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Human activity recognition in RGB-D videos by dynamic images

机译:通过动态图像在RGB-D视频中的人类活动识别

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摘要

Human Activity Recognition in RGB-D videos has been an active research topic during the last decade. However, only a few efforts have been made, for recognizing human activity in RGB-D videos where several performers are performing simultaneously. In this paper we introduce such a challenging dataset with several performers performing the activities simultaniously. We present a novel method for recognizing human activities performed simultaniously in the same videos. The proposed method aims in capturing the motion information of the whole video by producing a dynamic image corresponding to the input video. We use two parallel ResNet-101 architectures to produce the dynamic images for the RGB video and depth video separately. The dynamic images contain only the motion information of the whole frame, which is the main cue for analyzing the motion of the performer during action. Hence, dynamic images help recognizing human action by concentrating only on the motion information appeared on the frame. We send the two dynamic images through a fully connected layer for classification of activity. The proposed dynamic image reduces the complexity of the recognition process by extracting a sparse matrix from a video, while preserving the motion information required for activity recognition, and produces comparable results with respect to the state-of-the-art.
机译:RGB-D视频中的人类活动识别在过去十年中是一个积极的研究主题。但是,只有几项努力,用于识别RGB-D视频中的人类活动,其中几个表演者正在同时执行。在本文中,我们介绍了这种具有挑战性的数据集,其中几个表演者同时执行了活动。我们提出了一种在同一视频中同时进行的人类活动的新方法。所提出的方法旨在通过产生与输入视频对应的动态图像来捕获整个视频的运动信息。我们使用两个并行reset-101架构,分别为RGB视频和深度视频产生动态图像。动态图像仅包含整个帧的运动信息,其是用于在动作期间分析执行者的运动的主提示。因此,动态图像通过仅在帧上出现的运动信息上集中来帮助识别人类行动。我们通过完全连接的图层发送两个动态图像以进行分类。所提出的动态图像通过从视频中提取稀疏矩阵来降低识别过程的复杂性,同时保留活动识别所需的运动信息,并对最先进的结果产生类似的结果。

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