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Information-Centric Grant-Free Access for IoT Fog Networks: Edge vs. Cloud Detection and Learning

机译:信息以信息为中心的IOT FOG网络免费访问:EDGE与云检测和学习

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A multi-cell Fog-Radio Access Network (F-RAN) architecture is considered in which Internet of Things (IoT) devices periodically make noisy observations of a Quantity of Interest (QoI) and transmit using grant-free access in the uplink. The devices in each cell are connected to an Edge Node (EN), which may also have a finite-capacity fronthaul link to a central processor. In contrast to conventional information-agnostic protocols, the devices transmit using a Type-Based Multiple Access (TBMA) protocol that is tailored to enable the estimate of the field of correlated QoIs in each cell based on the measurements received from IoT devices. In this paper, this form of information-centric radio access is studied for the first time in a multi-cell F-RAN model with edge or cloud detection. Edge and cloud detection are designed and compared for a multi-cell system. Optimal model-based detectors are introduced and the resulting asymptotic behavior of the probability of error at cloud and edge is derived. Then, for the scenario in which a statistical model is not available, data-driven edge and cloud detectors are discussed and evaluated in numerical results.
机译:考虑多电池迷路 - 无线电接入网络(F-RAN)架构,其中内容(物联网)设备周期性地对兴趣量(Qoi)进行嘈杂的观察,并在上行链路中使用无授权访问来发送。每个单元中的设备连接到边缘节点(EN),其也可以具有到中央处理器的有限容量Fronsthaul链接。与传统的信息 - 不可知情协议相反,该设备使用基于类型的多址(TBMA)协议来发送,该协议被定制,以便在每个单元中基于从IOT设备接收的测量来实现每个小区中相关QoIS的字段。在本文中,在具有边缘或云检测的多单元F-RAN模型中首次研究了这种形式的信息中心无线电接入。设计并与多电池系统进行设计并进行云检测。引入了最佳模型的探测器,导出了云和边缘误差概率的结果的渐近行为。然后,对于不可用的统计模型的场景,在数值结果中讨论和评估数据驱动的边缘和云检测器。

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