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Fog Node Selection for Low Latency Communication and Anomaly Detection in Fog Networks

机译:雾网络低延迟通信与异常检测的雾节点选择

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The application of 5G in IOT (Internet of things) puts forward strict requirements for network latency. In view of the fog network scenario with large-scale IOT devices, this paper proposes a procedure of unsupervised learning to efficiently realize the requirement of low-latency communication. We propose an integrated K-means clustering and PCA fog computing design, which facilitates a new service of fog, anomaly detection. Computer simulation shows that, in the presence of large-scale path loss, shadow and small-scale fading channel, the system design with low latency needs to consider the deployment of dense fog nodes and adopt more frequency or power resources at the same time. The proposed procedure and machine learning design not only facilitates the selection of fog nodes, but also presents a new example of anomaly detection using fog nodes.
机译:5G在物联网(物联网)中的应用提出了对网络延迟的严格要求。鉴于具有大型物联网设备的雾网络场景,本文提出了一种无监督学习的程序,以有效地实现低延迟通信的要求。我们提出了一个集成的K-means聚类和PCA雾计算设计,便于雾,异常检测的新服务。计算机仿真表明,在大规模路径损耗,阴影和小规模衰落通道的存在下,具有低延迟的系统设计需要考虑致密雾节点的部署并同时采用更多频率或电力资源。所提出的程序和机器学习设计不仅有助于雾节点的选择,还可以使用FOG节点提出异常检测的新示例。

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