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Recent Progress of Anomaly Detection

Author

Listed:
  • Xiaodan Xu
  • Huawen Liu
  • Minghai Yao

Abstract

Anomaly analysis is of great interest to diverse fields, including data mining and machine learning, and plays a critical role in a wide range of applications, such as medical health, credit card fraud, and intrusion detection. Recently, a significant number of anomaly detection methods with a variety of types have been witnessed. This paper intends to provide a comprehensive overview of the existing work on anomaly detection, especially for the data with high dimensionalities and mixed types, where identifying anomalous patterns or behaviours is a nontrivial work. Specifically, we first present recent advances in anomaly detection, discussing the pros and cons of the detection methods. Then we conduct extensive experiments on public datasets to evaluate several typical and popular anomaly detection methods. The purpose of this paper is to offer a better understanding of the state-of-the-art techniques of anomaly detection for practitioners. Finally, we conclude by providing some directions for future research.

Suggested Citation

  • Xiaodan Xu & Huawen Liu & Minghai Yao, 2019. "Recent Progress of Anomaly Detection," Complexity, Hindawi, vol. 2019, pages 1-11, January.
  • Handle: RePEc:hin:complx:2686378
    DOI: 10.1155/2019/2686378
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    References listed on IDEAS

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    1. Editors, 2014. "International Journal of Systems Science," International Journal of Systems Science, Taylor & Francis Journals, vol. 45(12), pages 1-1, December.
    2. Jifu Zhang & Sulan Zhang & Kai H. Chang & Xiao Qin, 2014. "An outlier mining algorithm based on constrained concept lattice," International Journal of Systems Science, Taylor & Francis Journals, vol. 45(5), pages 1170-1179, May.
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    Cited by:

    1. Wordliczek Lukasz, 2021. "Between incrementalism and punctuated equilibrium: the case of budget in Poland, 1995–2018," Central European Journal of Public Policy, Sciendo, vol. 15(2), pages 14-30, December.
    2. Himeur, Yassine & Ghanem, Khalida & Alsalemi, Abdullah & Bensaali, Faycal & Amira, Abbes, 2021. "Artificial intelligence based anomaly detection of energy consumption in buildings: A review, current trends and new perspectives," Applied Energy, Elsevier, vol. 287(C).

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