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Annotating Coherence Relations for Studying Topic Transitions in Social Talk

机译:注释学习主题转型在社交谈话中的一致性关系

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This study develops the strand of research on topic transitions in social talk which aims to gain a better understanding of interlocutors' conversational goals. Luu and Malamud (2020) proposed that one way to identify such transitions is to annotate coherence relations, and then to identify utterances potentially expressing new topics as those that fail to participate in these relations. This work validates and refines their suggested annotation methodology, focusing on annotating most prominent coherence relations in face-to-face social dialogue. The result is a publicly accessible gold standard corpus with efficient and reliable annotation, whose broad coverage provides a foundation for future steps of identifying and classifying new topic utterances.
机译:本研究开发了对社会谈话中主题过渡的研究束缚,旨在更好地了解对话者的会话目标。 鲁乌和马拉曼(2020年)提出了一种识别这种转型的一种方法是给予一致性关系,然后识别可能表达新主题的话语,因为那些未能参加这些关系的话题。 这项工作验证和改进了他们建议的注释方法,重点是在面对面的社会对话中注释最突出的一致性关系。 结果是具有高效可靠的诠释的公开可访问的黄金标准语料库,其广泛的覆盖范围为未来步骤提供了识别和分类新主题话语的基础。

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