Papers › Novel Class Discovery for Long-tailed Recognition

Novel Class Discovery for Long-tailed Recognition

6 Aug 2023arXiv:2308.02989archive 2025-07-28

Chuyu Zhang, Ruijie Xu, Xuming He

While the novel class discovery has recently made great progress, existing methods typically focus on improving algorithms on class-balanced benchmarks. However, in real-world recognition tasks, the class distributions of their corresponding datasets are often imbalanced, which leads to serious performance degeneration of those methods. In this paper, we consider a more realistic setting for novel class discovery where the distributions of novel and known classes are long-tailed. One main challenge of this new problem is to discover imbalanced novel classes with the help of long-tailed known classes. To tackle this problem, we propose an adaptive self-labeling strategy based on an equiangular prototype representation of classes. Our method infers high-quality pseudo-labels for the novel classes by solving a relaxed optimal transport problem and effectively mitigates the class biases in learning the known and novel classes. We perform extensive experiments on CIFAR100, ImageNet100, Herbarium19 and large-scale iNaturalist18 datasets, and the results demonstrate the superiority of our method. Our code is available at https://github.com/kleinzcy/NCDLR.

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test_kmeans_for_scipy kleinzcy/ncdlr/estimate_k.py official repository unverified no licence file found · pointer only · 5d7cbdf717723b30 · report
vit_small_patch2_32 kleinzcy/ncdlr/nets/vit.py official repository unverified no licence file found · pointer only · d1efab158e27cd4f · report
vit_tiny_patch2_32 kleinzcy/ncdlr/nets/vit.py official repository unverified no licence file found · pointer only · c5b3bf3764a82cec · report

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Novel Class Discovery

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