Label Embedding Network: Learning Label Representation for Soft Training of Deep Networks

October 28, 2017 ยท Declared Dead ยท ๐Ÿ› arXiv.org

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Authors Xu Sun, Bingzhen Wei, Xuancheng Ren, Shuming Ma arXiv ID 1710.10393 Category cs.LG: Machine Learning Cross-listed cs.CL, cs.CV Citations 43 Venue arXiv.org Repository https://github.com/lancopku/LabelEmb} Last Checked 1 month ago
Abstract
We propose a method, called Label Embedding Network, which can learn label representation (label embedding) during the training process of deep networks. With the proposed method, the label embedding is adaptively and automatically learned through back propagation. The original one-hot represented loss function is converted into a new loss function with soft distributions, such that the originally unrelated labels have continuous interactions with each other during the training process. As a result, the trained model can achieve substantially higher accuracy and with faster convergence speed. Experimental results based on competitive tasks demonstrate the effectiveness of the proposed method, and the learned label embedding is reasonable and interpretable. The proposed method achieves comparable or even better results than the state-of-the-art systems. The source code is available at \url{https://github.com/lancopku/LabelEmb}.
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