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首页> 外文期刊>Natural language engineering >Learning effective and engaging strategies for advice-giving human-machine dialogue
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Learning effective and engaging strategies for advice-giving human-machine dialogue

机译:学习有效的,引人入胜的策略,以提供建议的人机对话

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摘要

We describe a system that automatically learns effective and engaging dialogue strategies, generated from a library of dialogue content, using reinforcement learning from user feedback. Besides the more usual clarification and verification components of dialogue, this library contains various social elements like greetings, apologies, small talk, relational questions and jokes. We tested the method through an experimental dialogue system that encourages take-up of exercise and shows that the learned dialogue policy performs as well as one built by human experts for this system.
机译:我们描述了一种系统,该系统使用从用户反馈中获得的强化学习,自动学习从对话内容库中生成的有效且引人入胜的对话策略。除了更常见的对话澄清和验证组件外,该库还包含各种社交元素,例如问候,道歉,闲聊,关系性问题和笑话。我们通过一个实验性的对话系统对这种方法进行了测试,该系统鼓励锻炼,并表明所学的对话策略与人类专家为该系统建立的对话策略一样有效。

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  • 来源
    《Natural language engineering》 |2009年第3期|355-378|共24页
  • 作者单位

    Textkernel BV, Nieuwendammerkade 28/a17, 1022 AB Amsterdam, NL;

    Unilever Corporate Research, Colworth House, Sharnbrook, Bedford, UK MK44 1LQ;

    Textkernel BV, Nieuwendammerkade 28/a17, 1022 AB Amsterdam, NL;

    Textkernel BV, Nieuwendammerkade 28/al7, 1022 AB Amsterdam, NL;

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