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Frugal Sensing and Estimation over Wireless Networks.

机译:无线网络上的节俭感知和估计。

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摘要

Spectrum sensing and channel estimation are two important examples of background tasks needed for efficient wireless network operations. Channel and spectrum state communication overheads can become a serious burden, unless appropriate sensing and estimation strategies are designed that can do the job well with very limited, judicious feedback. This thesis considers two `frugal' sensing and estimation problems in this regime: crowdsourced power spectrum sensing using a network of low-end sensors broadcasting few bits; and channel estimation and tracking for transmit beamforming in frequency-division duplex (FDD) mode.;In the case of spectrum sensing, each sensor is assumed to pass the received signal through a random wideband filter, measure the average power at the output of the filter, and send out a single bit to a fusion center (FC) depending on its measurement. Exploiting linearity with respect to the autocorrelation as well as important non negativity properties in a novel linear programming (LP) formulation, it is shown that adequate power spectrum sensing is possible from few bits, even for dense spectra. The formulation can be viewed as generalizing classical nonparametric spectrum estimation to the case where the data is in the form of inequalities, rather than equalities. Taking into account fading and insufficient sample averaging considerations, a different convex maximum likelihood (ML) formulation is developed, outperforming the LP formulation when the power estimates prior to thresholding are noisy. Assuming availability of a downlink channel that the FC can use to send threshold information, active sensing strategies are developed which quickly narrow down the power spectrum estimate.;For the downlink channel tracking problem, the receiver is assumed to send back to the transmitter a coarsely quantized version of the received transmitter-beamformed pilot signal, instead of sending quantized channel information as in codebook-based beamforming. A novel channel tracking approach is proposed that exploits the quantization bits in a maximum a posteriori (MAP) estimation formulation, and closed-form expressions for the channel estimation mean-squared error and the corresponding signal-to-noise ratio are derived under certain conditions.
机译:频谱感测和信道估计是高效无线网络操作所需的后台任务的两个重要示例。信道和频谱状态通信的开销可能会成为一个沉重的负担,除非设计出适当的检测和估计策略以非常有限的,明智的反馈才能很好地完成工作。本文考虑了在这种情况下的两个“节俭”感测和估计问题:使用广播少量比特的低端传感器网络进行众包功率谱感测;在频分双工(FDD)模式下,假定每个传感器都将接收的信号通过随机宽带滤波器传递,并测量频分双工(FDD)模式下的平均功率,并进行信道估计和跟踪。过滤,然后根据其测量结果将一个比特发送到融合中心(FC)。在新颖的线性规划(LP)公式中利用自相关的线性以及重要的非负性特性,结果表明,即使对于稠密的频谱,也可以从几位进行足够的功率谱检测。这种表述可以看作是将经典的非参数频谱估计推广到数据不等式而不是等式的情况。考虑到衰落和不充分的样本平均考虑因素,开发了不同的凸最大似然(ML)公式,当阈值之前的功率估计有噪声时,其性能优于LP公式。假设FC可以使用下行链路信道发送阈值信息,则开发了主动感应策略,可以迅速缩小功率谱估计范围;对于下行链路信道跟踪问题,假定接收机粗略地将信号发送回发射机接收到的发射机波束成形导频信号的量化版本,而不是像基于密码本的波束成形那样发送量化的信道信息。提出了一种新颖的信道跟踪方法,该方法利用最大后验(MAP)估计公式中的量化位,并在某些条件下得出信道估计均方误差和相应信噪比的闭式表达式。

著录项

  • 作者

    Mehanna, Omar.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 121 p.
  • 总页数 121
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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