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Like hiking? You probably enjoy nature: Persona-grounded Dialog with Commonsense Expansions

机译:喜欢徒步旅行吗?您可能享受大自然:具有致辞扩展的人物接地对话

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Existing persona-grounded dialog models often fail to capture simple implications of given persona descriptions, something which humans are able to do seamlessly. For example, state-of-the-art models cannot infer that interest in hiking might imply love for nature or longing for a break. In this paper, we propose to expand available persona sentences using existing commonsense knowledge bases and paraphrasing resources to imbue dialog models with access to an expanded and richer set of persona descriptions. Additionally, we introduce fine-grained grounding on personas by encouraging the model to make a discrete choice among persona sentences while synthesizing a dialog response. Since such a choice is not observed in the data, we model it using a discrete latent random variable and use variational learning to sample from hundreds of persona expansions. Our model outperforms competitive baselines on the PERSONA-CHAT dataset in terms of dialog quality and diversity while achieving persona-consistent and controllable dialog generation.
机译:现有的角色接地对话模式往往不能给出捕捉人物角色描述,一些东西,人类能够无缝地做的简单意义。例如,国家的最先进的模型不能推断远足可能意味着对自然或渴望休息爱的兴趣。在本文中,我们提出使用现有的常识性的知识基础和意译资源灌输对话机型获得扩展和更加丰富的人物角色描述的扩展了可用角色的句子。此外,我们鼓励模型,使人物的句子之间的离散选择,而合成对话响应引入的角色细粒度接地。由于这样的选择未在数据中观察到,我们使用离散潜随机变量模型,并从数百角色扩展的使用变分学习样本。我们的模型优于上PERSONA聊天数据集有竞争力的基线对话框质量和同时实现角色一致的和可控的对话生成多样性方面。

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