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ホーム
SOTA
異常検出
Anomaly Detection On One Class Cifar 10
Anomaly Detection On One Class Cifar 10
評価指標
AUROC
評価結果
このベンチマークにおける各モデルのパフォーマンス結果
Columns
モデル名
AUROC
Paper Title
Repository
CLIP (OE)
99.6
Exposing Outlier Exposure: What Can Be Learned From Few, One, and Zero Outlier Images
GeneralAD
99.3
GeneralAD: Anomaly Detection Across Domains by Attending to Distorted Features
Fake It Till You Make It
99.1
Fake It Till You Make It: Towards Accurate Near-Distribution Novelty Detection
BLISS
99.1
When Text and Images Don't Mix: Bias-Correcting Language-Image Similarity Scores for Anomaly Detection
-
PANDA-OE
98.9
PANDA: Adapting Pretrained Features for Anomaly Detection and Segmentation
Mean-Shifted Contrastive Loss
98.6
Mean-Shifted Contrastive Loss for Anomaly Detection
CLIP (zero shot)
98.5
Exposing Outlier Exposure: What Can Be Learned From Few, One, and Zero Outlier Images
DINO-FT
98.4
Anomaly Detection Requires Better Representations
Transformaly
98.3
Transformaly -- Two (Feature Spaces) Are Better Than One
CAP
97.0
Constrained Adaptive Projection with Pretrained Features for Anomaly Detection
PANDA
96.2
PANDA: Adapting Pretrained Features for Anomaly Detection and Segmentation
CSI
94.3
CSI: Novelty Detection via Contrastive Learning on Distributionally Shifted Instances
DUIAD
92.6
Deep Unsupervised Image Anomaly Detection: An Information Theoretic Framework
-
DN2
92.5
Deep Nearest Neighbor Anomaly Detection
-
DisAug CLR
92.5
Learning and Evaluating Representations for Deep One-class Classification
FCDD
92
Explainable Deep One-Class Classification
IGD (pre-trained SSL)
91.25
Deep One-Class Classification via Interpolated Gaussian Descriptor
GAN based Anomaly Detection in Imbalance Problems
90.6
GAN-based Anomaly Detection in Imbalance Problems
-
SSOOD
90.1
Using Self-Supervised Learning Can Improve Model Robustness and Uncertainty
SSD
90.0
SSD: A Unified Framework for Self-Supervised Outlier Detection
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