同步无线功率传输与调制分类

Rahul Gupta, I. Krikidis
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引用次数: 1

摘要

本工作提出了一种适用于物联网(IoT)应用的新的同步无线功率传输和调制分类(SWPTMC)方案。研究了各种调制格式的SWPTMC问题,即正交相移键控(QPSK), π/4-QPSK,偏移QPSK (OQPSK), 16脉冲幅度调制(16-PAM), 16正交幅度调制(16-QAM)和最小位移键控(MSK)。我们提出了三种接收器架构,即集成接收器,具有功率分裂(PS)的单独接收器和基于能量收集(EH)分类的单独接收器;所有结构都是在具有一定灵敏度和饱和水平的非线性模型下进行研究的。此外,我们还推导了不同调制格式的瑞利衰落信道上的平均收获功率。盲调制分类(MC)算法采用两种不同的方法:一种用于中频信号,另一种用于基带信号。两种MC算法都是基于接收信号的高阶累积量和循环累积量。循环累积量使用非零周期频率位置,而累积量使用阈值对调制格式进行分类。蒙特卡罗模拟用于评估所提出的SWPTMC方案的性能。结果表明,在不影响分类器性能的情况下,可以同时收获功率。此外,利用集成接收器,我们可以同时进行MC和采集功率,而不需要PS电路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simultaneous Wireless Power Transfer and Modulation Classification
This work proposes a new simultaneous wireless power transfer and modulation classification (SWPTMC) scheme appropriate for internet of things (IoT) applications. The problem of SWPTMC is investigated for various modulation formats, i.e., quadrature phase-shift-keying (QPSK), π/4-QPSK, offset QPSK (OQPSK), 16-pulse amplitude modulation (16-PAM), 16-quadrature amplitude modulation (16-QAM), and minimum shift keying (MSK). We propose three receiver architectures, i.e., an integrated receiver, a separate receiver with power splitting (PS), and a separate receiver with energy harvesting (EH)-based classification; all the architectures are studied under a non-linear model with a certain sensitivity and saturation level. Also, we derive the average harvested power over a Rayleigh fading channel for the different modulation formats. Two different approaches are used for the blind modulation classification (MC) algorithm: one for the intermediate frequency signal and the other for the baseband signal. Both the MC algorithms are based on the higher-order cumulants and cyclic cumulants of the received signal. The cyclic cumulants use the non-zero cycle frequency position, while the cumulants use threshold values for classifying modulation formats. Monte Carlo simulations are used to evaluate the performance of the proposed SWPTMC schemes. The results show that we can simultaneously harvest power without much affecting the classifier performance. Moreover, with an integrated receiver, we can simultaneously perform MC and harvest power without the requirement of PS circuit.
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