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Arbitrary-View Human Action Recognition: A Varying-View RGB-D Action Dataset

机译:任意查看人类行动识别:一个不同视图的RGB-D行动数据集

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Current researches of action recognition which focus on single-view and multi-view recognition can hardly satisfy the requirements of human-robot interaction (HRI) applications for recognizing human actions from arbitrary views. Arbitrary-view recognition is still a challenging issue due to view changes and visual occlusions. In addition, the lack of datasets also sets up barriers. To provide data for arbitrary-view action recognition, we collect a new large-scale RGB-D action dataset for arbitrary-view action analysis, including RGB videos, depth and skeleton sequences. The dataset includes action samples captured in 8 fixed viewpoints and varying-view sequences which cover the entire 360 degrees view angles. In total, 118 persons are invited to act 40 action categories. Our dataset involves more participants, more viewpoints and a large number of samples. More importantly, it is the first dataset containing the entire 360 degrees varying-view sequences. The dataset provides sufficient data for multi-view, cross-view and arbitrary-view action analysis. Besides, we propose a View-guided Skeleton CNN (VS-CNN) to tackle the problem of arbitrary-view action recognition. Experiment results show that the VS-CNN achieves superior performance, and our dataset provides valuable but challenging data for the evaluation of arbitrary-view recognition.
机译:目前,关注单视图和多视图识别的行动识别研究几乎无法满足人机互动(HRI)应用程序从任意观点识别人类行动的要求。由于查看变更和视觉遮挡,任意视图识别仍然是一个具有挑战性的问题。此外,缺乏数据集也建立了障碍。为了提供任意视图动作识别的数据,我们收集了一个新的大型RGB-D动作数据集,用于任意查看操作分析,包括RGB视频,深度和骨架序列。数据集包括在8个固定视点和变化的视图序列中捕获的动作样本,其覆盖整个360度视图角度。总共邀请118人采取行动40个行动类别。我们的数据集涉及更多的参与者,更多的观点和大量样本。更重要的是,它是包含整个360度变化视图序列的第一个数据集。 DataSet提供了足够的数据进行多视图,跨视图和任意查看操作分析。此外,我们提出了一个视图引导的骨架CNN(VS-CNN)来解决任意视图动作识别的问题。实验结果表明,VS-CNN实现了卓越的性能,我们的数据集提供了评估任意视图识别的有价值但具有挑战性的数据。

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