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Human action recognition based on skeleton splitting

机译:基于骨架分裂的人体动作识别

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Human action recognition, defined as the understanding of the human basic actions from video streams, has a long history in the area of computer vision and pattern recognition because it can be used for various applications. We propose a novel human action recognition methodology by extracting the human skeletal features and separating them into several human body parts such as face, torso, and limbs to efficiently visualize and analyze the motion of human body parts. Our proposed human action recognition system consists of two steps: (ⅰ) automatic skeletal feature extraction and splitting by measuring the similarity between neighbor pixels in the space of diffusion tensor fields, and (ⅱ) human action recognition by using multiple kernel based Support Vector Machine. Experimental results on a set of test database show that our proposed method is very efficient and effective to recognize the actions using few parameters.
机译:人体动作识别(定义为从视频流中了解人体基本动作的理解)在计算机视觉和模式识别领域具有悠久的历史,因为它可以用于各种应用程序。我们提出了一种新颖的人体动作识别方法,即通过提取人体骨骼特征并将其分为面部,躯干和四肢等多个人体部位,以有效地可视化和分析人体部位的运动。我们提出的人体动作识别系统包括两个步骤:(ⅰ)通过测量扩散张量场中相邻像素之间的相似性来自动进行骨骼特征提取和分割,以及(ⅱ)使用基于多核的支持向量机进行人体动作识别。在一组测试数据库上的实验结果表明,我们提出的方法非常有效,并且使用很少的参数即可识别动作。

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