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Using the eServices Platform for Detecting Behavior Patterns Deviation in the Elderly Assisted Living: A Case Study

机译:使用eServices平台检测老年人辅助生活中的行为模式偏差:案例研究

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World’s aging population is rising and the elderly are increasingly isolated socially and geographically. As a consequence, in many situations, they need assistance that is not granted in time. In this paper, we present a solution that follows the CRISP-DM methodology to detect the elderly’s behavior pattern deviations that may indicate possible risk situations. To obtain these patterns, many variables are aggregated to ensure the alert system reliability and minimize eventual false positive alert situations. These variables comprehend information provided by body area network (BAN), by environment sensors, and also by the elderly’s interaction in a service provider platform, called eServices—Elderly Support Service Platform. eServices is a scalable platform aggregating a service ecosystem developed specially for elderly people. This pattern recognition will further activate the adequate response. With the system evolution, it will learn to predict potential danger situations for a specified user, acting preventively and ensuring the elderly’s safety and well-being. As the eServices platform is still in development, synthetic data, based on real data sample and empiric knowledge, is being used to populate the initial dataset. The presented work is a proof of concept of knowledge extraction using the eServices platform information. Regardless of not using real data, this work proves to be an asset, achieving a good performance in preventing alert situations.
机译:世界人口的老龄化正在增加,老年人在社会和地理上越来越孤立。结果,在许多情况下,他们需要及时获得的援助。在本文中,我们提供了一种遵循CRISP-DM方法的解决方案,用于检测老年人的行为模式偏差,这些偏差可能表明可能的风险情况。为了获得这些模式,需要汇总许多变量以确保警报系统的可靠性并最大程度地减少最终的误报警报情况。这些变量包含人体区域网络(BAN),环境传感器以及老年人在服务提供商平台(称为eServices-老年人支持服务平台)中的互动所提供的信息。 eServices是一个可扩展平台,聚集了专门为老年人开发的服务生态系统。这种模式识别将进一步激活适当的响应。随着系统的发展,它将学会预测特定用户的潜在危险情况,采取预防措施并确保老年人的安全和福祉。由于eServices平台仍在开发中,因此将基于真实数据样本和经验知识的综合数据用于填充初始数据集。提出的工作是使用eServices平台信息进行知识提取的概念证明。不管不使用真实数据,这项工作都被证明是一项资产,在预防警报情况方面取得了良好的表现。

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