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Enabling Workload Engineering in Edge, Fog, and Cloud Computing through OpenStack-based Middleware

机译:通过基于OpenStack的中间件在边缘,雾和云计算中启用工作负载工程

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To enable and support smart environments, a recent ICT trend promotes pushing computation from the remote Cloud as close to data sources as possible, resulting in the emergence of the Fog and Edge computing paradigms. Together with Cloud computing, they represent a stacked architecture, in which raw datasets are first pre-processed locally at the Edge and then vertically offloaded to the Fog and/or the Cloud. However, as hardware is becoming increasingly powerful, Edge devices are seen as candidates for offering data processing capabilities, able to pool and share computing resources to achieve better performance at a lower network latency-a pattern that can be also applied to Fog nodes. In these circumstances, it is important to enable efficient, intelligent, and balanced allocation of resources, as well as their further orchestration, in an elastic and transparent manner. To address such a requirement, this article proposes an OpenStack-based middleware platform through which resource containers at the Edge, Fog, and Cloud levels can be discovered, combined, and provisioned to end users and applications, thereby facilitating and orchestrating offloading processes. As demonstrated through a proof of concept on an intelligent surveillance system, by converging the Edge, Fog, and Cloud, the proposed architecture has the potential to enable faster data processing, as compared to processing at the Edge, Fog, or Cloud levels separately. This also allows architects to combine different offloading patterns in a flexible and fine-grained manner, thus providing new workload engineering patterns. Measurements demonstrated the effectiveness of such patterns, even outperforming edge clusters.
机译:为了启用和支持智能环境,最近的ICT趋势促进尽可能接近数据源的远程云推动计算,从而产生雾和边缘计算范例的出现。与云计算一起,它们代表堆叠架构,其中原始数据集首先在边缘本地预处理,然后垂直卸载到雾和/或云。然而,由于硬件变得越来越强大,边缘设备被视为提供数据处理能力的候选者,能够汇集和共享计算资源,以实现更好的网络延迟 - 可以应用于雾节点的模式。在这种情况下,能够以弹性和透明的方式实现高效,智能化和平衡的资源分配,以及他们的进一步编排。要解决此类要求,本文可以通过该中间件的中间件平台提出了一个基于OpenStack的中间件平台,可以发现,组合和配置到最终用户和应用程序,从而促进并协调卸载过程。正如通过智能监视系统的概念证明所证明的,通过融合边缘,雾和云,所提出的架构具有较快的数据处理,与边缘,雾或云级别的处理相比。这也允许架构师以灵活和细粒度的方式组合不同的卸载模式,从而提供新的工作负载工程模式。测量表明这种模式的有效性,即使优于优于边缘簇。

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