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Analyzing human-human interactions: A survey

机译:分析人与人之间的互动:一项调查

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摘要

Many videos depict people, and it is their interactions that inform us of their activities, relation to one another and the cultural and social setting. With advances in human action recognition, researchers have begun to address the automated recognition of these human-human interactions from video. The main challenges stem from dealing with the considerable variation in recording setting, the appearance of the people depicted and the coordinated performance of their interaction. This survey provides a summary of these challenges and datasets to address these, followed by an in-depth discussion of relevant vision-based recognition and detection methods. We focus on recent, promising work based on deep learning and convolutional neural networks (CNNs). Finally, we outline directions to overcome the limitations of the current state-of-the-art to analyze and, eventually, understand social human actions.
机译:许多视频描绘了人们,正是他们的互动才使我们了解他们的活动,彼此之间的关系以及文化和社会环境。随着人类动作识别技术的进步,研究人员已开始着手解决视频中这些人与人互动的自动识别问题。主要挑战来自于处理录制设置中的巨大差异,所描绘人物的外貌以及他们互动的协调表现。这份调查总结了这些挑战和数据集,以解决这些挑战,然后深入讨论了相关的基于视觉的识别和检测方法。我们专注于基于深度学习和卷积神经网络(CNN)的近期有前途的工作。最后,我们概述了克服当前分析和最终理解社会人类行为的现有技术的局限性的方向。

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