He Cheng
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Sequential Anomaly Detection with Local and Global Explanations

Authors

He Cheng

Depeng Xu

Shuhan Yuan

Published

December 17, 2022

Abstract

We propose GLEAD, a framework for sequential anomaly detection that provides both local explanations (highlighting anomalous subsequences) and global explanations (dataset-wide patterns). This dual perspective improves transparency for practitioners while maintaining strong detection performance.

 

© 2026 He Cheng