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SCAN: Enhance Time Series Anomaly Detection via Multi-Scale Neighborhood-Centered Clustering

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Time series anomaly detection plays a crucial role in a wide range of real-world applications. Reconstruction-based methods have become the mainstream paradigm, but they suffer from over-generalization and under-generalization problems, which are challenging to balance. To address this, we introduce multi-scale clustering to enhance reconstruction-based methods. At the representation level, we integrate the cluster center representations of normal patterns to constrain the model to target representative normal patterns for reconstruction, preventing dominance of powerful capacity and representation capability. At the anomaly criterion level, we derive anomaly confidence score based on cluster membership probability and combine it with reconstruction error, providing dual criteria for detection. Furthermore, the effectiveness of the cluster center representations and anomaly confidence score depends on the clustering performance. Accordingly, we extract neighborhood-centered representations for multi-view clustering to improve clustering performance. Extensive experiments on multiple real-world datasets from diverse application domains demonstrate the state-of-the-art performance of SCAN.

Xingze Zheng, Hanyin Cheng, Siyuan Wang, Yiting Hao, Peng Chen, Yuan Jun, Yang Shu• 2026

Related benchmarks

TaskDatasetResultRank
Time Series Anomaly DetectionGECCO
VUS-ROC0.9957
97
Time Series Anomaly DetectionSMAP--
61
Time Series Anomaly DetectionPSM
VUS-ROC0.7457
59
Time Series Anomaly DetectionMSL
VUS-ROC0.8232
55
Time Series Anomaly DetectionSWAN
VUS-ROC0.9591
43
Time Series Anomaly DetectionSWaT
VUS-ROC0.7866
43
Time Series Anomaly DetectionSMD
VUS-ROC0.9081
23
Time Series Anomaly DetectionPSM
Affiliation F184.63
21
Time Series Anomaly DetectionSMD
Accuracy92.02
5
Time Series Anomaly DetectionGECCO
Acc98.97
5
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