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Statistical Response Method and Learning Data Acquisition using Gamified Crowdsourcing for a Non-task-oriented Dialogue Agent

机译:面向非任务的对话代理的游戏化众包统计响应方法和学习数据获取

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This paper presents a proposal of a construction method for non-task-oriented dialogue agents (chatbots) that are based on the statistical response method. The method prepares candidate utterances in advance. From the data, it learns which utterances are suitable for context. Therefore, a dialogue agent constructed using our method automatically selects a suitable utterance depending on a context from candidate utterances. This paper also proposes a low-cost quality-assured method of learning data acquisition for the proposed response method. The method uses crowdsourcing and brings game mechanics to data acquisition. Results of an experiment using learning data obtained using the proposed data acquisition method demonstrate that the appropriate utterance is selected with high accuracy.
机译:本文提出了一种基于统计响应方法的面向非任务的对话代理(聊天机器人)的构造方法的建议。该方法预先准备候选话语。从数据中,它可以了解哪些话语适合于上下文。因此,使用我们的方法构造的对话代理会根据上下文从候选话语中自动选择合适的话语。本文还针对提出的响应方法提出了一种低成本的质量保证的学习数据获取方法。该方法使用众包,并将游戏机制带入数据获取。使用通过提出的数据获取方法获得的学习数据进行的实验结果表明,可以以较高的准确度选择适当的语音。

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