כתבה
arXiv cs.LG ·
What Streaming Anomaly Detection Finds (and Misses) in Industrial Time Series
תקציר מקורי באנגליתarXiv:2609.39232v1 Announce Type: new Abstract: EDF relies on continuous monitoring of its power plants to detect anomalies as soon as they occur. Given the absence of a universally optimal streaming method in unsupervised settings, we compare streaming methods with state-of-the-art TSAD models deployed online on a real nuclear power plant dataset. This work also evaluates Automated Anomaly Detection in a streaming context. Results show higher consistency for online TSAD and strong robustness from ensembling strategies.
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arxiv.org
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