Learning Discriminative and Generalizable Anomaly Detector for Dynamic Graph with Limited Supervision 事件

PRODUCT_LAUNCH2026-06-02影响: MEDIUM

Learning Discriminative and Generalizable Anomaly Detector for Dynamic Graph with Limited Supervision arXiv:2602.20019v2 Announce Type: replace-cross Abstract: Dynamic graph anomaly detection is critical for many real-world applications but remains challenging due to the scarcity of labeled anomalies. Existing methods are either unsupervised or semi-supervised: unsupervised methods avoid the need for labeled anomalies but often produce ambiguous boundary, whereas semi-supervised methods can ove

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