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具有非线性/线性能量收集的双跳放大转发中继性能分析

Performance Analysis of Dual-Hop AF Relaying with Non-Linear/Linear Energy Harvesting.

作者信息

Babaei Mohammadreza, Durak-Ata Lütfiye, Aygölü Ümit

机构信息

Informatics Institute, Istanbul Technical University, 34469 Istanbul, Turkey.

Department of Electronics and Communication Engineering, Istanbul Technical University, 34469 Istanbul, Turkey.

出版信息

Sensors (Basel). 2022 Aug 10;22(16):5987. doi: 10.3390/s22165987.

Abstract

Massive device-to-device communication nodes and Internet of Things (IoT) devices are expected to be crucial components in next-generation wireless networks. However, the energy constraint of these nodes presents a challenge since the energy of the batteries is limited. Motivated by this, radio frequency energy harvesting (EH) has been developed as an efficient strategy to overcome the energy constraint of IoT devices and sensor networks. In this paper, a wireless-powered dual-hop amplify-and-forward relaying system, in the absence of a direct link between the source (S) and the destination (D), is considered. It is assumed that a dedicated power beacon (PB) transmits an energy-bearing signal from which the power-constrained S and relay (R) harvest energy. Theoretical derivations of bit error probability, outage probability, and throughput expressions are performed for both linear and non-linear energy harvesting models. Moreover, the theoretical results provided for different system parameters are validated via Monte Carlo simulations. The obtained results reveal the difference between the realistic non-linear EH model and the conventional linear EH model, which overestimates the system performance at high levels of harvested energy. Thus, it leads to misunderstanding the real performance of the EH systems. However, at low levels of harvested energy, both models behave similarly and provide realistic results.

摘要

大量的设备到设备通信节点和物联网(IoT)设备有望成为下一代无线网络中的关键组件。然而,这些节点的能量限制带来了挑战,因为电池的能量是有限的。受此激励,射频能量收集(EH)已被开发为一种克服物联网设备和传感器网络能量限制的有效策略。本文考虑了一种无线供电的双跳放大转发中继系统,其中源节点(S)和目的节点(D)之间不存在直接链路。假设一个专用功率信标(PB)发送一个携带能量的信号,功率受限的S和中继(R)从中获取能量。针对线性和非线性能量收集模型,进行了误码率、中断概率和吞吐量表达式的理论推导。此外,通过蒙特卡罗模拟验证了针对不同系统参数给出的理论结果。所得结果揭示了实际的非线性能量收集模型与传统的线性能量收集模型之间的差异,传统模型在高能量收集水平下高估了系统性能。因此,这会导致对能量收集系统实际性能的误解。然而,在低能量收集水平下,两种模型表现相似并能提供实际结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c6ef/9413639/50ff60355f1e/sensors-22-05987-g001.jpg

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