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On the Analysis of Human Posture for Detecting Social Interactions with Wearable Devices

机译:用于检测可穿戴设备社交互动的人体姿势分析

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Detecting the dynamics of the social interaction represents a difficult task also with the adoption of sensing devices able to collect data with a high-temporal resolution. Under this context, this work focuses on the effect of the body posture for the purpose of detecting a face-to-face interactions between individuals. To this purpose, we describe the NESTORE sensing kit that we used to collect a significant dataset that mimics some common postures of subjects while interacting. Our experimental results distinguish clearly those postures that negatively affect the quality of the signals used for detecting an interactions, from those postures that do not have such a negative impact. We also show the performance of the SID (Social Interaction Detector) algorithm with different settings, and we present its performance in terms of accuracy during the classification of interaction and non-interaction events.
机译:通过采用能够以高时间分辨率收集数据的传感设备,检测社交交互的动态也代表了困难的任务。在这种情况下,这项工作侧重于身体姿势的影响,以检测个人之间的面对面相互作用。为此目的,我们描述了我们用来收集一个重要数据集的雏菊感应套件,以在交互时模仿一些常见的受试者姿势。我们的实验结果显然,这些姿势产生负面影响用于检测相互作用的信号的质量,从那些没有这种负面影响的姿势。我们还显示了SID(社交交互探测器)算法具有不同设置的性能,并且我们在交互分类和非交互事件的分类期间在准确性方面呈现其性能。

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