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- W2576156961 abstract "Automatic classification of foods is a challenging problem. Results on ImageNet dataset shows that ConvNets are very powerful in modeling natural objects. Nonetheless, it is not trivial to train a ConvNet from scratch for classification of foods. This is due to the fact that ConvNets require large datasets and to our knowledge there is not a large public dataset of foods for this purpose. An alternative solution is to transfer knowledge from already trained ConvNets. In this work, we study how transferable are state-of-art ConvNets to classification of foods. We also propose a method for transferring knowledge from a bigger ConvNet to a smaller ConvNet without decreasing the accuracy. Our experiments on UECFood256 dataset show that state-of-art networks produce comparable results if we start transferring knowledge from an appropriate layer. In addition, we show that our method is able to effectively transfer knowledge to a smaller ConvNet using unlabeled samples." @default.
- W2576156961 created "2017-01-26" @default.
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- W2576156961 date "2016-01-01" @default.
- W2576156961 modified "2023-10-18" @default.
- W2576156961 title "Training a Mentee Network by Transferring Knowledge from a Mentor Network" @default.
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- W2576156961 doi "https://doi.org/10.1007/978-3-319-49409-8_42" @default.
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