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Recognition of human activity based on sparse data collected from smartphone sensors*

机译:基于从智能手机传感器收集的稀疏数据来识别人类活动 *

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This paper proposes a method of human activity monitoring based on the regular use of sparse acceleration data and GPS positioning collected during smartphone daily utilization. The application addresses, in particular, the elderly population with regular activity patterns associated with daily routines. The approach is based on the clustering of acceleration and GPS data to characterize the user's pattern activity and localization for a given period. The current activity pattern is compared to the one obtained by the learned data patterns, generating alarms of abnormal activity and unusual location. The obtained results allow to consider that the usage of the proposed method in real environments can be beneficial for activity monitoring without using complex sensor networks.
机译:本文提出了一种基于定期使用稀疏加速度数据和在智能手机日常使用过程中收集的GPS定位的人类活动监测方法。该应用程序特别针对具有日常活动规律活动模式的老年人。该方法基于加速度和GPS数据的聚类,以表征给定时间段内用户的图案活动和定位。将当前活动模式与通过学习到的数据模式获得的活动模式进行比较,生成异常活动和异常位置的警报。获得的结果允许考虑到,在不使用复杂的传感器网络的情况下,在实际环境中使用所提出的方法可能对活动监控有利。

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