voluble 发表于 2025-3-28 17:32:31
Achieving Counterfactual Explanation for Sequence Anomaly Detectionnovel framework, called CFDet, that can explain the detection results of one-class sequence anomaly detection models by highlighting the anomalous entries in the sequences based on the idea of counterfactual explanation. Experimental results on three datasets show that CFDet can provide explanations by correctly detecting anomalous entries.Adjourn 发表于 2025-3-28 18:46:47
http://reply.papertrans.cn/63/6206/620546/620546_42.pngCumbersome 发表于 2025-3-29 02:30:48
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http://reply.papertrans.cn/63/6206/620546/620546_45.pngprojectile 发表于 2025-3-29 15:24:14
http://reply.papertrans.cn/63/6206/620546/620546_46.pngFresco 发表于 2025-3-29 19:06:46
Frugal Generative Modeling for Tabular Dataerative model is trained so that sampled regions in the feature space contain the same fraction of true and synthetic samples, allowing true and synthetic data distributions to be aligned using a frugal and sound learning criterion. The merits of . in terms of the usual performance indicators (pairwpenance 发表于 2025-3-29 21:58:31
Employing Two-Dimensional Word Embedding for Difficult Tabular Data Stream Classificationcapable of exhibiting the phenomenon of concept drift and having a high imbalance ratio. Consequently, developing new approaches to classifying difficult data streams is a rapidly growing research area. At the same time, the proliferation of deep learning and transfer learning, as well as the succesFrequency 发表于 2025-3-30 03:10:10
http://reply.papertrans.cn/63/6206/620546/620546_49.pngLigament 发表于 2025-3-30 08:03:54
Univariate Skeleton Prediction in Multivariate Systems Using Transformerswith multivariate systems, they often fail to identify the functional form that explains the relationship between each variable and the system’s response. To begin to address this, we propose an explainable neural SR method that generates univariate symbolic skeletons that aim to explain how each va