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Three-frequency BDS precise point positioning ambiguity resolution based on raw observables

机译:基于原始观测值的三频BDS精确点定位模糊度解析

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All BeiDou navigation satellite system (BDS) satellites are transmitting signals on three frequencies, which brings new opportunity and challenges for high-accuracy precise point positioning (PPP) with ambiguity resolution (AR). This paper proposes an effective uncalibrated phase delay (UPD) estimation and AR strategy which is based on a raw PPP model. First, triple-frequency raw PPP models are developed. The observation model and stochastic model are designed and extended to accommodate the third frequency. Then, the UPD is parameterized in raw frequency form while estimating with the high-precision and low-noise integer linear combination of float ambiguity which are derived by ambiguity decorrelation. Third, with UPD corrected, the LAMBDA method is used for resolving full or partial ambiguities which can be fixed. This method can be easily and flexibly extended for dual-, triple- or even more frequency. To verify the effectiveness and performance of triple-frequency PPP AR, tests with real BDS data from 90 stations lasting for 21 days were performed in static mode. Data were processed with three strategies: BDS triple-frequency ambiguity-float PPP, BDS triple-frequency PPP with dual-frequency (B1/B2) and three-frequency AR, respectively. Numerous experiment results showed that compared with the ambiguity-float solution, the performance in terms of convergence time and positioning biases can be significantly improved by AR. Among three groups of solutions, the triple-frequency PPP AR achieved the best performance. Compared with dual-frequency AR, additional the third frequency could apparently improve the position estimations during the initialization phase and under constraint environments when the dual-frequency PPP AR is limited by few satellite numbers.
机译:北斗导航卫星系统(BDS)的所有卫星都在三个频率上发射信号,这给具有歧义分辨率(AR)的高精度精确点定位(PPP)带来了新的机遇和挑战。本文提出了一种基于原始PPP模型的有效的未校准相位延迟(UPD)估计和AR策略。首先,开发了三频原始PPP模型。设计并扩展了观测模型和随机模型以适应第三频率。然后,以原始频率形式对UPD进行参数化,同时估计通过模糊解相关导出的浮点模糊度的高精度和低噪声整数线性组合。第三,在校正UPD之后,LAMBDA方法用于解决可以解决的全部或部分歧义。该方法可以轻松灵活地扩展为双倍,三倍甚至更高的频率。为了验证三频PPP AR的有效性和性能,在静态模式下对来自90个电台的真实BDS数据进行了为期21天的测试。数据采用三种策略处理:BDS三频模糊浮点PPP,BDS三频PPP双频(B1 / B2)和三频AR。许多实验结果表明,与模糊浮点解相比,AR可以显着改善收敛时间和定位偏差方面的性能。在三组解决方案中,三频PPP AR获得了最佳性能。与双频AR相比,在双频PPP AR受少数卫星数目限制的情况下,在初始化阶段和约束环境下,增加第三频率显然可以改善位置估计。

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