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212 results on '"Pang, Guansong"'

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1. Weakly Supervised Video Anomaly Detection and Localization with Spatio-Temporal Prompts

2. Cluster-Wide Task Slowdown Detection in Cloud System

3. OpenCIL: Benchmarking Out-of-Distribution Detection in Class-Incremental Learning

4. Self-Supervised Spatial-Temporal Normality Learning for Time Series Anomaly Detection

5. Zero-Shot Out-of-Distribution Detection with Outlier Label Exposure

6. Harnessing Collective Structure Knowledge in Data Augmentation for Graph Neural Networks

7. Imbalanced Graph Classification with Multi-scale Oversampling Graph Neural Networks

8. Learning Feature Inversion for Multi-class Anomaly Detection under General-purpose COCO-AD Benchmark

9. Graph Continual Learning with Debiased Lossless Memory Replay

10. Learning Transferable Negative Prompts for Out-of-Distribution Detection

11. CoLeCLIP: Open-Domain Continual Learning via Joint Task Prompt and Vocabulary Learning

12. Toward Generalist Anomaly Detection via In-context Residual Learning with Few-shot Sample Prompts

13. Generative Semi-supervised Graph Anomaly Detection

14. A Survey on Visual Anomaly Detection: Challenge, Approach, and Prospect

15. Out-of-Distribution Detection in Long-Tailed Recognition with Calibrated Outlier Class Learning

16. Simple Image-level Classification Improves Open-vocabulary Object Detection

17. Unraveling the `Anomaly' in Time Series Anomaly Detection: A Self-supervised Tri-domain Solution

18. Open-Set Graph Anomaly Detection via Normal Structure Regularisation

19. Open-Vocabulary Video Anomaly Detection

20. AnomalyCLIP: Object-agnostic Prompt Learning for Zero-shot Anomaly Detection

21. Anomaly Heterogeneity Learning for Open-set Supervised Anomaly Detection

22. LARA: A Light and Anti-overfitting Retraining Approach for Unsupervised Time Series Anomaly Detection

23. Unsupervised Recognition of Unknown Objects for Open-World Object Detection

24. HRGCN: Heterogeneous Graph-level Anomaly Detection with Hierarchical Relation-augmented Graph Neural Networks

25. VadCLIP: Adapting Vision-Language Models for Weakly Supervised Video Anomaly Detection

26. RoSAS: Deep Semi-Supervised Anomaly Detection with Contamination-Resilient Continuous Supervision

27. Learning Adversarial Semantic Embeddings for Zero-Shot Recognition in Open Worlds

28. Graph-level Anomaly Detection via Hierarchical Memory Networks

29. Self-Supervised Learning for Time Series Analysis: Taxonomy, Progress, and Prospects

30. Truncated Affinity Maximization: One-class Homophily Modeling for Graph Anomaly Detection

31. Glocal Energy-based Learning for Few-Shot Open-Set Recognition

32. Unsupervised Anomaly Detection in Medical Images with a Memory-Augmented Multi-level Cross-Attentional Masked Autoencoder

33. Anomaly Detection under Distribution Shift

34. Background Matters: Enhancing Out-of-distribution Detection with Domain Features

35. Affinity Uncertainty-based Hard Negative Mining in Graph Contrastive Learning

36. Subgraph Centralization: A Necessary Step for Graph Anomaly Detection

37. Cross-Domain Graph Anomaly Detection via Anomaly-aware Contrastive Alignment

38. Residual Pattern Learning for Pixel-wise Out-of-Distribution Detection in Semantic Segmentation

39. Calibrated One-class Classification for Unsupervised Time Series Anomaly Detection

40. Deep Isolation Forest for Anomaly Detection

42. Catching Both Gray and Black Swans: Open-set Supervised Anomaly Detection

43. Unsupervised Anomaly Detection in Medical Images with a Memory-augmented Multi-level Cross-attentional Masked Autoencoder

44. Contrastive Transformer-based Multiple Instance Learning for Weakly Supervised Polyp Frame Detection

45. Deep Learning for Hate Speech Detection: A Comparative Study

46. Deep Graph-level Anomaly Detection by Glocal Knowledge Distillation

47. Pixel-wise Energy-biased Abstention Learning for Anomaly Segmentation on Complex Urban Driving Scenes

48. Self-supervised Pseudo Multi-class Pre-training for Unsupervised Anomaly Detection and Segmentation in Medical Images

49. Explainable Deep Few-shot Anomaly Detection with Deviation Networks

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