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An Example-Based Approach to Ranking Multiple Dialog States for Flexible Dialog Management

机译:基于示例的对多个对话框状态进行排名的方法,以实现灵活的对话框管理

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This paper presents a new hybrid dialog management framework that integrates a statistical ranking algorithm into an example-based dialog management approach for chat-like dialogs. The proposed model uses ranking features that consider various aspects of dialogs, including the relative importance of speech acts, dialog history sequences, and the causal relationships among speech acts and slot-filling states. The ranking algorithm enables one to aggregate these feature scores systematically and to generate diverse system responses. Additionally, the model provides detailed feedback by analyzing the causal relationships among speech acts and predicting the user's possible intentions associated with a given dialog states. Simulated experimental results demonstrate that our approach is effective for task-oriented dialogs and chat-like dialogs. Additionally, a case study using elementary school students implies that the proposed system can be used for language learning purposes in addition to task-oriented services.
机译:本文提出了一种新的混合对话框管理框架,该框架将统计排名算法集成到了基于示例的类似聊天对话框的对话框管理方法中。所提出的模型使用了考虑对话各个方面的排序特征,包括语音行为的相对重要性,对话历史序列以及语音行为和时隙填充状态之间的因果关系。排名算法使人们能够系统地汇总这些特征评分并生成各种系统响应。另外,该模型通过分析语音行为之间的因果关系并预测与给定对话状态相关的用户可能的意图,提供了详细的反馈。模拟实验结果表明,我们的方法对于面向任务的对话框和类似聊天的对话框是有效的。此外,使用小学生的案例研究表明,除了面向任务的服务之外,所建议的系统还可以用于语言学习。

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