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Topic Aware Context Modelling for Dialogue Response Generation

机译:主题了解对话响应生成的上下文建模

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Response generation is an important direction in conversation systems. Currently a lot of approaches have been proposed and achieved significant improvement. However, an important limitation has been widely realized as most models tend to generate general answers. To cope with this limitation, besides the needs of more sophisticated generation models, how to use extra information is also an important direction. In this research, inspired by the importance of topics in conversation, we proposed a topic aware context modelling framework by utilizing similar question answer pairs in the repository. Furthermore, we use adversarial learning to improve the quality of generated response. The experimental study has shown the propose framework's potential.
机译:响应生成是对话系统中的重要方向。目前已经提出了许多方法,并取得了重大改善。然而,由于大多数模型倾向于产生一般答案,这一重要限制已被广泛实现。为了应对这个限制,除了需要更复杂的生成模型的需求,如何使用额外信息也是一个重要的方向。在这项研究中,灵感来自对话中主题的重要性,我们通过利用存储库中的类似问题对对提出了一个主题了解的上下文建模框架。此外,我们使用对抗性学习来提高产生的响应的质量。实验研究表明了提议框架的潜力。

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