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Extracting Intra- and Inter-activity Association Patterns from Daily Routines of Elders

机译:从长老的日常惯例中提取和活动间关联模式

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One of the most challenging issues faced by many elders is the over-decreasing independence mainly caused by impaired physical, cognitive, and/or sensory abilities. Activity recognition can be used to help elders live longer in their own homes independently, by providing assurance of safety, instructing performance of activity and assessing cognitive status. In this work, we propose to discover both intra- and inter-activity association patterns from daily routines of elderly people. Specifically, a data mining method is proposed to extract the most frequent sequential sequences of steps inside each individual activity (i.e., intra-activity pattern) and activities (i.e., inter-activity pattern) of a set of daily activities. These patterns can then be used to model human daily activities for activity recognition purpose, or to directly instruct/prompt elders with impaired memory when they perform daily routines. The experimental results conducted on two individuals' datasets of daily activities show that our proposed approach is workable to discover these association patterns.
机译:许多长老面临的最具挑战性的问题之一是过度减少的独立性,主要是由于物理,认知和/或感官能力受损。活动识别可用于帮助长老独立地生活在自己的家中,通过提供安全性,指导活动和评估认知状态。在这项工作中,我们建议发现来自老年人的日常生活中的活动内和活动间协会模式。具体地,提出了一种数据挖掘方法,以提取一组日常活动的每种单独活动(即,活动模式)和活动(即,活动间模式)内部的最常用的步骤顺序序列。然后可以使用这些模式来模拟人类日常活动以进行活动识别目的,或者在执行日常惯例时直接指导/提示长老在记忆中具有受损。对两名个人的日常活动数据集进行的实验结果表明,我们的建议方法是可行的,以发现这些关联模式。

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