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Recognition of Human daily activities

机译:认识人类日常活动

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摘要

Capturing the type of physical activity a person is performing thorough his daily life, can inspire the development of new and innovative applications. Examples include monitoring patients' health and physical activity performance, reasoning upon the observed activity to recommend better training strategy, new therapeutic programs, etc. In this work we propose an algorithm for Human Activity Recognition based on the application of a geometrically motivated feature selection method. We test the algorithm on a standard data set and validate its performance by comparing it with the existing results of other known algorithms.
机译:捕获一个人正在进行彻底他的日常生活的身体活动的类型,可以激发新的和创新应用的发展。例子包括监测患者的健康和身体活动绩效,推理观察到的活动,推荐更好的培训策略,新的治疗计划等。在这项工作中,我们提出了一种基于几何动力特征选择方法的人类活动识别算法。我们在标准数据集上测试算法,并通过将其与其他已知算法的现有结果进行比较来验证其性能。

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