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Interoperable services based on activity monitoring in Ambient Assisted Living environments

机译:基于环境辅助生活环境中的活动监控的可互操作服务

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摘要

Ambient Assisted Living (AAL) is considered as the main technological solution that will enable the aged and people in recovery to maintain their independence and a consequent high quality of life for a longer period of time than would otherwise be the case. This goal is achieved by monitoring human's activities and deploying the appropriate collection of services to set environmental features and satisfy user preferences in a given context. However, both human monitoring and services deployment are particularly hard to accomplish due to the uncertainty and ambiguity characterising human actions, and heterogeneity of hardware devices composed in an AAL system. This research addresses both the aforementioned challenges by introducing 1) an innovative system, based on Self Organising Feature Map (SOFM), for automatically classifying the resting location of a moving object in an indoor environment and 2) a strategy able to generate context-aware based Fuzzy Markup Language (FML) services in order to maximize the users' comfort and hardware interoperability level. The overall system runs on a distributed embedded platform with a specialised ceiling-mounted video sensor for intelligent activity monitoring. The system has the ability to learn resting locations, to measure overall activity levels, to detect specific events such as potential falls and to deploy the right sequence of fuzzy services modelled through FML for supporting people in that particular context. Experimental results show less than 20% classification error in monitoring human activities and providing the right set of services, showing the robustness of our approach over others in literature with minimal power consumption.
机译:环境辅助生活(AAL)被认为是主要的技术解决方案,它将使老年人和处于康复中的人们能够保持独立性,从而在更长的时间内保持较高的生活质量。通过监视人类的活动并部署适当的服务集合以设置环境功能并满足给定上下文中的用户喜好,可以实现此目标。然而,由于表征人类行为的不确定性和歧义性以及AAL系统中组成的硬件设备的异质性,人类监控和服务部署都特别难以实现。这项研究通过引入以下方法解决了上述两个挑战:1)基于自组织特征图(SOFM)的创新系统,用于自动分类室内环境中移动物体的静止位置,以及2)能够生成上下文感知的策略基于模糊标记语言(FML)的服务,以最大程度地提高用户的舒适度和硬件互操作性水平。整个系统在分布式嵌入式平台上运行,该平台具有专用的天花板安装视频传感器,用于智能活动监控。该系统具有学习休息位置,测量总体活动水平,检测特定事件(例如潜在跌倒)以及部署通过FML建模的正确模糊服务序列的能力,以在特定情况下为人们提供支持。实验结果表明,在监控人类活动和提供正确的服务方面,分类错误不到20%,这表明我们的方法在最小的功耗下优于其他方法。

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