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Quantifying Behavioral Mimicry by Automatic Detection of Nonverbal Cues from Body Motion

机译:通过自动检测身体运动自动检测非语言线索的行为模拟

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Effective leadership can increase team performance, however the underlying micro-level behaviors that support team performance are still unclear. At the same time, traditional behavioral observation methods rely on manual video annotation which is a time consuming and costly process. In this work, we employ wearable motion sensors to automatically extract nonverbal cues from body motion. We utilize activity recognition methods to detect relevant nonverbal cues such as head nodding, gesticulating and posture changes. Further, we combine the detected individual cues to quantify behavioral mimicry between interaction partners. We evaluate our methods on data that was acquired during a psychological experiment in which 55 groups of three persons worked on a decision-making task. Group leaders were instructed to either lead with individual consideration orin an authoritarian way. We demonstrate that nonverbal cues can be detected with a F1-measure between 56% and 100%. Moreover, we show how our methods can highlight nonverbal behavioral differences of the two leadership styles. Our findings suggest that individually considerate leaders mimic head nods of their followers twice as often and that their face touches are mimicked three times as often by their followers when compared with authoritarian leaders.
机译:有效的领导能力可以增加团队绩效,但支持团队表现的潜在的微观行为仍然不明确。与此同时,传统的行为观测方法依赖于手动视频注释,这是耗时和昂贵的过程。在这项工作中,我们使用可穿戴运动传感器来自动从身体运动中提取非语言提示。我们利用活动识别方法来检测相关非语言提示,如头部点头,手势和姿势变化。此外,我们组合了检测到的单个提示来量化交互伙伴之间的行为模拟。我们评估我们在心理实验期间获得的数据的方法,其中55个三人在决策任务上工作。群体领导人被指示,以各自考虑在专制的方式中。我们证明可以在56%和100%之间的F1测量检测非语言提示。此外,我们展示了我们的方法如何突出两种领导风格的非语言行为差异。我们的研究结果表明,与专制领导者相比,单独地体贴严重地体验其追随者的追随者的两次追随者的头部点头,而且它们的脸部触感往往像粉丝一样模仿三次。

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