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BLISS: An Agent for Collecting Spoken Dialogue data about Health and Well-being

机译:幸福:用于收集有关健康和福祉的口语对话数据的代理人

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An important objective in health-technology is the ability to gather information about people's well-being. Structured interviews can be used to obtain this information, but these are time-consuming and not scalable. Questionnaires provide an alternative way to extract such information, yet they typically lack depth. In this paper, we present our first prototype of the Behaviour-based Language-Interactive Speaking Systems (BLISS), an artificial intelligent agent which intends to automatically discover what makes people happy and healthy. The goal of BLISS is to understand the motivations behind people's happiness by conducting a personalized spoken dialogue based on a happiness model. We built our first prototype of the model to collect 55 spoken dialogues, in which the BLISS agent asked questions to users about their happiness and well-being. Apart from a description of the BLISS architecture, we also provide details about our dataset, which contains mentions of over 120 activities and 100 motivations and is made available for usage.
机译:健康技术的一个重要目标是能够收集有关人民福祉的信息。结构化访谈可用于获取此信息,但这些是耗时而不可扩展的。问卷提供了提取此类信息的替代方法,但它们通常缺乏深度。在本文中,我们展示了我们的第一个原型的基于行为的语言交互式演讲系统(Bliss),一个人工智能代理商,它打算自动发现什么让人幸福和健康。 Bliss的目标是通过基于幸福模型进行个性化的口语对话来了解人们幸福的动机。我们建立了模型的第一个原型,以收集55个口语对话,其中幸福的代理向用户提出了关于他们的幸福和福祉的问题。除了对Bliss架构的描述之外,还提供有关我们数据集的详细信息,其中包含120多个活动和100个动机的提到,并提供使用。

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