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Intelligent Manipulation of Human Activities Using Cloud Computing for u-Life Care

机译:用云计算对U-Life Care的智能操纵人类活动

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Ubiquitous Life Care (u-Life care) is one of the most focus area of research. To provide robust healthcare services, recognition of patient daily life activities is required. Context information with real-time daily life activities can help in better services, service suggestions, and change in system behaviour for better healthcare. Human health, profile, as well as activities are monitored and processed intelligently for better care with low cost. In this paper, we focus on intelligent manipulation of activities using Context-aware Activity Manipulation Engine (CAME) core of Human Activity Recognition Engine (HARE), recognized using video-based, wearable sensor-based and location-based activity recognition engines for context analysis of the activities performed. The objective of CAME is to receive real-time low level activity information from Activity Recognition Engines and infer higher level activities, make situation analysis, and after intelligent processing of activities with their corresponding information take appropriate decisions. To achieve this objective, two phase filtering technique for intelligent processing of information (represented in ontology) is used and appropriate decisions based on description logic rules (incorporating expert knowledge). The experimental results for intelligent processing of activity information showed relatively good accuracy.
机译:普遍存在的生活(U-Li​​fe Care)是最焦点的研究领域之一。为了提供强大的医疗保健服务,需要对患者的日常生活活动的认可。背景信息具有实时日常生活活动可以帮助更好的服务,服务建议和系统行为的变化,以获得更好的医疗保健。人类健康,简介以及活动,智能地监测和处理,以便更好地进行低成本。在本文中,我们专注于使用人类活动识别引擎(野兔)的上下文感知活动操纵引擎(COVER)的活动的智能操作,使用基于视频的,可穿戴传感器的基于传感器和基于位置的活动识别引擎进行上下文分析所做的活动。来源的目标是从活动识别发动机获得实时低级活动信息,并推断出更高的级别活动,使情况分析以及在智能处理活动后,他们的相应信息采取适当的决定。为实现这一目标,使用两个相位过滤技术,用于基于描述逻辑规则(结合专家知识)的信息和适当的决策。活动信息智能处理的实验结果表明了较好的准确性。

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