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Active Learning and Transfer Learning for Anomaly Detection in Time-Series Data
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本文探讨了主动学习与迁移学习在跨域时间序列数据异常检测中的有效性。研究表明,聚类与主动学习存在交互作用,最佳性能未使用聚类;主动学习提高模型性能,但提升速度低于文献报道;迁移学习与主动学习结合初期提升性能,后期性能下降,表明主动学习在数据选择方面有效。

arXiv:2508.03921v1 Announce Type: cross Abstract: This paper examines the effectiveness of combining active learning and transfer learning for anomaly detection in cross-domain time-series data. Our results indicate that there is an interaction between clustering and active learning and in general the best performance is achieved using a single cluster (in other words when clustering is not applied). Also, we find that adding new samples to the training set using active learning does improve model performance but that in general, the rate of improvement is slower than the results reported in the literature suggest. We attribute this difference to an improved experimental design where distinct data samples are used for the sampling and testing pools. Finally, we assess the ceiling performance of transfer learning in combination with active learning across several datasets and find that performance does initially improve but eventually begins to tail off as more target points are selected for inclusion in training. This tail-off in performance may indicate that the active learning process is doing a good job of sequencing data points for selection, pushing the less useful points towards the end of the selection process and that this tail-off occurs when these less useful points are eventually added. Taken together our results indicate that active learning is effective but that the improvement in model performance follows a linear flat function concerning the number of points selected and labelled.

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主动学习 迁移学习 异常检测 时间序列数据 跨域
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