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Modeling head motion entrainment for prediction of couples' behavioral characteristics

机译:用于预测夫妻行为特征的造型头动作夹带

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Our work examines the link between head motion entrainment of interacting couples and human expert's judgment on certain overall behavioral characteristics (e.g., Blame patterns). We employ a data-driven model that clusters head motion in an unsupervised manner into elementary types called kinemes. We propose three groups of similarity measures based on Kullback-Leibler divergence to model entrainment. We find that the divergence of the (joint) distribution of kinemes yields consistent and significant correlation with target behavior characteristics. The divergence of the conditional distribution of kinemes is shown to predict the polarity of the behavioral characteristics. We partly explain the strong correlations via associating the conditional distributions with the prominent behavioral implications of their respective associated kinemes. These results show the possibility of inferring human behavioral characteristics through the modeling of dyadic head motion entrainment.
机译:我们的工作审查了互动夫妇和人类专家对某些整体行为特征的判断(例如,责备模式)之间的联系。我们采用数据驱动模型,将头部运动以无监督的方式群体群体进入名为Kinemes的基本类型。我们提出了基于Kullback-Leibler分歧的三组相似性措施来模拟夹带。我们发现,Kinemes的(关节)分布的分布与目标行为特征产生一致和显着的相关性。显示出脉络条件分布的分歧,以预测行为特征的极性。我们部分解释了通过将条件分布与其各自相关的Kinemes的突出行为影响相关联的强烈相关性。这些结果表明,通过模型头部运动夹带的建模推断人行为特征的可能性。

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