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A review on the inter-frequency biases of GLONASS carrier-phase data

机译:GLONASS载波相位数据的频率间偏差综述

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摘要

GLONASS ambiguity resolution (AR) between inhomogeneous stations requires correction of inter-frequency phase biases (IFPBs) (a "station" here is an integral ensemble of a receiver, an antenna, firmware, etc.). It has been elucidated that IFPBs as a linear function of channel numbers are not physical in nature, but actually originate in differential code-phase biases (DCPBs). Although IFPBs have been prevalently recognized, an unanswered question is whether IFPBs and DCPBs are equivalent in enabling GLONASS AR. Besides, general strategies for the DCPB estimation across a large network of heterogeneous stations are still under investigation within the GNSS community, such as whether one DCPB per receiver type (rather than individual stations) suffices, as tentatively suggested by the IGS (International GNSS Service), and what accuracy we are able to and ought to achieve for DCPB products. In this study, we review the concept of DCPBs and point out that IFPBs are only approximate derivations from DCPBs, and are potentially problematic if carrier-phase hardware biases differ by up to several millimeters across frequency channels. We further stress the station and observable specific properties of DCPBs which cannot be thoughtlessly ignored as conducted conventionally. With 212 days of data from 200 European stations, we estimated DCPBs per stations by resolving ionosphere-free ambiguities of 5.3 cm wavelengths, and compared them to the presumed truth benchmarks computed directly with L1 and L2 data on ultra-short baselines. On average, the accuracy of our DCPB products is around 0.7 ns in RMS. According to this uncertainty estimates, we could unambiguously confirm that DCPBs can typically differ substantially by up to 30 ns among receivers of identical types and over 10 ns across different observables. In contrast, a DCPB error of more than 6 ns will decrease the fixing rate of ionosphere-free ambiguities by over 20 %, due to their smallest frequency spacing and highest sensitivity to DCPB errors. Therefore, we suggest that (1) the rigorous DCPB model should be implemented instead of the classic, but inaccurate IFPB model; (2) DCPBs of sub-ns accuracy can be achieved over a large network by efficiently resolving ionosphere-free ambiguities; (3) DCPBs should be estimated and applied on account of their station and observable specific properties, especially for ambiguities of short wavelengths.
机译:非均质站点之间的GLONASS模糊度分辨率(AR)需要校正频率间相位偏差(IFPB)(此处的“站点”是接收机,天线,固件等不可分割的整体)。已经阐明,IFPB作为信道号的线性函数实际上不是物理上的,而是实际上起源于差分码相偏置(DCPB)。尽管IFPB已得到普遍认可,但尚未解决的问题是IFPB和DCPB在启用GLONASS AR方面是否等效。此外,GNSS社区仍在研究跨大型异构站点网络进行DCPB估计的一般策略,例如每种接收器类型(而不是单个站点)的DCPB是否足以满足IGS(国际GNSS服务)的建议。 ),以及我们能够和应该达到的DCPB产品精度。在这项研究中,我们回顾了DCPB的概念,并指出IFPB只是DCPB的近似推导,如果载波相位硬件偏差在整个频道上相差几毫米,则可能存在问题。我们进一步强调DCPB的站位和可观察到的特定属性,这是常规进行时不能忽略的。利用来自200个欧洲站点的212天的数据,我们通过解决5.3 cm波长的无电离层模糊度来估算每个站点的DCPB,并将它们与直接用超短基线的L1和L2数据直接计算得出的真实基准进行比较。平均而言,我们的DCPB产品的RMS精度约为0.7 ns。根据这种不确定性估计,我们可以明确地确认,相同类型的接收器之间的DCPB通常相差30 ns,而在不同的可观测范围内相差10 ns以上。相比之下,DCPB误差超过6 ns会使无电离层模糊度的固定率降低20%以上,这是因为它们的最小频率间隔和对DCPB误差的最高灵敏度。因此,我们建议(1)应该采用严格的DCPB模型,而不是经典但不准确的IFPB模型; (2)通过有效解决无电离层的歧义,可以在大型网络上实现亚ns精度的DCPB; (3)DCPB的估计和应用应基于它们的台站和可观察到的特定特性,尤其是对于短波长的歧义。

著录项

  • 来源
    《Journal of Geodesy》 |2017年第3期|329-340|共12页
  • 作者单位

    Wuhan Univ, GNSS Res Ctr, Wuhan, Peoples R China|Wuhan Univ, Collaborat Innovat Ctr Earth & Space Sci, Wuhan, Peoples R China;

    Wuhan Univ, GNSS Res Ctr, Wuhan, Peoples R China|Wuhan Univ, Collaborat Innovat Ctr Earth & Space Sci, Wuhan, Peoples R China;

    Wuhan Univ, GNSS Res Ctr, Wuhan, Peoples R China|Wuhan Univ, Collaborat Innovat Ctr Earth & Space Sci, Wuhan, Peoples R China;

    Wuhan Univ, GNSS Res Ctr, Wuhan, Peoples R China|Wuhan Univ, Collaborat Innovat Ctr Earth & Space Sci, Wuhan, Peoples R China;

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

    GLONASS; Ambiguity resolution; Inter-frequency phase bias; Differential code-phase bias;

    机译:GLONASS;歧义分辨率;异频相位偏置;差分码相位偏置;

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