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IMPACT: Influence Modeling for Open-Set Time Series Anomaly Detection

About

Open-set anomaly detection (OSAD) is an emerging paradigm designed to utilize limited labeled data from anomaly classes seen in training to identify both seen and unseen anomalies during testing. Current approaches rely on simple augmentation methods to generate pseudo anomalies that replicate unseen anomalies. Despite being promising in image data, these methods are found to be ineffective in time series data due to the failure to preserve its sequential nature, resulting in trivial or unrealistic anomaly patterns. They are further plagued when the training data is contaminated with unlabeled anomalies. This work introduces $\textbf{IMPACT}$, a novel framework that leverages $\underline{\textbf{i}}$nfluence $\underline{\textbf{m}}$odeling for o$\underline{\textbf{p}}$en-set time series $\underline{\textbf{a}}$nomaly dete$\underline{\textbf{ct}}$ion, to tackle these challenges. The key insight is to $\textbf{i)}$ learn an influence function that can accurately estimate the impact of individual training samples on the modeling, and then $\textbf{ii)}$ leverage these influence scores to generate semantically divergent yet realistic unseen anomalies for time series while repurposing high-influential samples as supervised anomalies for anomaly decontamination. Extensive experiments show that IMPACT significantly outperforms existing state-of-the-art methods, showing superior accuracy under varying OSAD settings and contamination rates.

Xiaohui Zhou, Yijie Wang, Hongzuo Xu, Weixuan Liang, Xiaoli Li, Guansong Pang• 2026

Related benchmarks

TaskDatasetResultRank
Anomaly DetectionSMD--
359
Time Series Anomaly DetectionUEA CT
ROC-AUC0.9196
26
Time Series Anomaly DetectionCT Hard Setting (test)
AUC83.58
20
Point-level Anomaly DetectionUCR
Affiliation-F172.02
15
Point-level Anomaly DetectionASD
Affiliation-F177.12
15
Time Series Anomaly DetectionUCR
AUC0.5921
15
Time Series Anomaly DetectionASD
AUC65.76
15
Time Series Anomaly DetectionPSM
AUC64.24
15
Time Series Anomaly DetectionSMD
AUC75.97
15
Time Series Anomaly DetectionSAD
AUC68.13
15
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