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Relay selection in cooperative power line communication: A multi-armed bandit approach

机译:协作电力线通信中的中继选择:多臂强盗方法

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Power line communication (PLC) exploits the existence of installed infrastructure of power delivery system, in order to trans- mit data over power lines. In PLC networks, different nodes of the network are interconnected via power delivery transmission lines, and the data signal is flowing between them. However, the attenu- ation and the harsh environment of the power line communication channels, makes it difficult to establish a reliable communication between two nodes of the network which are separated by a long distance. Relaying and cooperative communication has been used to overcome this problem. In this paper a two-hop cooperative PLC has been studied, where the data is communicated between a trans- mitter and a receiver node, through a single array node which has to be selected from a set of available arrays. The relay selection problemcan be solved by having channel state information (CSI) at transmitter and selecting the relay which results in the best perfor- mance. However, acquiring the channel state information at trans- mitter increases the complexity of the communication system and introduces undesired overhead to the system. We propose a class of machine learning schemes, namely multi-armed bandit (MAB), to solve the relay selection problem without the knowledge of the channel at the transmitter. Furthermore, we develop a new MAB algorithm which exploits the periodicity of the synchronous impul- sive noise of the PLC channel, in order to improve the relay selec- tion algorithm.
机译:电力线通信(PLC)利用电力传输系统已安装的基础设施的存在,以便通过电力线传输数据。在PLC网络中,网络的不同节点通过输电传输线互连,并且数据信号在它们之间流动。然而,电力线通信信道的衰减和恶劣的环境使得难以在相距较远的网络的两个节点之间建立可靠的通信。中继和协作通信已用于克服此问题。在本文中,已经研究了一种两跳式协作PLC,其中数据通过一个必须从一组可用阵列中选择的阵列节点在发送器和接收器节点之间进行通信。可以通过在发射机处使用信道状态信息(CSI)并选择性能最佳的中继器来解决中继器选择问题。但是,在发送器上获取信道状态信息会增加通信系统的复杂性,并给系统带来不必要的开销。我们提出了一类机器学习方案,即多臂匪徒(MAB),以解决中继器选择问题,而无需了解发射机处的信道。此外,我们开发了一种新的MAB算法,该算法利用PLC通道的同步脉冲噪声的周期性,以改进继电器选择算法。

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