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홈
SOTA
Semi Supervised Image Classification
Semi Supervised Image Classification On Cifar 9
Semi Supervised Image Classification On Cifar 9
평가 지표
Percentage error
평가 결과
이 벤치마크에서 각 모델의 성능 결과
Columns
모델 이름
Percentage error
Paper Title
Repository
ReMixMatch
27.43±0.31
ReMixMatch: Semi-Supervised Learning with Distribution Alignment and Augmentation Anchoring
-
CCSSL(FixMatch)
24.3
Class-Aware Contrastive Semi-Supervised Learning
DoubleMatch
27.07± 0.26
DoubleMatch: Improving Semi-Supervised Learning with Self-Supervision
FixMatch+DM
25.88±0.23
-
-
LiDAM
26.50
LiDAM: Semi-Supervised Learning with Localized Domain Adaptation and Iterative Matching
-
ShrinkMatch
25.17
Shrinking Class Space for Enhanced Certainty in Semi-Supervised Learning
NP-Match
26.03
NP-Match: When Neural Processes meet Semi-Supervised Learning
FixMatch (CTA, WRN-28-8)
28.64±0.24
FixMatch: Simplifying Semi-Supervised Learning with Consistency and Confidence
SimMatch
25.07
SimMatch: Semi-supervised Learning with Similarity Matching
FreeMatch
26.47
FreeMatch: Self-adaptive Thresholding for Semi-supervised Learning
Dash (RA, WRN-28-8)
27.18±0.21
Dash: Semi-Supervised Learning with Dynamic Thresholding
-
FixMatch+CR
27.58
Contrastive Regularization for Semi-Supervised Learning
-
FlexMatch
26.49±0.20
FlexMatch: Boosting Semi-Supervised Learning with Curriculum Pseudo Labeling
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