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A comparison of addressee detection methods for multiparty conversations

机译:对多方对话的收件人检测方法的比较

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摘要

Several algorithms have recently been proposed for recognizing addressees in a group conversational setting. These algorithms can rely on a variety of factors including previous conversational roles, gaze and type of dialogue act. Both statistical supervised machine learning algorithms as well as rule based methods have been developed. In this paper, we compare several algorithms developed for several different genres of muliparty dialogue, and propose a new synthesis algorithm that matches the performance of machine learning algorithms while maintaning the transparancy of semantically meaningfull rule-based algorithms.
机译:最近提出了几种算法,用于在小组对话环境中识别收件人。这些算法可能取决于多种因素,包括以前的对话角色,凝视和对话行为的类型。已经开发了统计监督机器学习算法和基于规则的方法。在本文中,我们比较了针对几种不同类型的多方对话开发的几种算法,并提出了一种新的综合算法,该算法与机器学习算法的性能相匹配,同时保持了语义上有意义的基于规则的算法的透明度。

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