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An improved model for precise point positioning with modernized global positioning system.

机译:使用现代化的全球定位系统进行精确点定位的改进模型。

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摘要

Recent developments in GPS positioning show that a user with a standalone GPS receiver can obtain positioning accuracy comparable to that of carrier-phase-based differential positioning. Such a technique is commonly known as precise point positioning (PPP). A significant challenge of PPP, however, is that it typically requires a minimum of 30 minutes to achieve centimeter- to decimeter-level accuracy. This relatively long convergence time is the result of un-modeled GPS residual errors. This thesis addresses error mitigation techniques to achieve near real-time PPP.;A major residual error component, which affects the convergence of PPP solution, is the higher-order ionospheric delay. We rigorously modeled the second-order ionospheric delay, which represents the bulk of higher-order ionospheric delay, for our PPP model. First, we investigated the effect of second-order ionospheric delay on GPS satellite orbit and clock corrections. Second, we used the estimated satellite orbit and clock corrections to process the GPS data from several IGS stations after correcting the data for the effect of second-order ionospheric delay. The results demonstrated an improvement of up to 25% in the precision of the estimated coordinates with the second-order ionospheric delay, as well as reduction of the convergence time of the estimated parameters by about 15%, depending on the geographic location and ionospheric and geomagnetic conditions.;Between-satellite single-difference PPP algorithms were developed to cancel out the receiver clock error, receiver initial phase bias, and receiver hardware delay. The decoupled clock corrections, provided by NRCan, were also applied to account for the satellite hardware delay and satellite initial phase bias. GPS data collected from several IGS stations were processed using the un-differenced model, un-differenced decoupled clock model, between-satellite single-difference (BSSD) model, and between-satellite single-difference using the decoupled clock (BSSD-DC) model. The results showed that the proposed BSSD model significantly improved the PPP convergence time by 50% and improved the solution precision by more than 60% over the traditional un-differenced PPP model.;To explore the full advantage of the modernized GPS L2C signal, it is essential to determine its stochastic characteristics and code bias. GPS measurements were collected in order to study the stochastic characteristics of the modernized GPS L2C signal. As a byproduct, the stochastic characteristics of the legacy GPS signals, namely C/A and P2 codes, were also determined and then used to verify the developed stochastic model of the modernized signal. The differential code biases between P2 and C2, DCBP2-C2, were also estimated using the Bernese GPS software.
机译:GPS定位的最新发展表明,具有独立GPS接收器的用户可以获得与基于载波相位的差分定位相当的定位精度。这种技术通常称为精确点定位(PPP)。但是,PPP的一项重大挑战是,它通常至少需要30分钟才能达到厘米级到分米级的精度。相对较长的收敛时间是未建模的GPS残留误差的结果。本文研究了实现近实时PPP的错误缓解技术。高阶电离层延迟是影响PPP解决方案收敛的主要残余误差成分。对于PPP模型,我们严格模拟了二阶电离层延迟,它代表了大部分高阶电离层延迟。首先,我们研究了二阶电离层延迟对GPS卫星轨道和时钟校正的影响。其次,在校正了数据对二阶电离层延迟的影响之后,我们使用估计的卫星轨道和时钟校正来处理来自多个IGS站的GPS数据。结果表明,根据地理位置和电离层的变化,随着二阶电离层延迟,估计坐标的精度提高了25%,估计参数的收敛时间减少了约15%。卫星之间的单差PPP算法被开发出来以抵消接收器时钟误差,接收器初始相位偏置和接收器硬件延迟。由NRCan提供的解耦时钟校正也用于解决卫星硬件延迟和卫星初始相位偏差。使用无差异模型,无差异解耦时钟模型,卫星间单差(BSSD)模型和卫星间单差使用解耦时钟(BSSD-DC)处理从多个IGS站收集的GPS数据模型。结果表明,与传统的无差分PPP模型相比,提出的BSSD模型可将PPP收敛时间显着提高50%,并将求解精度提高60%以上。为了探究现代化GPS L2C信号的全部优势,对于确定其随机特性和代码偏差至关重要。收集GPS测量值以研究现代化GPS L2C信号的随机特性。作为副产品,还确定了遗留GPS信号的随机特性,即C / A和P2码,然后将其用于验证现代化信号的已开发随机模型。还使用Bernese GPS软件估算了P2和C2之间的差分代码偏差DCBP2-C2。

著录项

  • 作者

    Elsobeiey, Mohamed Elsayed.;

  • 作者单位

    Ryerson University (Canada).;

  • 授予单位 Ryerson University (Canada).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 207 p.
  • 总页数 207
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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