thereby improve the reliability of IP networks.

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        cover image IEEE Transactions on Signal Processing
        IEEE Transactions on Signal Processing  Volume 51, Issue 8
        August 2003
        237 pages

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        IEEE Press

        Publication History

        Published: 01 August 2003

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        • (2024)A computationally efficient dimensionality reduction and attack classification approach for network intrusion detectionInternational Journal of Information Security10.1007/s10207-023-00792-x23:3(2457-2487)Online publication date: 1-Jun-2024
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        • (2023)Extraction and Prediction of User Communication Behaviors From DNS Query Logs Based on Nonnegative Tensor FactorizationIEEE Transactions on Network and Service Management10.1109/TNSM.2023.323885820:3(2611-2624)Online publication date: 1-Sep-2023
        • (2023)Investigating on Black Holes in Segment Routing Networks: Identification and DetectionIEEE Transactions on Network and Service Management10.1109/TNSM.2022.319745320:1(14-29)Online publication date: 1-Mar-2023
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        • (2022)A real-time adaptive network intrusion detection for streaming data: a hybrid approachNeural Computing and Applications10.1007/s00521-021-06786-x34:8(6227-6240)Online publication date: 1-Apr-2022
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