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Computational and geometrical aspects of on-the-fly ambiguity resolution.

机译:动态模糊度解析的计算和几何方面。

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摘要

Precise (centimetre level accuracy) kinematic differential positioning using GPS (Global Positioning System) requires the use of carrier phase observations with correctly resolved integer ambiguities. On-the-fly ambiguity resolution, i.e., ambiguity resolution while the receiver is in motion, is desirable, since it increases the flexibility and reliability of kinematic positioning. On-the-fly ambiguity resolution, however, is not an easy task. A lot of factors will affect the speed and reliability of the ambiguity resolution. In general, these factors can be categorized into three broader groups, namely the ambiguity resolution technique, the effects of the observation errors and biases, and the observation geometry, i.e., the geometry between the satellites, the monitor station(s), and the user.;In this research, the possibility of performing reliable and fast on-the-fly ambiguity resolution of GPS carrier phase signals is studied. An integrated on-the-fly ambiguity resolution technique was developed for this research. This technique was designed to work with either single-frequency, codeless, or dual-frequency GPS data from a minimum of five observed satellites, and it accommodates the use of more than one monitor station. The validity of the technique has been verified using static, simulated kinematic, and kinematic GPS data. The technique has been shown to be capable of resolving initial integer ambiguities on-the-fly reliably and quickly, even instantaneously under certain conditions.;Geometrical and computational aspects of on-the-fly ambiguity resolution have also been studied in this research, particularly related to their effects on the performance of on-the-fly ambiguity resolution. The geometrical aspects studied involve the following geometrical parameters: the wavelength of the signal, selection of primary satellites, number of satellites, observation differencing strategy, location of satellites available, data rate, number of secondary monitor stations, and location of secondary monitor stations. The computational aspects studied involve the ambiguity searching space construction and the process of identifying the correct ambiguities.
机译:使用GPS(全球定位系统)进行精确(厘米级精度)运动学差分定位需要使用载波相位观测结果,并正确解析整数模糊度。即时模糊度解决方案,即接收器运动时的模糊度解决方案是理想的,因为它增加了运动学定位的灵活性和可靠性。动态地解决歧义并不是一件容易的事。许多因素都会影响歧义度解析的速度和可靠性。通常,这些因素可以分为三大类,即歧义度分辨技术,观测误差和偏差的影响以及观测几何,即卫星,监测站和卫星之间的几何。在这项研究中,研究了对GPS载波相位信号执行可靠且快速的动态模糊度解析的可能性。为此研究开发了一种集成的即时模糊度解决技术。该技术旨在与来自至少五个观测卫星的单频,无代码或双频GPS数据配合使用,并且可以使用多个监控站。使用静态,模拟运动学和运动学GPS数据已验证了该技术的有效性。事实证明该技术能够可靠,快速,甚至在特定条件下即时解决初始整数歧义问题。在此研究中,还研究了动态歧义解决方案的几何和计算方面,特别是与它们对即时歧义解决方案性能的影响有关。研究的几何方面涉及以下几何参数:信号的波长,主要卫星的选择,卫星的数量,观测差异策略,可用卫星的位置,数据速率,辅助监视站的数量以及辅助监视站的位置。研究的计算方面涉及歧义搜索空间的构造和识别正确歧义的过程。

著录项

  • 作者

    Abidin, Hasanuddin Zainal.;

  • 作者单位

    University of New Brunswick (Canada).;

  • 授予单位 University of New Brunswick (Canada).;
  • 学科 Geographic information science and geodesy.;Remote sensing.
  • 学位 Ph.D.
  • 年度 1992
  • 页码 315 p.
  • 总页数 315
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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