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Papers/Self-Supervised Class-Cognizant Few-Shot Classification

Self-Supervised Class-Cognizant Few-Shot Classification

Ojas Kishore Shirekar, Hadi Jamali-Rad

2022-02-15Unsupervised Few-Shot Image ClassificationContrastive LearningRe-RankingClassification
PaperPDFCode(official)

Abstract

Unsupervised learning is argued to be the dark matter of human intelligence. To build in this direction, this paper focuses on unsupervised learning from an abundance of unlabeled data followed by few-shot fine-tuning on a downstream classification task. To this aim, we extend a recent study on adopting contrastive learning for self-supervised pre-training by incorporating class-level cognizance through iterative clustering and re-ranking and by expanding the contrastive optimization loss to account for it. To our knowledge, our experimentation both in standard and cross-domain scenarios demonstrate that we set a new state-of-the-art (SoTA) in (5-way, 1 and 5-shot) settings of standard mini-ImageNet benchmark as well as the (5-way, 5 and 20-shot) settings of cross-domain CDFSL benchmark. Our code and experimentation can be found in our GitHub repository: https://github.com/ojss/c3lr.

Results

TaskDatasetMetricValueModel
Image ClassificationMini-Imagenet 5-way (1-shot)Accuracy47.92C^3LR
Image ClassificationMini-Imagenet 5-way (5-shot)Accuracy64.81C^3LR
Few-Shot Image ClassificationMini-Imagenet 5-way (1-shot)Accuracy47.92C^3LR
Few-Shot Image ClassificationMini-Imagenet 5-way (5-shot)Accuracy64.81C^3LR

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