随机相位偏移的分布式波束形成性能分析

Justin Kong, F. Dagefu, Brian M. Sadler
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引用次数: 2

摘要

在本文中,我们研究了一个无线网络,其中多个分布式发射器调整其信号的相位,以便它们可以建设性地添加到预期的接收器(客户端)。不同于传统的共定位和相位同步天线波束形成,地理上分离的发射机可能有由单个本地载波振荡器引起的相位偏移,这对相干分布式波束形成提出了挑战。对于相距很远的发射机来说尤其如此,因为分布式时钟同步协议可能更难以实现。在发射机的位置之间也可能存在期望的空间排斥,以便减轻相互耦合效应并扩大覆盖区域。在这方面,我们通过将发射机的空间分布建模为模拟排斥行为的$\beta$-Ginibre点过程来分析具有相位偏移的分布式波束形成的性能。我们考虑了两种传输策略:(i)发射机选择,其中客户端选择在客户端提供最高接收功率的发射机;(ii)相干波束形成,其中多个发射机同时向客户端发送信号。通过数值模拟,我们检验了相位偏移对性能的影响,并证实了我们分析的准确性。结果表明,即使存在显著的相位偏移误差,采用相干波束形成也是一种有效的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance Analysis of Distributed Beamforming With Random Phase Offsets
In this paper, we investigate a wireless network where multiple distributed transmitters adjust the phases of their signals so that they can be constructively added at an intended receiver (client). Unlike conventional beamforming with co-located and phase-synchronized antennas, geographically separated transmitters may have phase offsets induced by individual local carrier oscillators, that pose a challenge for coherent distributed beamforming. This is especially true for transmitters that are far apart, when distributed clock synchronization protocols may be more difficult to implement. There may also be a desired spatial repulsion among the positions of the transmitters in order to mitigate mutual coupling effects and extend the coverage region. In this regard, we analyze the performance of distributed beamforming with phase offsets by modeling the spatial distribution of the transmitters as a $\beta$-Ginibre point process that models the repulsive behavior. We consider two transmission strategies: (i) Transmitter selection in which the client chooses the transmitter providing the highest received power at the client, and (ii) Coherent beamforming in which multiple transmitters simultaneously send their signals to the client. From numerical simulations, we examine the impact of the phase offsets on the performance and confirm the accuracy of our analysis. It is shown that even with significant phase offset errors, employing coherent beamforming can be an effective strategy.
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