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Multilingual Dialogue Generation with Shared-Private Memory

机译:具有共享私有内存的多语言对话生成

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Existing dialog systems are all monolingual, where features shared among different languages are rarely explored. In this paper, we introduce a novel multilingual dialogue system. Specifically, we augment the sequence to sequence framework with improved shared-private memory. The shared memory learns common features among different languages and facilitates a cross-lingual transfer to boost dialogue systems, while the private memory is owned by each separate language to capture its unique feature. Experiments conducted on Chinese and English conversation corpora of different scales show that our proposed architecture outperforms the individually learned model with the help of the other language, where the improvement is particularly distinct when the training data is limited.
机译:现有的对话系统是所有单声道系统,其中很少探索不同语言共享的功能。在本文中,我们介绍了一种新颖的多语言对话系统。具体来说,我们增强了与改进的共享私有内存序列框架的序列。共享内存在不同语言之间学习共同的特征,并促进交叉传输来提升对话系统,而私人内存由每个单独的语言拥有以捕获其唯一的功能。对汉语和英语对话的实验不同尺度的Corpora表明,我们的建议在其他语言的帮助下优于单独学习的模型,当训练数据有限时,改善特别明确。

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