Geometrical portrait of Multipath error propagation in GNSS Direct Position Estimation
Jihong Huang, Rong Yang, Wei Gao, Xingqun Zhan, Zheng Yao

TL;DR
This paper provides a geometric analysis of multipath error propagation in GNSS Direct Position Estimation, introducing a satellite circular multipath bias model and validating it through simulations and urban canyon tests.
Contribution
It introduces a novel geometric framework for characterizing multipath errors in DPE and proposes the SCMB model to quantify PVT deviations caused by multipath effects.
Findings
Maximum PVT bias depends on the largest multipath errors across satellites.
PVT bias increases with satellite elevation angles.
Geometric analysis aids in selecting optimal satellite configurations.
Abstract
Direct Position Estimation (DPE) is a method that directly estimate position, velocity, and time (PVT) information from cross ambiguity function (CAF) of the GNSS signals, significantly enhancing receiver robustness in urban environments. However, there is still a lack of theoretical characterization on multipath errors in the context of DPE theory. Geometric observations highlight the unique characteristics of DPE errors stemming from multipath and thermal noise as estimation bias and variance respectively. Expanding upon the theoretical framework of DPE noise variance through geometric analysis, this paper focuses on a geometric representation of multipath errors by quantifying the deviations in CAF and PVT solutions caused by off-centering bias relative to the azimuth and elevation angles. A satellite circular multipath bias (SCMB) model is introduced, amalgamating CAF and PVT errors…
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Taxonomy
TopicsGNSS positioning and interference · Indoor and Outdoor Localization Technologies · Inertial Sensor and Navigation
