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Filtering by Aliasing and its application to Reconfigurable Filtering and Compressive Signal Acquisition.

机译:混叠滤波及其在可重配置滤波和压缩信号采集中的应用。

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摘要

The communication systems community has been working towards integrated Software-Defined Radios (SDRs) and Cognitive Radios (CRs) that can reduce cost and enhance connectivity. In light of the technology bottleneck at the analog-to-digital converter (ADC) and the in-applicability of off-chip filters, the integrated analog front-end is entrusted with the task of sharp, linear, and programmable signal selection required for SDRs and CRs. Traditional analog filtering techniques, however, incur a high penalty in power consumption, area, and linearity to provide the required sharpness and programmability. Similarly, recent efforts that use compressive sensing to acquire wideband spectra have also faced a bottleneck in the complexity and re-configurability of the analog measurement front-end.;Towards enabling SDRs and CRs, this dissertation proposes a new perspective on the design of anti-alias filters that defies the traditional trade-off between cost, linearity, and programmability. The technique, termed Filtering by Aliasing (FA), anticipates the aliasing operation at the sampler instead of avoiding it. The pre-sampling circuitry is modulated, using the high-speed switching techniques popular in state-of-the-art receivers, to provide significantly enhanced filtering responses at the sampling instances. The dissertation describes how the FA technique, by varying the resistor of a single-pole passive RC filter for example, provides programmable anti-alias filtering comparable to a 7th-order Butterworth filter.;On the compressive sensing front, this dissertation proposes a new approach to the acquisition of sparse spectra using Random Filtering by Aliasing (RFA). RFA acknowledges the existence of noise in realistic spectra and accordingly simplifies the analog measurement stage, moving most of the complexity to the low-cost, highly reconfigurable digital domain. RFA achieves significantly better resolution, lower cost, and better programmability than existing schemes.
机译:通信系统界一直在努力开发集成的软件定义无线电(SDR)和认知无线电(CR),以降低成本并增强连接性。鉴于模数转换器(ADC)的技术瓶颈以及片外滤波器的不适用性,集成模拟前端的任务是为实现以下目标而进行清晰,线性和可编程的信号选择: SDR和CR。但是,传统的模拟滤波技术会在功耗,面积和线性度方面带来很大的损失,以提供所需的清晰度和可编程性。同样,最近使用压缩感测来获取宽带频谱的工作也遇到了模拟测量前端的复杂性和可重新配置性的瓶颈。;为实现SDR和CR,本论文为抗干扰设计提出了新的观点。 -alias过滤器无法在成本,线性度和可编程性之间进行传统的权衡。这项技术被称为“按别名过滤”(FA),它会在采样器中预见到锯齿操作,而不是避免这种情况。使用在最新技术的接收器中流行的高速切换技术对预采样电路进行调制,以在采样时刻提供显着增强的滤波响应。论文介绍了FA技术如何通过例如改变单极无源RC滤波器的电阻来提供与7阶巴特沃斯滤波器相当的可编程抗混叠滤波器。在压缩感测方面,本文提出了一种新的方法。混叠随机滤波(RFA)的方法来稀疏光谱的采集。 RFA承认现实频谱中存在噪声,因此简化了模拟测量阶段,将大多数复杂性转移到了低成本,高度可重新配置的数字域。与现有方案相比,RFA实现了更好的分辨率,更低的成本和更好的可编程性。

著录项

  • 作者

    Rachid, Mansour.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 116 p.
  • 总页数 116
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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