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An efficient undifferenced method for estimating multi-GNSS high-rate clock corrections with data streams in real time

机译:一种高效的无差异方法,用于实时估计具有数据流的多GNSS高速率时钟校正

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摘要

Precise satellite clock corrections are the key elements for the implementation of Real-Time Precise Point Positioning (RTPPP). To fully promote the capability of multi-GNSS RTPPP, an efficient method is proposed for the precise estimation of multi-GNSS high-rate satellite clock corrections in real time. Different from the epoch-differenced methods in the current literature, the proposed method is based on undifferenced observations and the function models are established to achieve high processing efficiency and full-parameter accessibility at the same time. In the proposed method, main data processing is performed based on two function models: the full-parameter (FP) model and the high-rate (HR) model. In the FP model, both code and phase observations are used, mainly for the estimation of the large number of phase ambiguities, which is actually the most time-consuming part in clock estimation. In the HR model, high-rate clock corrections are estimated with only phase observations, in which the latest ambiguity estimates and corresponding variance information obtained from the FP model are introduced as phase corrections to reduce the size of the normal equations and guarantee high processing efficiency for the HR processing. With the proposed method, real-time estimation of high-rate (1 Hz) clock corrections for a quad-system (GPS/GLONASS/Galileo/BeiDou) solution with real-time streams has been realized and validated. Satellite clock corrections are encoded to state-space representative corrections and broadcasted to the user side to support multi-GNSS RTPPP. Results show that the proposed method is highly efficient and can provide 1 Hz or even higher-rate clock corrections for multi-GNSS in real time. Quad-system real-time satellite clocks are compared with the post-processed products from GFZ. Positioning performances of RTPPP, including positioning accuracy and convergence speed, have also been validated and analyzed. All the results show that the proposed method is effective, efficient, accurate and promising in multi-GNSS real-time high-rate clock estimation.
机译:精确的卫星时钟校正是实现实时精确点定位(RTPPP)的关键要素。为了充分提升多GNSS RTPPP的能力,提出了一种实时准确估计多GNSS高速率卫星时钟校正的有效方法。与当前文献中的时差方法不同,该方法基于无差异的观测值,并建立了功能模型以同时实现高处理效率和全参数可访问性。在提出的方法中,基于两个功能模型执行主数据处理:全参数(FP)模型和高速率(HR)模型。在FP模型中,代码观测和相位观测都被使用,主要用于大量相位模糊度的估计,这实际上是时钟估计中最耗时的部分。在HR模型中,仅通过相位观测来估计高速率时钟校正,其中将最新的模糊度估计和从FP模型获得的相应方差信息作为相位校正引入,以减小正则方程的大小并确保高处理效率用于人力资源处理。利用所提出的方法,已经实现并验证了具有实时流的四系统(GPS / GLONASS / Galileo / BeiDou)解决方案的高速率(1 Hz)时钟校正的实时估计。卫星时钟校正编码为代表状态空间的校正,并广播到用户端以支持多GNSS RTPPP。结果表明,该方法是高效的,可以为多GNSS实时提供1 Hz甚至更高速率的时钟校正。将四系统实时卫星时钟与GFZ的后处理产品进行了比较。 RTPPP的定位性能,包括定位精度和收敛速度,也得到了验证和分析。所有结果表明,该方法在多GNSS实时高速时钟估计中是有效,高效,准确和有前途的。

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