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Sketch-Fill-A-R: A Persona-Grounded Chit-Chat Generation Framework

机译:素描 - 填写-A-R:一个角色接地的Chit-聊天生成框架

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Human-like chit-chat conversation requires agents to generate responses that are fluent, engaging and consistent. We propose Sketch-Fill-A-R, a framework that uses a persona-memory to generate chit-chat responses in three phases. First, it generates dynamic sketch responses with open slots. Second, it generates candidate responses by filling slots with parts of its stored persona traits. Lastly, it ranks and selects the final response via a language model score. Sketch-Fill-A-R outperforms a state-of-the-art baseline both quantitatively (10-point lower perplexity) and qualitatively (preferred by 55% in head-to-head single-turn studies and 20% higher in consistency in multi-turn user studies) on the Persona-Chat dataset. Finally, we extensively analyze Sketch-Fill-A-R's responses and human feedback, and show it is more consistent and engaging by using more relevant responses and questions.
机译:人类的Chit-Chat谈话需要代理商生成流利,参与和一致的响应。我们提出草图填充-A-R,这是一个框架,它使用角色内存来生成三个阶段的Chit-Chat响应。首先,它产生带有开放插槽的动态草图响应。其次,它通过将插槽填充其存储的人格性状的部分来生成候选响应。最后,它通过语言模型分数排名并选择最终响应。素描 - 填充-AR优于定量(10点逐渐困惑)和定性(优选的头部单圈研究中的55%的最新基线,并且在多个方面的一致性中较高20%在角色聊天数据集上转动用户学习。最后,我们广泛地分析了素描填充-A-R的回答和人体反馈,并表明它更加一致,通过使用更多相关的响应和问题。

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