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Detecting Action Items in Multi-party Meetings: Annotation and Initial Experiments

机译:检测多方会议中的行动项目:注释和初​​始实验

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This paper presents the results of initial investigation and experiments into automatic action item detection from transcripts of multi-party human-human meetings. We start from the flat action item annotations of [1], and show that automatic classification performance is limited. We then describe a new hierarchical annotation schema based on the roles utterances play in the action item assignment process, and propose a corresponding approach to automatic detection that promises improved classification accuracy while also enabling the extraction of useful information for summarization and reporting.
机译:本文介绍了初步调查和实验的结果,进入多方人为会议的成绩单中的自动行动项目检测。我们从平面动作项目开始[1]的注释,并显示自动分类性能有限。然后,我们基于作用项目分配过程中的角色播放的角色播放的新分层注释模式,并提出了一种相应的自动检测方法,其承诺提高了分类准确性,同时还能够提取有用信息来汇总和报告。

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