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On real-time orbit improvement for GPS satellites.

机译:关于GPS卫星的实时轨道改进。

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摘要

Many geodetic GPS applications require orbits of better accuracy than the predicted ones broadcast by the satellites themselves. However, orbits of high quality are available to users. Their generation is based on GPS data collected by dedicated tracking networks. Nevertheless, these orbits are available only after an interval of several days following data collection. For real-time positioning applications, one currently depends on the broadcast orbits.;An alternative, real-time approach for orbit improvement is described here. This approach is designed to yield, in real-time, the best representation of orbits based on all available observations from a network of fiducial stations. The algorithm design is based on a unit, called the update step, which defines the length of the orbital arc over which the improvement takes place. The initial conditions computed in one orbital arc are propagated into the following one.;The algorithm was implemented based on the UNB DIPOP software package, which was further modified to allow network adjustment including correlations between simultaneously observed baselines. The principle of the method has been tested using data collected by a network of 8 stations in Canada and the U.S., which are part of the IGS network. The orbital arcs generated with the method have been compared among themselves, in a test of orbit repeatability to test the orbit internal consistency, and also with the IGS orbits, in a test of external consistency. A subset of the 8-station network has been processed constraining the orbits generated by the real-time algorithm to assess their effect in geodetic positioning. These tests aimed to assess the quality of the orbits generated with the proposed method.;The results show that the real-time orbits are at or below the 1 metre level 3drms. Their use in geodetic positioning yield baselines with relative error varying from 0.05 to 0.02 ppm, over baselines of hundreds of kilometres. This represents an improvement of 1 order of magnitude over the broadcast orbits, the only ones presently available for real-time applications.
机译:许多大地测量GPS应用所要求的轨道精度要比卫星本身广播的预测精度更高。但是,用户可以使用高质量的轨道。它们的生成基于专用跟踪网络收集的GPS数据。然而,这些轨道仅在数据收集后的几天间隔之后才可用。对于实时定位应用,当前取决于广播轨道。;此处介绍了另一种实时改进轨道的方法。这种方法旨在根据基准站网络的所有可用观测结果实时生成最佳的轨道表示。算法设计基于一个称为更新步骤的单元,该单元定义了进行改进的轨道弧的长度。在一个轨道弧中计算的初始条件将传播到下一个条件。该算法是基于UNB DIPOP软件包实现的,对该软件包进行了进一步修改以允许进行网络调整,包括同时观察到的基线之间的相关性。该方法的原理已使用加拿大和美国的8个站点组成的网络进行了测试,这些站点是IGS网络的一部分。在测试轨道可重复性以测试轨道内部一致性的过程中,已经比较了用该方法生成的轨道弧,在测试外部一致性的过程中,还与IGS轨道进行了比较。已处理了8站网络的一个子集,以约束由实时算法生成的轨道,以评估它们在大地定位中的作用。这些测试旨在评估所提出的方法产生的轨道的质量。结果表明,实时轨道等于或低于1米高度的3drms。它们在大地定位中的使用产生的基线相对误差在0.05至0.02 ppm之间,超过了数百公里。这表示在广播轨道上提高了1个数量级,这是目前唯一可用于实时应用的轨道。

著录项

  • 作者单位

    University of New Brunswick (Canada).;

  • 授予单位 University of New Brunswick (Canada).;
  • 学科 Geodesy.
  • 学位 Ph.D.
  • 年度 1995
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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