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Online adaptation of dialog strategies based on probabilistic planning

机译:基于概率计划的在线对话策略调整

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In this paper, a dialog modeling approach for long-term interaction between a service robot and a single user is presented, which enables a user-adaptive interaction behavior of the robot. Central element of the dialog system is a probabilistic model of the user's reactions to the robot's behavior, which is learned online and used for a probabilistic planning process based on message passing in a dynamic factor graph. The suggested approach has been applied to implement a complex application on a mobile service robot, which has been tested in a 10 day evaluation study with 16 users in order to get a feedback on usability of the interaction design, adaptation skills, and feasibility of a rapid application development. Results and findings of that study are presented here briefly.
机译:在本文中,提出了一种对话模型建模方法,用于服务机器人和单个用户之间的长期交互,它使机器人能够实现用户自适应的交互行为。对话系统的核心元素是用户对机器人行为的反应的概率模型,该模型可在线学习并用于基于动态因子图中传递的消息的概率计划过程。建议的方法已应用于在移动服务机器人上实现复杂的应用程序,该应用程序已在为期10天的评估研究中与16个用户进行了测试,目的是获得有关交互设计的可用性,适应技能和开发可行性的反馈。快速的应用开发。该研究的结果和发现在这里简要介绍。

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