论文标题

覆盖认知无线网络中物联网应用程序的无线信息和电力传输

Wireless Information and Power Transfer for IoT Applications in Overlay Cognitive Radio Networks

论文作者

Gurjar, Devendra Singh, Nguyen, Ha H., Tuan, Hoang D.

论文摘要

本文提出并研究了覆盖频谱共享系统,并与同时无线信息和电力传输(SWIPT)结合使用,以启用物联网(IoT)应用程序的通信。被考虑的是一个合作的认知无线电网络,其中两个IoT设备(IOD)交换了他们的信息,并向一对主要用户(PUS)提供继电器帮助。与大多数现有作品不同,在本文中,这两个iod都可以从从脓液中收到的射频(RF)信号中收集能量。通过利用收获的能量,它们为脓液提供了继电器合作并实现自己的交流。为了收获能量,在两个iods都采用了基于时间切换(TS)的方法。使用拟议的方案,对主要和物联网系统的一轮双向信息交换进行了四个阶段,即一个能量收集(EH)阶段和三个信息处理(IP)阶段。两种iod都依靠解码和前向操作来促进继电器,而脓液采用选择组合(SC)技术。为了调查所考虑的网络的性能,本文首先为中Nakagami-M下褪色的主要和物联网系统提供了用户中断概率(OP)的精确表达。然后,通过利用用户OP的表达方式,将系统吞吐量和能源效率与平均端到端传输时间一起量化。提供数值和仿真结果,以提供对系统行为的有用见解,并突出各种系统/通道参数的影响。

This paper proposes and investigates an overlay spectrum sharing system in conjunction with the simultaneous wireless information and power transfer (SWIPT) to enable communications for the Internet of Things (IoT) applications. Considered is a cooperative cognitive radio network, where two IoT devices (IoDs) exchange their information and also provide relay assistance to a pair of primary users (PUs). Different from most existing works, in this paper, both IoDs can harvest energy from the radio-frequency (RF) signals received from the PUs. By utilizing the harvested energy, they provide relay cooperation to PUs and realize their own communications. For harvesting energy, a time-switching (TS) based approach is adopted at both IoDs. With the proposed scheme, one round of bidirectional information exchange for both primary and IoT systems is performed in four phases, i.e., one energy harvesting (EH) phase and three information processing (IP) phases. Both IoDs rely on the decode-and-forward operation to facilitate relaying, whereas the PUs employ selection combining (SC) technique. For investigating the performance of the considered network, this paper first provides exact expressions of user outage probability (OP) for the primary and IoT systems under Nakagami-m fading. Then, by utilizing the expressions of user OP, the system throughput and energy efficiency are quantified together with the average end-to-end transmission time. Numerical and simulation results are provided to give useful insights into the system behavior and to highlight the impact of various system/channel parameters.

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