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Supervised Anomaly Detection

In the training set, the amount of abnormal samples is limited and significant fewer than normal samples, producing data distributions that lead to a naturally imbalanced learning problem.

Papers

Showing 8190 of 155 papers

TitleStatusHype
Future Video Prediction from a Single Frame for Video Anomaly Detection0
End-to-End Augmentation Hyperparameter Tuning for Self-Supervised Anomaly Detection0
Industrial Anomaly Detection and Localization Using Weakly-Supervised Residual Transformers0
AnoOnly: Semi-Supervised Anomaly Detection with the Only Loss on AnomaliesCode0
AnoRand: A Semi Supervised Deep Learning Anomaly Detection Method by Random Labeling0
Reconstruction Error-based Anomaly Detection with Few Outlying Examples0
Self-Supervised Anomaly Detection of Rogue Soil Moisture Sensors0
Weakly-Supervised Anomaly Detection in the Milky WayCode0
Weakly Supervised Detection of Baby Cry0
Few-shot Weakly-supervised Cybersecurity Anomaly Detection0
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