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SOTA
외부 분포 검출
Out Of Distribution Detection On Imagenet 1K 12
Out Of Distribution Detection On Imagenet 1K 12
평가 지표
AUROC
FPR95
평가 결과
이 벤치마크에서 각 모델의 성능 결과
Columns
모델 이름
AUROC
FPR95
Paper Title
Repository
MOS (BiT-S-R101x1)
90.11
39.97
MOS: Towards Scaling Out-of-distribution Detection for Large Semantic Space
-
ASH-S (ResNet-50)
95.12
22.8
Extremely Simple Activation Shaping for Out-of-Distribution Detection
-
NPOS
91.22
37.93
Non-Parametric Outlier Synthesis
-
LINe (ResNet-50)
95.03
20.70
LINe: Out-of-Distribution Detection by Leveraging Important Neurons
-
NNGuide (RegNet)
95.42
17.97
Nearest Neighbor Guidance for Out-of-Distribution Detection
-
RP+GradNorm
-
70.12
Detecting Out-of-distribution Data through In-distribution Class Prior
DOE
83.54
59.83
Out-of-distribution Detection with Implicit Outlier Transformation
-
DML
-
54.74
Decoupling MaxLogit for Out-of-Distribution Detection
-
SCALE (ResNet50)
95.71
20.05
Scaling for Training Time and Post-hoc Out-of-distribution Detection Enhancement
-
RankFeat (ResNetv2-101)
92.15
36.8
RankFeat: Rank-1 Feature Removal for Out-of-distribution Detection
-
MOOD
89.1
-
Rethinking Out-of-distribution (OOD) Detection: Masked Image Modeling is All You Need
-
ODIN+UMAP (ResNet-50)
89.24
40.94
Unleashing Mask: Explore the Intrinsic Out-of-Distribution Detection Capability
-
NNGuide (ResNet50 w/ ReAct)
95.45
19.72
Nearest Neighbor Guidance for Out-of-Distribution Detection
-
DICE + ReAct (ResNet-50)
93.4
27.25
DICE: Leveraging Sparsification for Out-of-Distribution Detection
-
BATS (ResNet-50)
94.28
27.11
Boosting Out-of-distribution Detection with Typical Features
-
MCM (CLIP-L)
91.49
38.17
Delving into Out-of-Distribution Detection with Vision-Language Representations
-
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Out Of Distribution Detection On Imagenet 1K 12 | SOTA | HyperAI초신경