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Home / Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence / EAAI-20

Temporal Anomaly Detection: Calibrating the Surprise

February 1, 2023

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Authors

Eyal Gutflaish

Ben-Gurion University


Aryeh Kontorovich

Ben-Gurion University


Sivan Sabato

Ben-Gurion Universtiy of the Negev


Ofer Biller

IBM


Oded Sofer

IBM


DOI:

10.1609/aaai.v33i01.33013755


Abstract:

We propose a hybrid approach to temporal anomaly detection in access data of users to databases — or more generally, any kind of subject-object co-occurrence data. We consider a high-dimensional setting that also requires fast computation at test time. Our methodology identifies anomalies based on a single stationary model, instead of requiring a full temporal one, which would be prohibitive in this setting. We learn a low-rank stationary model from the training data, and then fit a regression model for predicting the expected likelihood score of normal access patterns in the future. The disparity between the predicted likelihood score and the observed one is used to assess the “surprise” at test time. This approach enables calibration of the anomaly score, so that time-varying normal behavior patterns are not considered anomalous. We provide a detailed description of the algorithm, including a convergence analysis, and report encouraging empirical results. One of the data sets that we tested is new for the public domain. It consists of two months’ worth of database access records from a live system. This data set and our code are publicly available at https://github.com/eyalgut/TLR anomaly detection.git.

Topics: AAAI

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HOW TO CITE:

Eyal Gutflaish||Aryeh Kontorovich||Sivan Sabato||Ofer Biller||Oded Sofer Temporal Anomaly Detection: Calibrating the Surprise Proceedings of the AAAI Conference on Artificial Intelligence (2019) 3755-3762.

Eyal Gutflaish||Aryeh Kontorovich||Sivan Sabato||Ofer Biller||Oded Sofer Temporal Anomaly Detection: Calibrating the Surprise AAAI 2019, 3755-3762.

Eyal Gutflaish||Aryeh Kontorovich||Sivan Sabato||Ofer Biller||Oded Sofer (2019). Temporal Anomaly Detection: Calibrating the Surprise. Proceedings of the AAAI Conference on Artificial Intelligence, 3755-3762.

Eyal Gutflaish||Aryeh Kontorovich||Sivan Sabato||Ofer Biller||Oded Sofer. Temporal Anomaly Detection: Calibrating the Surprise. Proceedings of the AAAI Conference on Artificial Intelligence 2019 p.3755-3762.

Eyal Gutflaish||Aryeh Kontorovich||Sivan Sabato||Ofer Biller||Oded Sofer. 2019. Temporal Anomaly Detection: Calibrating the Surprise. "Proceedings of the AAAI Conference on Artificial Intelligence". 3755-3762.

Eyal Gutflaish||Aryeh Kontorovich||Sivan Sabato||Ofer Biller||Oded Sofer. (2019) "Temporal Anomaly Detection: Calibrating the Surprise", Proceedings of the AAAI Conference on Artificial Intelligence, p.3755-3762

Eyal Gutflaish||Aryeh Kontorovich||Sivan Sabato||Ofer Biller||Oded Sofer, "Temporal Anomaly Detection: Calibrating the Surprise", AAAI, p.3755-3762, 2019.

Eyal Gutflaish||Aryeh Kontorovich||Sivan Sabato||Ofer Biller||Oded Sofer. "Temporal Anomaly Detection: Calibrating the Surprise". Proceedings of the AAAI Conference on Artificial Intelligence, 2019, p.3755-3762.

Eyal Gutflaish||Aryeh Kontorovich||Sivan Sabato||Ofer Biller||Oded Sofer. "Temporal Anomaly Detection: Calibrating the Surprise". Proceedings of the AAAI Conference on Artificial Intelligence, (2019): 3755-3762.

Eyal Gutflaish||Aryeh Kontorovich||Sivan Sabato||Ofer Biller||Oded Sofer. Temporal Anomaly Detection: Calibrating the Surprise. AAAI[Internet]. 2019[cited 2023]; 3755-3762.


ISSN: 2374-3468


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