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Where There Is Fire There Is SMOKE: A Scalable Edge Computing Framework for Early Fire Detection

机译:发生火灾的地方有烟雾:用于早期火灾检测的可扩展边缘计算框架

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摘要

A Cyber-Physical Social System (CPSS) tightly integrates computer systems with the physical world and human activities. In this article, a three-level CPSS for early fire detection is presented to assist public authorities to promptly identify and act on emergency situations. At the bottom level, the system’s architecture involves IoT nodes enabled with sensing and forest monitoring capabilities. Additionally, in this level, the crowd sensing paradigm is exploited to aggregate environmental information collected by end user devices present in the area of interest. Since the IoT nodes suffer from limited computational energy resources, an Edge Computing Infrastructure, at the middle level, facilitates the offloaded data processing regarding possible fire incidents. At the top level, a decision-making service deployed on Cloud nodes integrates data from various sources, including users’ information on social media, and evaluates the situation criticality. In our work, a dynamic resource scaling mechanism for the Edge Computing Infrastructure is designed to address the demanding Quality of Service (QoS) requirements of this IoT-enabled time and mission critical application. The experimental results indicate that the vertical and horizontal scaling on the Edge Computing layer is beneficial for both the performance and the energy consumption of the IoT nodes.
机译:网络物理社会系统(CPSS)将计算机系统与物理世界和人类活动紧密集成在一起。在本文中,提出了一种用于早期火灾探测的三级CPSS,以帮助公共当局及时识别紧急情况并采取行动。在底层,该系统的体系结构涉及具有传感和林监视功能的IoT节点。另外,在这个级别上,人群感知范式被用来汇总由感兴趣区域中存在的最终用户设备收集的环境信息。由于IoT节点的计算资源有限,因此处于中间级别的边缘计算基础架构可简化有关可能的火灾事件的分流数据处理。在顶层,部署在Cloud节点上的决策服务会整合来自各种来源的数据,包括社交媒体上用户的信息,并评估情况的严重性。在我们的工作中,针对边缘计算基础架构的动态资源扩展机制旨在解决这种基于IoT的时间和关键任务应用程序对服务质量(QoS)的苛刻要求。实验结果表明,边缘计算层上的垂直和水平缩放有利于物联网节点的性能和能耗。

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