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Automatic Detection of Human Interactions from RGB-D Data for Social Activity Classification

机译:从RGB-D数据自动检测人际互动以进行社会活动分类

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摘要

We present a system for temporal detection of social interactions. Many of the works until now have succeeded in recognising activities from clipped videos in datasets, but for robotic applications, it is important to be able to move to more realistic data. For this reason, the proposed approach temporally detects intervals where individual or social activity is occurring. Recognition of human activities is a key feature for analysing the human behaviour. In particular, recognition of social activities is useful to trigger human-robot interactions or to detect situations of potential danger. Based on that, this research has three goals: (1) define a new set of descriptors, which are able to characterise human interactions; (2) develop a computational model to segment temporal intervals with social interaction or individual behaviour; (3) provide a public dataset with RGB-D data with continuous stream of individual activities and social interactions. Results show that the proposed approach attained relevant performance with temporal segmentation of social activities.
机译:我们提出了一种用于社交互动的时间检测的系统。到目前为止,许多作品都已经成功地从数据集中的剪辑视频中识别了活动,但是对于机器人应用程序而言,能够移至更真实的数据非常重要。由于这个原因,所提出的方法在时间上检测发生个人或社会活动的间隔。识别人类活动是分析人类行为的关键特征。特别是,对社交活动的认识对于触发人机交互或检测潜在危险情况很有用。基于此,本研究具有三个目标:(1)定义一组新的描述符,以描述人与人之间的互动; (2)建立计算模型,以社交互动或个人行为细分时间间隔; (3)提供带有RGB-D数据的公共数据集,其中包含连续的个人活动和社交互动流。结果表明,所提出的方法通过社会活动的时间细分获得了相关的性能。

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