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Towards Generating Stylistic Dialogues for Narratives Using Data-Driven Approaches

机译:致力于使用数据驱动的方法为叙事生成文体对话

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Recently, there has been a renewed interest in generating dialogues for narratives. Within narrative dialogues, their structure and content are essential, though style holds an important role as a mean to express narrative dialogue through telling stories. Most existing approaches of narrative dialogue generation tend to leverage handcrafted rules and linguistic-level styles, which lead to limitations in their expressivity and issues with scalability. We aim to investigate the potential of generating more stylistic dialogues within the context of narratives. To reach this, we propose a new approach and demonstrate its feasibility through the support of deep learning. We also describe this approach using examples, where story-level features are analysed and modelled based on a classification of characters and genres.
机译:最近,人们对叙事对话产生了新的兴趣。在叙事对话中,其结构和内容至关重要,尽管风格在通过讲故事来表达叙事对话中起着重要作用。叙事对话生成的大多数现有方法都倾向于利用手工制定的规则和语言级别的样式,这会限制其表达能力和可伸缩性问题。我们旨在调查在叙事语境下产生更多风格对话的潜力。为此,我们提出了一种新方法,并通过深度学习的支持证明了其可行性。我们还将使用示例来描述这种方法,其中基于人物和流派的分类来分析和建模故事级功能。

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