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Adaptive antenna arrays for precision GNSS receivers.

机译:适用于精密GNSS接收机的自适应天线阵列。

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摘要

Antenna arrays with adaptive filters are currently used to provide interference suppression capabilities for Global Navigation Satellite System (GNSS) receivers. An adaptive array allows greater performance over a single element antenna by providing beamforming/null steering in the directions of satellites and interference sources. Unfortunately, there are some important limitations to the GNSS adaptive arrays in use today. For example, in the process of suppressing interference, adaptive antennas may inadvertently distort the GNSS signal and introduce bias errors into the receiver's position and time estimates. Furthermore, many systems produce suboptimal interference suppression performance, which degrades the accuracy of the navigation solution. To overcomes these limitations, this dissertation develops novel adaptive antenna algorithms and techniques suitable for precision GNSS receivers. Three primary contributions are made. First, it develops an approach for optimal suppression of interference. For a GNSS application, this corresponds to an adaptive filter that maximizes carrier-to-noise ratio (C/N0). The second contribution is the development of approaches for preventing the adaptive antenna array from introducing errors into the GNSS receiver measurements. These techniques take the form of a special adaptive filter algorithm and additional receiver logic that mathematically guarantee zero antenna-induced error even during interference suppression. Since mitigation of these errors requires accurate antenna manifold information, a calibration procedure is needed to obtain the antenna manifolds in an efficient and practical manner. Consequently, the third contribution is a novel self-calibration algorithm. This algorithm simultaneously estimates the antenna manifold and navigation information "on-the-fly". Collectively, these contributions advance the state-of-the-art in GNSS adaptive antennas in terms of performance, precision and practicality.
机译:具有自适应滤波器的天线阵列目前用于为全球导航卫星系统(GNSS)接收器提供干扰抑制功能。自适应阵列通过在卫星和干扰源的方向上提供波束成形/零方向控制,可以在单元素天线上实现更高的性能。不幸的是,当今使用的GNSS自适应阵列存在一些重要限制。例如,在抑制干扰的过程中,自适应天线可能会无意中使GNSS信号失真,并将偏置误差引入接收机的位置和时间估计中。此外,许多系统产生的干扰抑制性能都不理想,这会降低导航解决方案的准确性。为了克服这些限制,本文开发了适用于精密GNSS接收机的新型自适应天线算法和技术。做出了三个主要贡献。首先,它开发了一种最佳抑制干扰的方法。对于GNSS应用,这对应于一个自适应滤波器,该滤波器可使载波噪声比(C / N0)最大化。第二个贡献是用于防止自适应天线阵列将误差引入GNSS接收机测量的方法的发展。这些技术采用特殊的自适应滤波器算法和额外的接收器逻辑的形式,即使在干扰抑制期间,该接收器逻辑也可以数学上保证零天线引起的误差。由于减轻这些错误需要准确的天线歧管信息,因此需要一种校准程序以有效且实用的方式获得天线歧管。因此,第三个贡献是一种新颖的自校准算法。该算法同时“实时”估计天线歧管和导航信息。总的来说,这些贡献在性能,精度和实用性方面推动了GNSS自适应天线的最新发展。

著录项

  • 作者

    O'Brien, Andrew J.;

  • 作者单位

    The Ohio State University.;

  • 授予单位 The Ohio State University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 227 p.
  • 总页数 227
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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