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Intelligence distribution for data processing in smart grids: A semantic approach

机译:智能网格中数据处理的智能分布:一种语义方法

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The smart grid vision demands both syntactic interoperability in order to physically be able to interchange data and semantic interoperability to properly understand and interpret its meaning. The IEC and the EPRI have backed to this end the harmonization of two widely used industrial standards, the CIM and the IEC 61850, as the global unified ontology in the smart grid scenario. Still, persisting such a huge general ontology in each and every one of the members of a distributed system is neither practical nor feasible. Moreover, the smart grid will be a heterogeneous conglomerate of legacy and upcoming architectures that will require first the possibility of representing all the existing assets in the power network as well as new unknown ones, and second, the collaboration of different entities of the system in order to deploy complex activities. Finally, the smart grid presents diverse time span requirements, such as real-time, and all of them must be addressed efficiently but use resources sparingly. Against this background, we put forward an architecture of intelligent nodes spread all over the smart grid structure. Each intelligent node only has a profile of the global ontology. Moreover, adding reasoning abilities, we achieve simultaneously the required intelligence distribution and local decision making. Furthermore, we address the aforementioned real-time and quasi-real-time requirements by integrating stream data processing tools within the intelligent node. Combined with the knowledge base profile and the reasoning capability, our intelligent architecture supports semantic stream reasoning. We have illustrated the feasibility of this approach with a prototype composed of three substations and the description of several complex activities involving a number of different entities of the smart grid. Moreover, we have also addressed the potential extension of the unified ontology.
机译:智能网格视觉既需要语法上的互操作性以便物理上能够交换数据,又需要语义上的互操作性以正确理解和解释其含义。为此,IEC和EPRI支持将两个广泛使用的工业标准CIM和IEC 61850进行协调,作为智能电网场景中的全球统一本体。但是,在分布式系统的每个成员中坚持如此庞大的通用本体既不切实际,也不可行。此外,智能电网将是遗留和即将来临的架构的异构集团,首先需要代表电力网络中所有现有资产以及新的未知资产的可能性,其次需要系统中不同实体的协作。为了部署复杂的活动。最后,智能电网提出了多种时间跨度要求,例如实时性,所有这些都必须得到有效解决,但要节约使用资源。在这种背景下,我们提出了一种智能节点的体系结构,遍及整个智能电网结构。每个智能节点仅具有全局本体的配置文件。此外,通过添加推理功能,我们可以同时实现所需的情报分配和本地决策。此外,我们通过在智能节点内集成流数据处理工具来满足上述实时性和准实时性要求。结合知识库配置文件和推理能力,我们的智能体系结构支持语义流推理。我们已经用一个由三个变电站组成的原型说明了这种方法的可行性,并描述了涉及智能电网许多不同实体的几种复杂活动。此外,我们还讨论了统一本体的潜在扩展。

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