汇集多模式和多层次方法,研究儿童之间社会纽带的形成,改进社会人工智能

Julie Bonnaire, Guillaume Dumas, Justine Cassell
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摘要

这篇协议论文概述了一种创新的多模态和多层次方法,用于研究儿童如何与同伴建立社会纽带的出现和演变,及其在改进社会人工智能(AI)方面的潜在应用。我们详细介绍了一种独特的超扫描实验框架,该框架利用功能性近红外光谱(fNIRS)来观察儿童在协作任务和社交互动过程中的大脑间同步性。我们提出的纵向研究横跨儿童中期,旨在捕捉自然环境中社会联系和认知参与的动态发展。为此,我们汇集了四种数据:儿童二人组的多模态会话行为、他们人际关系融洽程度的证据、教育任务中的协作表现以及脑间同步性。初步试验数据为我们的方法提供了基础支持,为识别与富有成效的社会互动相关的神经模式指明了方向。计划中的研究将探索社会纽带形成的神经相关性,为在社会神经经济学领域创建虚拟同伴学习伙伴提供信息。该方案有望为了解儿童社交连接的神经基础做出重大贡献,同时也为设计富有同情心和有效的社交人工智能工具(尤其是教育环境)提供了蓝图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bringing together multimodal and multilevel approaches to study the emergence of social bonds between children and improve social AI
This protocol paper outlines an innovative multimodal and multilevel approach to studying the emergence and evolution of how children build social bonds with their peers, and its potential application to improving social artificial intelligence (AI). We detail a unique hyperscanning experimental framework utilizing functional near-infrared spectroscopy (fNIRS) to observe inter-brain synchrony in child dyads during collaborative tasks and social interactions. Our proposed longitudinal study spans middle childhood, aiming to capture the dynamic development of social connections and cognitive engagement in naturalistic settings. To do so we bring together four kinds of data: the multimodal conversational behaviors that dyads of children engage in, evidence of their state of interpersonal rapport, collaborative performance on educational tasks, and inter-brain synchrony. Preliminary pilot data provide foundational support for our approach, indicating promising directions for identifying neural patterns associated with productive social interactions. The planned research will explore the neural correlates of social bond formation, informing the creation of a virtual peer learning partner in the field of Social Neuroergonomics. This protocol promises significant contributions to understanding the neural basis of social connectivity in children, while also offering a blueprint for designing empathetic and effective social AI tools, particularly for educational contexts.
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