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Detecting Address Estimation Errors from Users' Reactions in Multi-user Agent Conversation

机译:在多用户代理会话中从用户的反应中检测地址估计错误

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Nowadays, embodied conversational agents are gradually getting deployed in real-world applications like the guides in museums or exhibitions. In these applications, it is necessary for the agent to identify the addressee of each user utterance to deliberate appropriate responses in interacting with visitor groups. However, as long as the addressee identification mechanism is not completely correct, the agent makes error in its responses. Once there is an error, the agent's hypothesis collapses and the following decision-making path may go to a totally different direction. We are working on developing the mechanism to detect the error from the users' reactions and the mechanism to recover the error. This paper presents the first step, a method to detect laughing, surprises, and confused facial expressions after the agent's wrong responses. This method is machine learning base with the data (user reactions) collected in a WOZ (Wizard of Oz) experiment and reached an accuracy over 90%.
机译:如今,具体化的对话代理正逐渐部署在现实应用中,例如博物馆或展览馆的指南。在这些应用中,代理有必要识别每个用户话语的收件人,以便在与访问者组交互时考虑适当的响应。但是,只要收件人标识机制不完全正确,代理就会在其响应中出错。一旦出现错误,主体的假设就会崩溃,随后的决策路径可能会朝着完全不同的方向发展。我们正在开发从用户的反应中检测错误的机制以及恢复错误的机制。本文介绍了第一步,一种在代理人的错误响应后检测笑,惊奇和困惑的面部表情的方法。该方法是机器学习的基础,其中包含在WOZ(绿野仙踪)实验中收集的数据(用户反应),并且准确性超过90%。

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