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Collection of Kinematic and Kinetic Data of Young and Adult, Male and Female Subjects Performing Periodic and Transient Gait Tasks for Gait Pattern Recognition

机译:汇集年轻和成人,男女科目的运动和动力学数据,用于步态模式识别的定期和瞬态步态任务

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The aim of the study was to develop a database of biomechanical data for multiple gait tasks. This database will be used to create a real-time gait pattern classifier that will be implemented in a new-generation active knee prosthesis. With this intent, we collected kinematic and kinetic data of 40 subjects performing 16 gait tasks, categorized as periodic and transient motions. We analyzed four distinct sub-populations, differentiated by age and gender. As the classifier will be based also on inertial data, we chose to synthesize these signals within the motion capture environment. To assess the effects of gender and age we performed a correlation analysis on the signals used as input of the classifier. The results obtained indicate that there is no need to differentiate into four distinct classes for the development of the classifier. Sample data of the dataset are made publicly available.
机译:该研究的目的是为多个步态任务开发生物力学数据数据库。该数据库将用于创建实时步态模式分类器,该分类器将在新一代的活动膝关节假体中实现。通过这种意图,我们收集了执行16个步态任务的40个科目的运动和动力学数据,分为周期性和瞬态运动。我们分析了四个不同的子人群,由年龄和性别分析。由于分类器也将基于惯性数据,我们选择在运动捕获环境中综合这些信号。为了评估性别和年龄的影响,我们对用作分类器输入的信号进行了相关性分析。所获得的结果表明,不需要区分分类为分类器的四个不同的类别。数据集的示例数据可公开可用。

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