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Stereoscopic video description for human action recognition

机译:用于人体动作识别的立体视频描述

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摘要

In this paper, a stereoscopic video description method is proposed that indirectly incorporates scene geometry information derived from stereo disparity, through the manipulation of video interest points. This approach is flexible and able to cooperate with any monocular low-level feature descriptor. The method is evaluated on the problem of recognizing complex human actions in natural settings, using a publicly available action recognition database of unconstrained stereoscopic 3D videos, coming from Hollywood movies. It is compared both against competing depth-aware approaches and a state-of-the-art monocular algorithm. Experimental results denote that the proposed approach outperforms them and achieves state-of-the-art performance.
机译:在本文中,提出了一种立体视频描述方法,其通过操纵视频兴趣点来间接地结合从立体声差异导出的场景几何信息。这种方法灵活,能够与任何单手抄语低级特征描述符合作。该方法是对识别自然设置中复杂人类行为的问题,使用来自好莱坞电影的公开可用的立体三维视频的公开可用的动作识别数据库。它既与竞争深度感知方法和最先进的单目算法相比。实验结果表示,所提出的方法优于它们,实现最先进的性能。

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