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Self-interference Cancellation in Full-duplex Wireless Systems.

机译:全双工无线系统中的自干扰消除。

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摘要

Due to the tremendous increase in wireless data traffic, one of the major challenges for future wireless systems is the utilization of the available spectrum to achieve better data rates over limited spectrum. Currently, systems operate in what is termed "Half Duplex Mode", where they are either transmitting or receiving, but never both using the same temporal and spectral resources. Full-duplex transmission promises to double the spectral efficiency where bidirectional communications is carried out over the same temporal and spectral resources. The main limitation impacting full-duplex transmission is managing the strong self-interference signal imposed by the transmit antenna on the receive antenna within the same transceiver. Several recent publications have demonstrated that the key challenge in practical full-duplex systems is un-cancelled self-interference power caused by a combination of hardware imperfections, especially Radio Frequency (RF) circuits' impairments.;In this thesis, we consider the problem of self-interference cancellation in full-duplex systems. The ultimate goal of this work is to design and build a complete, real-time, full-duplex system that is capable of achieving wireless full-duplex transmission using practical hardware platforms. Since RF circuits' impairments are shown to have significant impact on the self-interference cancellation performance, first, we present a thorough analysis of the effect of RF impairments on the cancellation performance, with the aim of identifying the main performance limiting factors and bottlenecks. Second, the thesis proposes several impairments mitigation techniques to improve the overall self-interference cancellation capability by mitigating most of the transceiver RF impairments. In addition to impairments mitigation, two novel full-duplex transceiver architectures that achieve significant self-interference cancellation performance are proposed. The performance of the proposed techniques is analytically and experimentally investigated in practical wireless environments. Finally, the proposed self-interference cancellation techniques are used to build a complete full-duplex system with a 90% experimentally proven full-duplex rate improvement compared to half-duplex systems.
机译:由于无线数据流量的巨大增长,未来无线系统的主要挑战之一是利用可用频谱在有限的频谱上实现更好的数据速率。当前,系统以所谓的“半双工模式”运行,在该系统中,它们正在发送或接收,但是从不使用相同的时间和频谱资源。当在相同的时间和频谱资源上进行双向通信时,全双工传输有望使频谱效率提高一倍。影响全双工传输的主要限制是管理同一收发器内发射天线施加在接收天线上的强自干扰信号。最近的一些出版物证明,在实际的全双工系统中,关键的挑战是由硬件缺陷(尤其是射频(RF)电路的缺陷)的组合引起的不可取消的自干扰功率。全双工系统中的自干扰消除。这项工作的最终目标是设计和构建一个完整的实时全双工系统,该系统能够使用实用的硬件平台实现无线全双工传输。由于射频电路的损伤已显示出对自干扰消除性能的显着影响,因此,首先,我们对射频损伤对消除性能的影响进行全面分析,以找出主要的性能限制因素和瓶颈。其次,本文提出了几种减损技术,以通过减轻大多数收发器RF减损来提高整体自干扰消除能力。除了减损之外,还提出了两种新颖的全双工收发器架构,这些架构可实现显着的自干扰消除性能。在实际的无线环境中,对所提出技术的性能进行了分析和实验研究。最后,所提出的自干扰消除技术用于构建完整的全双工系统,与半双工系统相比,该方法具有90%的实验证明的全双工速率提高。

著录项

  • 作者单位

    University of California, Irvine.;

  • 授予单位 University of California, Irvine.;
  • 学科 Engineering Computer.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 173 p.
  • 总页数 173
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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