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Transfer log-based anomaly detection with pseudo labels

  • Beihang University
  • Virginia Commonwealth University
  • Chinese Academy of Scientific Computer Network Information Center

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Log-based anomaly detection is an important task for service management and system maintenance. Although anomaly labels are valuable to learn anomaly detection model, they are difficult to collect due to their rarity. To tackle this problem, existing methods employ domain adaptation algorithms to transfer anomaly detectors from labeled source domain to unlabeled target domain. However, most of those methods focus on key performance indicator anomaly detection. The semantic information in logs plays an important role in log-based anomaly detection. Therefore, adaptation methods need to consider how to transfer the semantic information in logs. In this paper, we propose a simple and effective adaptation method to transfer log-based anomaly detection model with pseudo labels. In our work, we first train a detection model with labeled samples as a pseudo-label annotator. Then we use it to assign pseudo-labels to unlabeled samples and train anomaly detectors as if they are true labels. Both models share the same feature extraction part, which can help model to transfer the semantic information in logs. We evaluated our proposed method on three log datasets. Our experimental results demonstrate that our method has outperformed other baseline methods.

源语言英语
主期刊名16th International Conference on Network and Service Management, CNSM 2020, 2nd International Workshop on Analytics for Service and Application Management, AnServApp 2020 and 1st International Workshop on the Future Evolution of Internet Protocols, IPFuture 2020
编辑Nur Zincir-Heywood, Mehmet Ulema, Muge Sayit, Stuart Clayman, Myung-Sup Kim, Cihat Cetinkaya
出版商Institute of Electrical and Electronics Engineers Inc.
ISBN(电子版)9783903176317
DOI
出版状态已出版 - 2 11月 2020
活动16th International Conference on Network and Service Management, CNSM 2020, 2nd International Workshop on Analytics for Service and Application Management, AnServApp 2020 and 1st International Workshop on the Future Evolution of Internet Protocols, IPFuture 2020 - Virtual, Izmir, 土耳其
期限: 2 11月 20206 11月 2020

出版系列

姓名16th International Conference on Network and Service Management, CNSM 2020, 2nd International Workshop on Analytics for Service and Application Management, AnServApp 2020 and 1st International Workshop on the Future Evolution of Internet Protocols, IPFuture 2020

会议

会议16th International Conference on Network and Service Management, CNSM 2020, 2nd International Workshop on Analytics for Service and Application Management, AnServApp 2020 and 1st International Workshop on the Future Evolution of Internet Protocols, IPFuture 2020
国家/地区土耳其
Virtual, Izmir
时期2/11/206/11/20

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