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홈
SOTA
이상치 탐지
Anomaly Detection On One Class Cifar 10
Anomaly Detection On One Class Cifar 10
평가 지표
AUROC
평가 결과
이 벤치마크에서 각 모델의 성능 결과
Columns
모델 이름
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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