首页> 外文会议>Image Processing pt.2; Progress in Biomedical Optics and Imaging; vol.6 no.24 >Coarse-to-flne markerless gait analysis based on PCA and Gauss-Laguerre decomposition
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Coarse-to-flne markerless gait analysis based on PCA and Gauss-Laguerre decomposition

机译:基于PCA和Gauss-Laguerre分解的粗线到细线无步态分析

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Human movement analysis is generally performed through the utilization of marker-based systems, which allow reconstructing, with high levels of accuracy, the trajectories of markers allocated on specific points of the human body. Marker based systems, however, show some drawbacks that can be overcome by the use of video systems applying markerless techniques. In this paper, a specifically designed computer vision technique for the detection and tracking of relevant body points is presented. It is based on the Gauss-Laguerre Decomposition, and a Principal Component Analysis Technique (PCA) is used to circumscribe the region of interest. Results obtained on both synthetic and experimental tests provide significant reduction of the computational costs, with no significant reduction of the tracking accuracy.
机译:人体运动分析通常是通过利用基于标记的系统来执行的,该系统可以高精度地重建分配在人体特定点上的标记的轨迹。但是,基于标记的系统显示出一些缺点,可以通过使用应用无标记技术的视频系统来克服这些缺点。在本文中,提出了一种专门设计的用于检测和跟踪相关身体点的计算机视觉技术。它基于高斯-拉格瑞分解法,并且使用主成分分析技术(PCA)来界定感兴趣区域。在综合测试和实验测试中获得的结果都大大降低了计算成本,而跟踪精度却没有明显降低。

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