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A Distributed Scalable Approach for Rule Processing: Computing in the Fog for the SWoT

机译:规则处理的分布式可扩展方法:SWoT的雾中计算

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The development of the Semantic Web of Things (SWoT) is challenged by the nature of IoT deployment architectures, where constrained devices collect data processed remotely by powerful Cloud servers. Such a deployment pattern introduces bottlenecks constituting a hurdle for scalability, and increases response time. This hinders the development of a number of critical and time-sensitive applications. Enabling the deployment of the Semantic Web stack closer to the constrained devices of the IoT may foster the development of time-sensitive interoperable applications, while reducing forwarding the user data to remote third party Cloud servers. The approach we develop in this paper is a contribution towards this direction, and aims to enable rule-based reasoning closer to sensors producing IoT data. For this purpose, we define a distributed scalable semantic processing algorithm by dynamically propagating deduction rules on Fog nodes. Our goal is to shorten the time needed to deliver high level information deduced from the collected data. This approach is evaluated on a smart building use case where both distribution and scalability have been considered.
机译:物联网部署架构的性质对语义网(SWoT)的发展提出了挑战,物联网部署架构的本质是受约束的设备收集由功能强大的云服务器远程处理的数据。这种部署模式引入了构成可伸缩性障碍的瓶颈,并增加了响应时间。这阻碍了许多关键且对时间敏感的应用程序的开发。启用更接近物联网受限设备的语义Web堆栈部署,可以促进对时间敏感的可互操作应用程序的开发,同时减少将用户数据转发到远程第三方Cloud Server的过程。我们在本文中开发的方法是朝这个方向做出的贡献,旨在使基于规则的推理更接近产生物联网数据的传感器。为此,我们通过在Fog节点上动态传播推理规则来定义分布式可扩展语义处理算法。我们的目标是缩短从收集的数据中推断出高级信息所需的时间。在考虑了分布和可伸缩性的智能建筑用例上对该方法进行了评估。

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