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Training a Mentee Network by Transferring Knowledge from a Mentor Network

机译:通过从导师网络传递知识来培训导师网络

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摘要

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 Con-vNet 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.
机译:食品的自动分类是一个具有挑战性的问题。 ImageNet数据集上的结果表明,ConvNet在建模自然对象方面非常强大。但是,从头开始训练Con-vNet进行食品分类并非易事。这是因为ConvNets需要大量数据集,而据我们所知,没有大型的公共食品数据集可用于此目的。另一种解决方案是从已经训练有素的ConvNets转移知识。在这项工作中,我们研究了最先进的ConvNets如何可转换为食品分类。我们还提出了一种在不降低准确性的情况下将知识从较大的ConvNet转移到较小的ConvNet的方法。我们在UECFood256数据集上的实验表明,如果我们开始从适当的层转移知识,那么最新的网络将产生可比的结果。此外,我们证明了我们的方法能够使用未标记的样本将知识有效地转移到较小的ConvNet中。

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