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Artificial-Intelligence-Based Performance Enhancement of the G3-PLC LOADng Routing Protocol for Sensor Networks

机译:基于人工智能的CENS传感器网络G3-PLC LOADNG路由协议的性能增强

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Powerline Communications (PLC) is a popular technology providing infrastructure for applications related to IoT, smart grids, smart cities, in-home networking and has been experimentally considered for broadband access. Sensor networks and Automatic Meter Reading applications are closely related to this technology, as it provides free infrastructure and sustains the data rate requirements. The application here considered consists in the implementation of the G3-PLC LOADng routing protocol in the nodes of a sensor/meter network, where the nodes share all the same medium. G3-PLC is a powerline communication standard, employing OFDM at the physical layer and oriented at enabling the smart grid vision. The Medium Access Control implements CSMA/CA, while the Logical Link Control implements LOADng routing, which is the ITU-T G.9903 recommended specification for Lossy and Low-power Networks (LLNs). In this paper, we consider the mapping phase of the routing protocol, in which the central element of the network establishes the routes to reach any node. By simulating this process via a physical simulation tool, it is possible to synthetically train an Artificial Neural Network and teach it how the optimally established routes correlate to the topological and geometrical properties of the network. Eventually, we discuss how, by employing this AI approach, it is possible to speed-up the routing mapping process.
机译:电力线通信(PLC)是一种流行的技术,为与IOT,智能电网,智能城市,家庭网络,家庭网络有关的应用提供基础设施,并已通过实验考虑宽带接入。传感器网络和自动抄表应用与本技术密切相关,因为它提供了免费基础设施并维持数据速率要求。这里的应用程序考虑在传感器/仪表网络的节点中实现G3-PLC Loadny路由协议,其中节点共享所有相同的介质。 G3-PLC是一种电力线通信标准,在物理层采用OFDM,并在启用智能电网视觉时取向。介质访问控制实现CSMA / CA,而逻辑链路控制实现LOADNG路由,这是ITU-T G.9903推荐的有损和低功耗网络(LLN)规范。在本文中,我们考虑路由协议的映射阶段,其中网络的中心元素建立了到达任何节点的路由。通过通过物理仿真工具模拟该过程,可以合成人工神经网络训练,并教授最佳建立的路线与网络的拓扑和几何特性相关。最终,我们讨论如何通过采用此AI方法,可以加快路由映射过程。

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