2023
DOI: 10.48550/arxiv.2302.01507
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Revisiting Long-tailed Image Classification: Survey and Benchmarks with New Evaluation Metrics

Abstract: Recently, long-tailed image classification harvests lots of research attention, since the data distribution is long-tailed in many real-world situations. Piles of algorithms are devised to address the data imbalance problem by biasing the training process towards less frequent classes. However, they usually evaluate the performance on a balanced testing set or multiple independent testing sets having distinct distributions with the training data. Considering the testing data may have arbitrary distributions, e… Show more

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