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IoT-CANE: A unified knowledge management system for data-centric Internet of Things application systems

机译:IoT-CANE:用于以数据为中心的物联网应用系统的统一知识管理系统

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Identifying a suitable configuration of devices, software and infrastructures in the context of user requirements is fundamental to the success of delivering loT applications. As possible configurations could be large in number and not all configurations are valid, a configuration knowledge representation model can provide ready-made configurations based on loT requirements. Combining such a model within the context of a given user-oriented scenario, it is possible to automate the recommendation of solutions for deployment and long-time evolution of loT applications. However, in the context of Cloud/Edge technologies, that may themselves exhibit significant configuration possibilities that are also dynamic in nature, a more unified approach is required. We present loT-CANE (Context Aware recommendatioN systEm) as such a unified approach. loT-CANE embodies a unified conceptual model capturing configuration, constraint and infrastructure features of Cloud/Edge together with loT devices. The success of loT-CANE is evaluated through an end-user case study. (C) 2019 Elsevier Inc. All rights reserved.
机译:在用户需求的背景下确定合适的设备,软件和基础架构配置是成功交付loT应用程序的基础。由于可能的配置数量可能很大,并且并非所有配置都有效,因此配置知识表示模型可以基于loT要求提供现成的配置。在给定的面向用户的方案的上下文中结合这样的模型,可以自动推荐用于部署和长期发展loT应用程序的解决方案。但是,在Cloud / Edge技术的背景下,这些技术本身可能会表现出显着的配置可能性,而这些配置本质上也是动态的,因此需要一种更加统一的方法。我们提出了loT-CANE(上下文感知推荐系统)作为这种统一的方法。 loT-CANE体现了一个统一的概念模型,该模型捕获了Cloud / Edge与loT设备一起的配置,约束和基础架构功能。通过最终用户案例研究评估loT-CANE的成功。 (C)2019 Elsevier Inc.保留所有权利。

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