In the last decade Precise Point Positioning (PPP) has become a powerful and widely used technique for positioning by means of Global Navigation Satellite System (GNSS) in geodetic/scientific and civil/daily applications. Meanwhile, the equivalence principle of GNSS data processing has been developed and can now be easily explained and accepted since it was firstly algebraically pointed out in 2002. The objective of this thesis is to explore high-performance PPP algorithms and to develop GNSS algorithms with application of the equivalence principle. The core research and contributions of this thesis are summarized as follows. In this thesis it is the first time that the specific equivalence of un-differenced and time differencing PPP algorithms is proved theoretically on the basis of the equivalence principle and the equivalence property of un-differenced and differencing algorithms. Meanwhile, as a supplement to the equivalence property of the triple differences, an alternative method is proposed and derived to prove the equivalence between triple differences and zero-difference which up to now was missing. As a consequence of above conducted theoretical study, a time differencing PPP algorithm based on the equivalence principle is derived and can be used to obtain the coordinates difference and average velocity between two adjacent epochs. Such a time differencing PPP algorithm is able to provide both position and velocity results from the phase and code observations and is expected to be beneficial for applications, such as airborne gravimetry or earthquake monitoring, and could also be an efficient method to detect cycle slips in data processing. The influence of tropospheric delay on PPP, especially in the context of observations in the polar region or with low elevation cut-off angles, where the position results of the observations are more significantly affected by tropospheric delay, is analyzed and a methodology for minimizing its effect is proposed. Actual meteorological data are used and proved to be beneficial for improving PPP precision in the Antarctic region. The effect of tropospheric horizontal gradient correction on PPP is also analyzed and verified to remarkably improve PPP precision under lower elevation cut-off angles and higher humidity conditions. A priori constrained PPP algorithms are proposed and derived in this thesis to improve the efficiency and precision of PPP. The a priori information concerning the geometric and physical properties of observations, which is known with a certain a priori precision, is applied in the PPP algorithms. The contribution of different a priori information constraints on different parameters to PPP solution is analyzed and validated. The a priori constraints as employed in the PPP are specified according to coordinates-, receiver clock offset-, tropospheric delay- and ambiguities-constraints, respectively. The validation of the derived PPP algorithms shows a significant improvement concerning convergence time and positioning accuracy. Moreover, the applications of different constraints under specific conditions are discussed and validated. A multi-constellation combined PPP algorithm based on the equivalence principle is proposed and derived in this thesis. With such an algorithm, the exponentially increased computational load of the traditional multi-GNSS PPP algorithm can be reduced to the single linear increase when more GNSS satellites are available and used for combined computation. In case of GPS/BDS combination, a method which can speed up the determination of the ambiguities parameters of BDS through applying the contribution of GPS observations is proposed to significantly reduce the convergence time in BDS PPP. The GPS/BDS combined PPP algorithm with inter-system bias (ISB) parameter is also derived. Using the estimated ISB as a priori constraint in the GPS/BDS combined PPP is proposed. The result demonstrates that the a priori constraint of ISB shows superiority in the convergence time of PPP processing and can mainly improve the positioning accuracy in E component. In traditional combined PPP it is difficult to adaptively adjust the contribution of each single system to the combination through constructing total calculation, and it will lead to the deterioration in the combination accuracy. In this context, the adaptively combined PPP algorithms based on the equivalence principle are proposed and derived, which can easily achieve an adaptive adjustment of weight ratio of each system in the multi-GNSS combination. By using the posteriori covariance matrix of the shared parameters of each single system and the Helmert variance components to adaptively adjust the weight ratio of each system, the derived algorithms can improve the accuracy of combination significantly, compared to combined PPP with identical weight ratio. The developed algorithms are net applicable and can be used for cloud computation for internet GNSS service which is considered relevant for possible commercial applications.
GNSS precise point positioning with application of the equivalence principle
Das Verfahren des GNSS Precise Point Positioning unter Anwendung des Äquivalenzprinzips
2016
Sonstige
Elektronische Ressource
Englisch
DDC: | 629 |
Performance Analysis of Multi-GNSS Precise Point Positioning
British Library Conference Proceedings | 2017
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