Multilevel dynamics of the brain, hormones, mind, and behavior in social human-robot interaction

具身认知 心理学 机器人 人机交互 社会关系 可信赖性 社会心理学 认知心理学 多级模型 社交机器人 计算机科学 规范(哲学) 行为模式 仿人机器人 警惕(心理学) 独裁者赛局 人机交互 社会行为 行为建模 基于行为的机器人学 鉴定(生物学) 人类行为 行为科学 可靠性(半导体) 人工智能
作者
Yigit Topoglu,Frank Krüeger,Shawn Joshi,Nina Rothstein,Adrian A. Franke,Xingnan Li,Jonathan Gratch,Ewart J. de Visser,Hasan Ayaz
出处
期刊:Science robotics [American Association for the Advancement of Science]
卷期号:11 (116): eaec1762-eaec1762 被引量:1
标识
DOI:10.1126/scirobotics.aec1762
摘要

As robots enter homes, workplaces, and health care settings, sustaining trust during social interaction becomes a central challenge for human-robot interaction. However, relatively little is known about how humans integrate signals across the brain, hormones, mind, and behavior when robots violate expectations or display social expressiveness. Addressing this gap, we examined how robot performance (congruent versus erroneous) and expressiveness (animated versus stationary) shape multilevel human responses during face-to-face decision-making with an embodied humanoid robot. Participants engaged with the robot in person while neural activity was monitored using functional near-infrared spectroscopy, alongside salivary oxytocin assays, self-reported trust, and behavioral influence measures. Robot errors, implemented as cooperative norm violations, reliably reduced trust and influence, establishing performance reliability as the foundation of trust. Expressiveness amplified these effects: Animated robots elicited stronger prefrontal engagement and cross-level neural-hormonal coupling. Elevated oxytocin was most strongly linked to reduced trust during expressive robot errors, alongside diminished behavioral influence. This pattern is consistent with a context-sensitive vigilance response, indicating that oxytocin in human-robot interaction may heighten sensitivity to norm violations rather than reliably promote bonding. Validation analyses provided small, directionally consistent support for this pattern under counterbalanced order and improved temporal separation. Together, these findings establish a multilevel framework for studying trust in human-robot interaction and reveal a critical design trade-off: Expressive design enhances engagement but can make robot errors disproportionately damaging to trust. These insights identify a biologically grounded boundary condition for oxytocin's role in social interaction and inform the design of socially effective and trustworthy robots.
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