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Active In-Database Processing to Support Ambient Assisted Living Systems

机译:主动数据库内处理以支持环境辅助生活系统

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摘要

As an alternative to the existing software architectures that underpin the development of smart homes and ambient assisted living (AAL) systems, this work presents a database-centric architecture that takes advantage of active databases and in-database processing. Current platforms supporting AAL systems use database management systems (DBMSs) exclusively for data storage. Active databases employ database triggers to detect and react to events taking place inside or outside of the database. DBMSs can be extended with stored procedures and functions that enable in-database processing. This means that the data processing is integrated and performed within the DBMS. The feasibility and flexibility of the proposed approach were demonstrated with the implementation of three distinct AAL services. The active database was used to detect bed-exits and to discover common room transitions and deviations during the night. In-database machine learning methods were used to model early night behaviors. Consequently, active in-database processing avoids transferring sensitive data outside the database, and this improves performance, security and privacy. Furthermore, centralizing the computation into the DBMS facilitates code reuse, adaptation and maintenance. These are important system properties that take into account the evolving heterogeneity of users, their needs and the devices that are characteristic of smart homes and AAL systems. Therefore, DBMSs can provide capabilities to address requirements for scalability, security, privacy, dependability and personalization in applications of smart environments in healthcare.
机译:作为支持智能家居和环境辅助生活(AAL)系统开发的现有软件体系结构的替代方案,这项工作提出了一种以数据库为中心的体系结构,该体系结构利用了活动数据库和数据库内处理功能。当前支持AAL系统的平台仅将数据库管理系统(DBMS)用于数据存储。活动数据库使用数据库触发器来检测数据库内部或外部发生的事件并对事件做出反应。可以使用支持数据库内处理的存储过程和功能来扩展DBMS。这意味着数据处理已在DBMS中集成并执行。通过实施三种不同的AAL服务,证明了该方法的可行性和灵活性。活动数据库用于检测出床情况,并发现夜间常见的房间过渡和偏离情况。数据库中的机器学习方法用于对夜间行为进行建模。因此,主动的数据库内处理避免了将敏感数据传输到数据库外部,从而提高了性能,安全性和隐私性。此外,将计算集中到DBMS中有助于代码重用,修改和维护。这些重要的系统属性考虑了用户不断发展的异构性,他们的需求以及智能家居和AAL系统特有的设备。因此,DBMS可以提供​​功能来满足医疗保健中智能环境应用程序对可伸缩性,安全性,隐私性,可靠性和个性化的要求。

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