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Fast and reliable recognition of human motion from motion trajectories using wavelet analysis

机译:使用小波分析从运动轨迹快速可靠地识别人体运动

摘要

Recognition of human motion provides hints to understand human activities and gives opportunities to the development of new human-computer interface. Recent studies, however, are limited to extracting motion history image and recognizing gesture or locomotion of human body parts. Although the approach employed, i.e. the transformation of the 3D space-time (x-y-t) analysis to the 2D image analysis, is faster than analyzing 3D motion feature, it is less accurate and less robust in nature. In this paper, a fast trajectory-classification algorithm for interpreting movement of human body parts using wavelet analysis is proposed to increase the accuracy and robustness of human motion recognition. By tracking human body in real time, the motion trajectory (x-y-t) can be extracted. The motion trajectory is then broken down into wavelets that form a set of wavelet features. Classification based on the wavelet features can then be done to interpret the human motion. An online hand drawing digit recognition system was built using the proposed algorithm. Experiments show that the proposed algorithm is able to recognize digits from human movement accurately in real time.
机译:对人体运动的认识为了解人类活动提供了提示,并为开发新的人机界面提供了机会。然而,最近的研究仅限于提取运动历史图像并识别人体部位的姿势或运动。尽管采用的方法(即3D时空分析(x-y-t)转换为2D图像分析)比分析3D运动特征要快,但本质上精度较低且鲁棒性较低。为了提高人体运动识别的准确性和鲁棒性,提出了一种基于小波分析的人体运动轨迹快速轨迹分类算法。通过实时跟踪人体,可以提取运动轨迹(x-y-t)。然后将运动轨迹分解为小波,形成一组小波特征。然后可以基于小波特征进行分类以解释人体运动。利用该算法建立了在线手绘图数字识别系统。实验表明,该算法能够实时,准确地识别出人体运动中的数字。

著录项

  • 作者

    Wong SF; Wong KKY;

  • 作者单位
  • 年度 2004
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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