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Problematic Situation Analysis and Automatic Recognition for Chinese Online Conversational System

机译:中文在线会话系统的问题情境分析与自动识别

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Automatic problematic situation recognition (PSR) is important for an online conversational system to constantly improve its performance. A PSR module is responsible of automatically identifying users' un-satisfactions and then sending feedbacks to conversation managers. In this paper, we collect dialogues from a Chinese online chatbot, annotate the problematic situations and propose a framework to predict utterance-level problematic situations by integrating intent and sentiment factors. Different from previous work, the research field is set as open-domain in which very few domain specific textual features could be used and the method is easy to be adapted to other domains. Experimental results show that integrating both intent and sentiment factors gains the best performance.
机译:自动问题态势识别(PSR)对于在线对话系统不断提高其性能非常重要。 PSR模块负责自动识别用户的不满意,然后将反馈发送给对话管理器。在本文中,我们收集了来自中国在线聊天机器人的对话,对有问题的情况进行注释,并提出了一个通过整合意图和情感因素来预测话语级别有问题的情况的框架。与以前的工作不同,该研究领域被设置为开放域,在开放域中可以使用很少的特定领域的文本特征,并且该方法易于适应其他领域。实验结果表明,整合意向和情感因素可以获得最佳性能。

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