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Extending scalability of IoT/M2M platforms with Fog computing

机译:利用雾计算扩展了IOT / M2M平台的可扩展性

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As more and more IoT/M2M devices are connected to the Internet, the IoT/M2M platforms normally deployed in the Cloud are increasingly overloaded with a large amount of data traffic. Though more resources in the cloud may be allocated to alleviate such overloading issues, this research proposes the alternative of utilizing Fog computing to extend the scalability of IoT/M2M platforms in the cloud. The Fog is used not only to offload the over congested cloud but also to provide low latency required by critical applications. Our first step is to migrate oneM2M, a global IoT/M2M platform, to a Fog computing architecture in which the middle nodes of oneM2M are organized into a highly scalable hierarchical container-based Fog nodes. We then design a mechanism to dynamically scale in/out the serving instances of the middle nodes in order to make the whole IoT/M2M platform more scalable. The paper illustrates our system design and demonstrates our system scalability capacity using an industrial IoT (IIoT) use case. Finally, we compare the performance of our dynamic scaling mechanism with those based on a static and fixed pool of serving instances.
机译:随着越来越多的IOT / M2M设备连接到Internet,通常在云中部署的IOT / M2M平台越来越多地重载,具有大量的数据流量。虽然可以分配云中的更多资源来缓解这种过载问题,但是该研究提出了利用雾计算的替代方案来扩展云中的IOT / M2M平台的可扩展性。 FOG不仅用于卸载过度拥挤的云,还用于提供关键应用所需的低延迟。我们的第一步是将OneM2M,一个全局IOT / M2M平台迁移到雾计算架构,其中ONEM2M的中间节点组织成高度可扩展的分层容器的FOG节点。然后,我们设计一种机制来动态缩放中间节点的服务实例,以使整个IOT / M2M平台更可扩展。本文说明了我们的系统设计,并使用工业物联网(IIOT)用例展示了我们的系统可扩展性能力。最后,我们将动态缩放机制与基于静态和固定池的服务实例的性能进行比较。

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