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Frequency synchronization techniques for coordinated multibase MIMO wireless communication systems.

机译:用于协作式多基MIMO无线通信系统的频率同步技术。

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摘要

This thesis is a study into the synchronization of the downlink of a coordinated multi-base/multiuser (CMBMU) system. The goal of CMBMU systems is to form a systemwide MIMO network using multiple co-channel basestations (BSs) and mobile subscribers (MSs). Compared to existing cellular systems, CMBMU benefits include increased micro- and macrodiversity.;Then, multi-CFO estimation techniques are explored. A MS-side estimator that exploits the convexity of the maximum likelihood (ML) metric is derived. Since convexity of the ML metric is dependent on the length of the training sequence and the severity of the CFO, segmentation methods that guarantee convexity of the ML metric are formulated. The performance of both the convex estimators and the segmentation methods are shown to asymptotically meet the Cramer-Rao lower bound for multi-CFO estimates.;As it is impossible for the MS to correct for the BS CFOs in the CMBMU downlink, an estimation and correction technique that requires co-operation between the BSs and MSs is presented. The initial MS-side estimates, which are fed back to the BSs, are shown to be biased. The proposed technique overcomes this bias, with the end result being that the entire system is brought to a common carrier frequency.;During multi-CFO estimation, additional channel impairments such as timing offset, frequency selective channels and time selective channels can complicate matters. Straightforward modifications to the ML metric are made that compensate for timing offset and frequency selective channels. A new ML metric based on a parameterized channel estimate that uses the autocorrelation function of the channel gains is used to compensate for time selective channels. Improvements to the CFO MSE of nearly two orders of magnitude are achievable over using the original channel estimator.;The effects of channel and system impairments on the sum-rate capacity of a linear downlink CMBMU beamforming technique are examined in order to establish which impairments are most problematic. The presence of multiple carrier frequency offsets (CFOs) within the system is identified as the largest problem. It is demonstrated that the effect of local oscillator induced CFO on the sum-rate capacity is more significant than Doppler-induced CFO.;Keywords: basestation coordination; beamforming; carrier frequency offset; fading channel; MIMO systems; mobile communication systems.
机译:本文是对协同多基站/多用户(CMBMU)系统下行链路同步的研究。 CMBMU系统的目标是使用多个同信道基站(BS)和移动用户(MS)形成一个系统范围的MIMO网络。与现有的蜂窝系统相比,CMBMU的好处包括增加了微观和宏观多样性。然后,探索了多种CFO估计技术。推导了利用最大似然(ML)度量凸度的MS侧估计器。由于ML度量的凸度取决于训练序列的长度和CFO的严重性,因此制定了保证ML度量的凸度的分割方法。凸估计量和分割方法的性能均渐近地满足了对多CFO估计的Cramer-Rao下界。;由于MS无法校正CMBMU下行链路中的BS CFO,因此估计和提出了需要BS和MS之间合作的校正技术。反馈到BS的初始MS侧估计被显示为有偏差的。所提出的技术克服了这种偏差,最终结果是整个系统被带到一个公共载波频率。在进行多CFO估计时,诸如定时偏移,频率选择信道和时间选择信道之类的其他信道损伤会使事情变得复杂。对ML度量进行了直接修改,以补偿定时偏移和频率选择通道。基于参数化信道估计的新ML度量使用信道增益的自相关函数,用于补偿时间选择信道。通过使用原始信道估计器,可以将CFO MSE改善近两个数量级。检验信道和系统损伤对线性下行链路CMBMU波束成形技术总速率容量的影响,以确定哪些损伤是最有问题的。系统内多个载波频率偏移(CFO)的存在被认为是最大的问题。结果表明,本地振荡器引起的CFO对总速率能力的影响比多普勒引起的CFO影响更大。波束成形载波频率偏移;衰落信道; MIMO系统;移动通信系统。

著录项

  • 作者

    Zarikoff, Bradley.;

  • 作者单位

    Simon Fraser University (Canada).;

  • 授予单位 Simon Fraser University (Canada).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 160 p.
  • 总页数 160
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 能源与动力工程;
  • 关键词

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