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A View-Based Real-Time Human Action Recognition System as an Interface for Human Computer Interaction

机译:基于视图的实时人力行动识别系统作为人类计算机交互的界面

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This paper describes a real-time human action recognition system that can track multiple persons and recognize distinct human actions through image sequences acquired from a single fixed camera. In particular, when given an image, the system segments blobs by using the Mixture of Gaussians algorithm with a hierarchical data structure. In addition, the system tracks people by estimating the state to which each blob belongs and assigning people according to its state. We then make motion history images for tracked people and recognize actions by using a multi-layer perceptron. The results confirm that we achieved a high recognition rate for the five actions of walking, running, sitting, standing, and falling though each subject performed each action in a slightly different manner. The results also confirm that the proposed system can cope in real time with multiple persons.
机译:本文介绍了一个实时人类行动识别系统,可以通过从单个固定摄像机获取的图像序列来追踪多个人并识别不同的人类动作。特别地,当给定图像时,通过使用具有分层数据结构的高斯算法的混合来揭示系统段。此外,系统通过估计每个BLOB所属和根据其状态分配人的状态来跟踪人员。然后,我们为跟踪人员进行运动历史图像,并通过使用多层Perceptron来识别操作。结果证实,我们实现了高度识别率,即在步行,跑步,坐姿,落下的五个行动,尽管每个主题以略微不同的方式执行每个动作。结果还证实,建议的系统可以与多人实时应对。

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