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Image Classification On Clothing1M Using

评估指标

Accuracy

评测结果

各个模型在此基准测试上的表现结果

模型名称
Accuracy
Paper TitleRepository
CleanNet w_soft79.90CleanNet: Transfer Learning for Scalable Image Classifier Training with Label Noise-
DMLP-DivideMix78.23%Learning from Noisy Labels with Decoupled Meta Label Purifier-
Forward80.27Making Deep Neural Networks Robust to Label Noise: a Loss Correction Approach-
FasTEN77.83%Learning with Noisy Labels by Efficient Transition Matrix Estimation to Combat Label Miscorrection-
L2B (ResNet-18)77.5 ± 0.2%L2B: Learning to Bootstrap Robust Models for Combating Label Noise-
MLC75.78%Meta Label Correction for Noisy Label Learning-
CurriculumNet81.5%CurriculumNet: Weakly Supervised Learning from Large-Scale Web Images-
EMLC (k=1)79.35%Enhanced Meta Label Correction for Coping with Label Corruption-
PUDistill77.70Training Classifiers that are Universally Robust to All Label Noise Levels-
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