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A Scalable and Cost Effective Architecture for High Gain Beamforming Antennas.

机译:高增益波束成形天线的可扩展且经济高效的架构。

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摘要

Many state-of-the-art wireless systems, such as long distance networks (point-to-point, point-to-multipoint, and mesh) and high bandwidth networks using mm-wave frequencies, require high gain antennas to overcome adverse channel conditions. These networks could be greatly aided by adaptive beamforming antenna arrays, which can significantly simplify the installation and maintenance costs (e.g., by enabling automatic beam alignment), and improve the capacity of these networks. Such networks typically require gains ranging from 20-30dBi with wide scanning range in both dimensions. To achieve this, arrays with hundreds or even thousands of antennas are required, which cannot be done with existing techniques that do not scale very well beyond 10-20 antennas.;In this dissertation, we examine and address the main challenges presented by large arrays, starting from electromagnetic/antenna and radio circuit design and proceeding to the signal processing and algorithms domain. We propose 3-dimensional antenna array structures that realize large gains and scan angles at a much reduced size and form factor compared with conventional planar antennas. At the circuit level, we propose a hybrid RF/digital beamforming radio architecture that takes advantage of low cost silicon integration to reduce the overall component count and power consumption levels of the system without limiting the capacity. We consider different techniques for implementing compact beamformers reliably at high radio frequencies, and present signal processing techniques based on adaptive filtering methods for optimizing those beamformers. The performance implications of low precision analog beamformers and implementation errors are also analyzed and quantified, and computationally efficient vector quantization techniques that take advantage of the size and scale of the arrays to compensate for low precision are proposed. We validate our approach with mathematical proofs and computer simulations.
机译:许多最新的无线系统,例如长距离网络(点对点,点对多点和网格)和使用毫米波频率的高带宽网络,都需要高增益天线来克服不利的信道条件。自适应波束成形天线阵列可以极大地帮助这些网络,这可以显着简化安装和维护成本(例如,通过启用自动波束对准),并提高这些网络的容量。这样的网络通常需要20-30dBi的增益,并且在两个维度上的扫描范围都很大。为此,需要具有数百个甚至数千个天线的阵列,而现有技术无法很好地扩展到10-20个天线以上;这是本论文中,我们研究并解决了大型阵列所面临的主要挑战,从电磁/天线和无线电电路设计开始,再到信号处理和算法领域。我们提出了3维天线阵列结构,与传统的平面天线相比,该结构可在大幅度减小尺寸和尺寸的情况下实现大增益和扫描角度。在电路方面,我们提出了一种混合RF /数字波束成形无线电架构,该架构利用低成本的硅集成技术来减少系统的总体组件数量和功耗水平,而又不限制容量。我们考虑了在高射频下可靠地实现紧凑型波束形成器的不同技术,并提出了基于自适应滤波方法的信号处理技术,以优化那些波束形成器。还对低精度模拟波束形成器的性能影响和实现误差进行了分析和量化,并提出了利用阵列大小和规模来补偿低精度的计算效率高的矢量量化技术。我们通过数学证明和计算机仿真来验证我们的方法。

著录项

  • 作者

    Bakr, Omar Mohammed.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Engineering Electronics and Electrical.;Computer Science.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 230 p.
  • 总页数 230
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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