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Training a Mentee Network by Transferring Knowledge from a Mentor Network

机译:通过从导师网络转移知识来培训辅导网

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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:自动分类食物是一个具有挑战性的问题。成果上的结果数据集显示CoundNets在建模自然对象中非常强大。尽管如此,从划痕中训练Con-VNet以进行食物的分类并不重要。这是由于扫描仪需要大型数据集以及我们的知识,因此没有为此目的大公共数据集。另一种解决方案是从已经训练的扫描器转移知识。在这项工作中,我们研究了如何转让是最先进的哀悼,以分类食物。我们还提出了一种将知识从更大的ConvNet转移到较小的ConvNet的方法,而不会降低准确性。我们在UECFood256数据集上的实验表明,如果我们开始从适当的层传输知识,则可以生成可比结果。此外,我们表明我们的方法能够使用未标记的样本将知识转移到较小的ConvNet。

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