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Methods for enhancing carrier phase GNSS positioning and attitude determination performance.

机译:增强载波相位GNSS定位和姿态确定性能的方法。

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摘要

This thesis explores the methods for enhancing the performance of using low cost, single frequency Carrier phase Differential Global Navigation Satellite System (CDGNSS) in real-time, safety or liability critical applications. This is done by improving the integer ambiguity resolution performance and carrier phase error modeling.;CDGNSS is considered for a broad range of real-time applications which require both a high precision relative positioning and attitude determination system. This is because of the drift-free nature of the GNSS measurement errors and the precise nature of the carrier phase measurement. The key to making full use of the precise nature of the carrier phase measurement is to fix the integer ambiguity quickly and reliably. This poses the biggest challenge for a low cost single frequency system. For the attitude determination problem, the precisely known baseline lengths can be used to improve the integer ambiguity resolution performance. Traditionally, the relative positioning problem was solved independently of the attitude determination problem and, thus could not leverage the precisely known baseline lengths of the attitude determination system. However, by integrating the two systems together, the precisely known baseline lengths can be used to improve the relative positioning system as well. The first part of the thesis develops an integration framework to improve the integer ambiguity resolution performance for the relative positioning system and the attitude determination system simultaneously.;The second part of the thesis provides a GNSS antenna Phase Center Variation (PCV) error model development to improve the accuracy of the integrated system. It also examines the feasibility analysis of using the developed error model for a real-time dynamic application. The challenging of using this in the real time lies in the fact that PCV error magnitude is small (less than 2cm) and the developed error model is a function of unknown parameter such as attitude. A feasibility analysis of the developed model with a set of specific antennas is performed and assessed.
机译:本文探索了在实时,安全或责任关键应用中提高使用低成本,单频载波相位差分全球导航卫星系统(CDGNSS)的性能的方法。这是通过改善整数模糊度分辨率性能和载波相位误差建模来完成的。CDGNSS被认为适用于需要高精度相对定位和姿态确定系统的广泛实时应用。这是由于GNSS测量误差的无漂移特性以及载波相位测量的精确特性所致。充分利用载波相位测量的精确特性的关键是快速,可靠地修复整数模糊度。这对低成本的单频系统构成了最大的挑战。对于姿态确定问题,可以使用精确已知的基线长度来改善整数歧义分辨率性能。传统上,相对定位问题是独立于姿态确定问题解决的,因此无法利用姿态确定系统的精确已知的基线长度。但是,通过将两个系统集成在一起,精确已知的基线长度也可以用于改善相对定位系统。论文的第一部分开发了一个集成框架,以同时提高相对定位系统和姿态确定系统的整数模糊度分辨率性能。论文的第二部分提供了GNSS天线相位中心变化(PCV)误差模型的开发。提高集成系统的准确性。它还检查了将开发的错误模型用于实时动态应用程序的可行性分析。实时使用该算法的挑战在于PCV误差幅度较小(小于2cm),并且开发的误差模型是未知参数(例如姿态)的函数。进行并评估了带有一组特定天线的已开发模型的可行性分析。

著录项

  • 作者

    Zheng, Guijin.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:36:43

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