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首页> 外文期刊>Journal of Geodesy >Between-satellite single-difference integer ambiguity resolution in GPS/GNSS network solutions
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Between-satellite single-difference integer ambiguity resolution in GPS/GNSS network solutions

机译:GPS / GNSS网络解决方案中的卫星间单差整数歧义分辨率

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摘要

In various GNSS applications with high requirements for precision, integer ambiguity resolution (IAR) is of great significance for taking full advantage of precise carrier-phase observations. Until now, there are two approaches to achieving IARin network solutions, i.e., to resolve double-difference (DD) integer ambiguities or to resolve zero-difference (ZD) integer ambiguities. In this paper, we will present an approach to resolving between-satellite single-difference (BSSD) integer ambiguities in network solutions. BSSD ambiguity fixing can be divided into two main steps: Firstly, WL satellite FCBs are estimated to help to fix WL BSSD ambiguities and then narrow-lane (NL) BSSD ambiguity resolution is performed in a bootstrapping mode: datum BSSD ambiguities are selected and compulsorily fixed to the nearest integers and then a standard sequential fixing procedure is employed for the remaining independent BSSD ambiguities. Network solutions with GPS data from about 130 stations were conducted to validate the proposed approach. Experimental results show that the quality of satellite orbits, station coordinates and satellite clocks obtained with the new approach was almost the same as that with the DD approach. It is also shown that the new approach enjoyed slightly higher fixing ratio for bothWL and NL ambiguities and was superior in computation efficiency, e.g., an improvement of 60% on average was achieved in this study. As demonstrated by experiments of precise point positioning (PPP) with 30-min data, satellite clocks achieved with the new approach have the ability to support IAR in PPP, just like those achieved with ZD IAR approach.
机译:在对精度有高要求的各种GNSS应用中,整数模糊度分辨率(IAR)对于充分利用精确的载波相位观测具有重要意义。到目前为止,在网络解决方案中有两种实现IAR的方法,即解决双差(DD)整数歧义或解决零差(ZD)整数歧义。在本文中,我们将提出一种解决网络解决方案中卫星间单差(BSSD)整数歧义的方法。 BSSD模糊度修复可以分为两个主要步骤:首先,估计WL卫星FCB可以帮助解决WL BSSD模糊度,然后以自举模式执行窄带(NL)BSSD模糊度解析:选择并强制使用基准BSSD模糊度固定到最接近的整数,然后对剩余的独立BSSD模糊度采用标准的顺序固定程序。利用来自约130个站点的GPS数据进行了网络解决方案,以验证所提出的方法。实验结果表明,新方法获得的卫星轨道,台站坐标和卫星时钟的质量与DD方法获得的质量几乎相同。还表明,新方法对于WL和NL模糊度都具有较高的固定率,并且在计算效率方面也很出色,例如,在这项研究中平均可提高60%。正如使用30分钟数据进行精确点定位(PPP)的实验所证明的那样,用新方法实现的卫星时钟具有支持PPP中的IAR的能力,就像使用ZD IAR方法实现的那样。

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