Abstract:In recent years, convolutional neural networks (CNNs) have achieved impressive performance for various visual recognition scenarios.CNNs trained on large labeled datasets can not only obtain significant performance on most challenging benchmarks but also provide powerful representations, which can be used to a wide range of other tasks. However, the requirement of massive amounts of data to train deep neural networks is a major drawback of these models, as the data available is usually limited or imbalanced. F… Show more
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