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Ambiguity resolution with double troposphere parameter restriction for long range reference stations in NRTK System

机译:NRTK系统中远程参考站的对流层参数限制为双歧义的歧义解析

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摘要

The correct ambiguity resolution between reference stations is the key to calculate the high precision Network Real-Time Kinematic (NRTK) differential information. For long range reference stations (>= 50 km), the double difference troposphere model residuals should be considered as the parameters being solved, but this will aggravate the ill conditioning of ambiguity resolution (AR) model between reference stations; as a result, the ambiguity fixing becomes more difficult for the case of long range station ambiguity resolution. In the paper, a new method with double troposphere parameters restriction is put forward for ambiguity resolution of long range reference stations. The proposed method applies GPT2 model, which is called the state of the art empirical troposphere model, to form a high precision troposphere a priori estimation to provide high accuracy double difference troposphere delay estimation. Based on the principles of TIKHONOV regularisation, a regularisation criterion for the double difference restrictionmodel is then built. The difference between the troposphere estimation and the truth value is used as a restriction parameter to improve the estimation of the unknown parameters and optimisation of the ambiguity search range. Trials verify the significant reduction in the ill conditioning of the parametric resolution functions when the double troposphere restriction model is applied. The success rate of ambiguity resolution within 60 s is above 98% for baselines over 80 km, which is an immense improvement from conventional methods.
机译:参考站之间正确的歧义分辨率是计算高精度网络实时运动(NRTK)差分信息的关键。对于长距离参考站(> = 50 km),应考虑对流层双差模型残差作为要求解的参数,但这会加重参考站之间歧义分辨率(AR)模型的不良条件。结果,对于远距离站模糊度的解决,模糊度固定变得更加困难。提出了一种对流层参数双重限制的新方法,以解决远程参考站的模糊性问题。所提出的方法应用称为先进对流层模型的GPT2模型来形成高精度对流层,并进行先验估计以提供高精度双差对流层延迟估计。基于TIKHONOV正则化的原理,然后为双差异限制模型建立了正则化准则。对流层估计值与真值之间的差用作限制参数,以改进未知参数的估计和模糊度搜索范围的优化。试验证明,当应用对流层双限制模型时,参数解析函数的病态显着减少。对于80 km以上的基线,在60 s内歧义解决的成功率超过98%,这是对传统方法的巨大改进。

著录项

  • 来源
    《Survey Review》 |2015年第345期|429-437|共9页
  • 作者单位

    Southeast Univ, Sch Instrument Sci & Engn, Nanjing 210096, Jiangsu, Peoples R China|Univ Nottingham, Nottingham Geospatial Inst, Nottingham NG7 2TU, England;

    Univ Nottingham, Nottingham Geospatial Inst, Nottingham NG7 2TU, England;

    Southeast Univ, Sch Instrument Sci & Engn, Nanjing 210096, Jiangsu, Peoples R China|Anhui Univ Sci & Technol, Sch Surveying & Mapping Engn, Huainan 232001, Peoples R China;

    Southeast Univ, Sch Transportat, Nanjing 210096, Jiangsu, Peoples R China;

    Southeast Univ, Sch Transportat, Nanjing 210096, Jiangsu, Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Double troposphere restriction; Network RTK; Select Power Fitting; Ill conditioning;

    机译:对流层双限制;网络RTK;选择功率拟合;病态调节;

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