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Reinforcement Learning of Cooperative Persuasive Dialogue Policies using Framing

机译:使用框架加强合作性说服性对话政策的学习

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In this paper, we apply reinforcement learning for automatically learning cooperative persuasive dialogue system policies using framing, the use of emotionally charged statements common in persuasive dialogue between humans. In order to apply reinforcement learning, we describe a method to construct user simulators and reward functions specifically tailored to persuasive dialogue based on a corpus of persuasive dialogues between human interlocutors. Then, we evaluate the learned policy and the effect of framing through experiments both with a user simulator and with real users. The experimental evaluation indicates that applying reinforcement learning is effective for construction of cooperative persuasive dialogue systems which use framing.
机译:在本文中,我们将强化学习应用于利用框架自动学习合作性说服性对话系统策略的方法,即使用人与人之间的说服性对话中常见的带有感情色彩的陈述。为了应用强化学习,我们描述了一种基于人类对话者之间的说服性对话的语料库来构建专门针对说服性对话的用户模拟器和奖励功能的方法。然后,我们通过使用用户模拟器和真实用户进行的实验来评估学习的策略和取景的效果。实验评估表明,应用强化学习对于构建使用框架的有说服力的对话系统非常有效。

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