通过环形幅度调制实现5G高效LINC放大

Antônio Simoes, Pedro Bento, M. Gomes, R. Dinis, V. Silva
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引用次数: 3

摘要

即将到来的5G一代将推动用户比特率和整体系统吞吐量的预期大幅增长。这意味着频谱效率的大幅提高,这必须在保持甚至提高功率效率的同时实现。为了克服在典型通信系统中使用效率低下的线性HPA的必要性,本文讨论了使用LINC技术进行功率放大,因为它采用了比线性HPA更简单且更节能的粗NL HPA。然而,对于具有较大PAPR的信号,如采用高阶频谱效率调制和/或接近奈奎斯特带宽限制脉冲整形的系统,该技术的效率受到严重损害,主要原因是LINC信号分离和功率组合程序。然而,考虑到任意m星座都可以被分割成多个OQPSK信号的和,本文提出了一种针对带宽接近Nyquist的OQPSK信号的MM方法,该方法既限制了信号的最大和最小包络漂移,又不扩展其频谱。这种方法也被证明可以提高发射机对小增益和LINC放大器之间相位不平衡的恢复能力。所提出的方案可以在即将到来的5G中发挥关键作用,因为将所提议的发射机的多个单元以阵列/并行配置排列,有可能同时实现所需的高功率和频谱效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient LINC Amplification for 5G through Ring-Type Magnitude Modulation
The upcoming 5G generation is driven the expected huge growth in user bit rates and overall system throughput. This means a substantial spectral efficiency increase, which must be achieved while maintaining or even improving the power efficiency. To overcome the necessity of using inefficient linear HPA in typical communication systems, this paper addresses the use of the LINC technique for power amplification, since it employs grossly NL HPA that are simpler and much more energy efficient than the linear ones. However, this technique's efficiency is harshly damaged for signals with a large PAPR, as for systems employing high order spectral efficient modulations and/or close to Nyquist bandwidth limiting pulse-shaping, due mainly to the LINC signal separation and power combining procedures. However, given that any M-ary constellation can be split as a sum of several OQPSK signals, a new MM method is proposed for OQPSK signals with bandwidth close to Nyquist, that limit both maximum and minimum envelope excursions of the signal without spreading its spectrum. This method is also shown to improve the transmitter's resilience to small gain and phase imbalances between the LINC's amplifiers. The proposed scheme can play a critical role on the upcoming 5G, since arranging several units of the proposed transmitter in an array/parallel configuration has the potential to simultaneously achieve the required high power and spectral efficiency.
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