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A Conditional Variational Framework for Dialog Generation

机译:对话框生成的条件变量框架

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Deep latent variable models have been shown to facilitate the response generation for open-domain dialog systems. However, these latent variables are highly randomized, leading to uncontrollable generated responses. In this paper, we propose a framework allowing conditional response generation based on specific attributes. These attributes can be either manually assigned or automatically detected. Moreover, the dialog states for both speakers are modeled separately in order to reflect personal features. We validate this framework on two different scenarios, where the attribute refers to genericness and sentiment states respectively. The experiment result testified the potential of our model, where meaningful responses can be generated in accordance with the specified attributes.
机译:已经显示了深潜变量模型来促进开放域对话系统的响应生成。但是,这些潜在变量是高度随机的,导致无法控制的生成响应。在本文中,我们提出了一个允许基于特定属性生成条件响应的框架。这些属性可以手动分配或自动检测。此外,两个扬声器的对话状态分别建模,以反映个人特征。我们在两种不同的情况下验证该框架,其中属性分别指通用性和情感状态。实验结果证明了我们模型的潜力,其中可以根据指定的属性生成有意义的响应。

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