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Identification of human walking patterns using three-dimensional dynamic modeling.

机译:使用三维动态建模识别人的行走模式。

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One of the most common activities of our day to day life is walking. However simulating a human walking motion is one of the most difficult tasks to accomplish. Inherently it is an inverted pendulum like system and involves a large number of degrees of freedom. In this thesis we have modeled the human walking motion. The system is designed using a human body model in the form of a kinematic chain consisting of rigid links and revolute joints. Human walking patterns contain information like identity, presence of physical disability and loading conditions of a person like carrying a backpack. We have extracted some of these information and have used our model to discriminate various walking motions. The information that we have used are joint torque and angle sequences modeled using ARMA modeling and Dynamic Time Warping. Our human walking model is validated by comparing it with Stanford marker data.
机译:日常生活是步行中最常见的活动之一。然而,模拟人类的步行运动是最难完成的任务之一。本质上,它是一个类似倒立摆的系统,并且涉及许多自由度。在本文中,我们对人体步行运动进行了建模。该系统是使用人体模型设计的,其运动链由刚性链节和旋转关节组成。人类的行走方式包含诸如身份,身体残障和携带背包等人的负重状况之类的信息。我们提取了其中一些信息,并使用我们的模型来区分各种步行运动。我们使用的信息是使用ARMA建模和动态时间规整建模的关节扭矩和角度序列。通过与斯坦福标记数据进行比较来验证我们的人类步行模型。

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