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A Tightly Combined BDS and GPS Method for RTK Positioning with Triple-Frequency Widelane Combinations

机译:用于RTK定位的紧密组合BDS和GPS方法,具有三频长叶内组合

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Processing the differential inter-system biases (DISBs) correctly is critical for multi-GNSS fusion positioning. A pivot satellite can be selected for RTK positioning if we can process DISBs correctly, which is the so-called tightly combination between systems. Due to the different frequencies of GPS and BDS. DISB cannot be calibrated in advance. In this paper, a tightly combined BDS/GPS method for RTK positioning model is proposed. A zero baseline is selected to verify the near time-constant characteristic of DISB. In addition, aiming at the limitation of traditional MW combination that the fixed success rate of WL ambiguity is greatly affected by pseudorange noise and has long convergence time, we could use the triple-frequency data to fix a long-wavelength EWL ambiguity. Then assists in solving WL ambiguity. The results show that the fractional part of phase DISB with WL combination is rather stable. Under the medium baseline, the fixed success rate of WL ambiguity floating point solution fraction within 0.2 cycles is 100%, and WL ambiguity can be fixed correctly in the first epoch. Compared with the classical differencing model, the inter-system differencing model can effectively improve the positioning accuracy and reliability, especially for severely obstructed environment. In the normal observation environment, the positioning accuracy can reach 2-3 cm in horizontal and 5 cm in vertical under the medium baseline. When the number of available satellites is seven, the positioning accuracy can be increased by more than 20%.
机译:正确处理差别间偏差(DISB)对于多GNSS融合定位是至关重要的。如果我们可以正确地处理Disceb,则可以选择枢轴卫星用于RTK定位,这是系统之间所谓的紧密组合。由于GPS和BDS的不同频率。不能提前校准DISB。本文提出了一种紧密组合的RTK定位模型的BDS / GPS方法。选择零基线以验证DECB的近时间常数特性。此外,旨在限制传统的MW组合,即WL模糊性的固定成功率受伪奇噪声的大大影响,并且具有长收敛时间,我们可以使用三频数据来修复长波长EWL模糊性。然后有助于解决WL模糊性。结果表明,WL组合的相管分数的分数部分相当稳定。在介质基线下,0.2周期内的WL模糊浮点溶液部分的固定成功率为100%,并且在第一时代可以正确地固定WL模糊性。与经典差分模型相比,系统间差异模型可以有效地提高定位精度和可靠性,特别是对于严重阻塞环境。在正常观察环境中,定位精度可以在水平达到2-3厘米,在介质基线下垂直达到5厘米。当可用卫星的数量为7时,定位精度可以增加20%以上。

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