Carrier phase-based ionospheric observables using PPP models

The ionosphere is one of the major error sources in Global Navigation Satellite System (GNSS) positioning, navigation and timing. Estimating the ionospheric delays precisely is of great interest in the GNSS community. To date, GNSS observables for ionospheric estimation are most commonly based on ca...

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Main Authors: Yan Xiang, Yang Gao, Junbo Shi, Chaoqian Xu
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2017-01-01
Series:Geodesy and Geodynamics
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1674984717300162
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spelling doaj-ecdd88ba4c42443ab491981f3d343dd72021-04-02T10:10:11ZengKeAi Communications Co., Ltd.Geodesy and Geodynamics1674-98472017-01-0181172310.1016/j.geog.2017.01.006Carrier phase-based ionospheric observables using PPP modelsYan Xiang0Yang Gao1Junbo Shi2Chaoqian Xu3University of Calgary, Calgary, CanadaUniversity of Calgary, Calgary, CanadaWuhan University, Wuhan, ChinaWuhan University, Wuhan, ChinaThe ionosphere is one of the major error sources in Global Navigation Satellite System (GNSS) positioning, navigation and timing. Estimating the ionospheric delays precisely is of great interest in the GNSS community. To date, GNSS observables for ionospheric estimation are most commonly based on carrier phase smoothed code measurements. However, leveling errors, which affect the performance of ionospheric modeling and differential code bias (DCB) estimation, exist in the carrier phase smoothed code observations. Such leveling errors are caused by the multipath and the short-term variation of DCB. To reduce these leveling errors, this paper investigates and estimates the ionospheric delays based on carrier phase measurements without the leveling errors. The line-of-sight ionospheric observables with high precision are calculated using precise point positioning (PPP) techniques, in which carrier phase measurements are the principal observables. Ionosphere-free and UofC PPP models are applied and compared for their effectiveness to minimize the leveling errors. To assess the leveling errors, single difference of ionospheric observables for a short baseline is examined. Results show that carrier phase-derived ionospheric observables from PPP techniques can effectively reduce the leveling errors. Furthermore, we compared the PPP ionosphere estimation model with the conventional carrier phase smoothed code method to assess the bias consistency and investigate the biases in the ionospheric observables.http://www.sciencedirect.com/science/article/pii/S1674984717300162Differential code bias(DCB)Bias consistencyIonospheric observablePrecise point positioning (PPP)Leveling errors
collection DOAJ
language English
format Article
sources DOAJ
author Yan Xiang
Yang Gao
Junbo Shi
Chaoqian Xu
spellingShingle Yan Xiang
Yang Gao
Junbo Shi
Chaoqian Xu
Carrier phase-based ionospheric observables using PPP models
Geodesy and Geodynamics
Differential code bias(DCB)
Bias consistency
Ionospheric observable
Precise point positioning (PPP)
Leveling errors
author_facet Yan Xiang
Yang Gao
Junbo Shi
Chaoqian Xu
author_sort Yan Xiang
title Carrier phase-based ionospheric observables using PPP models
title_short Carrier phase-based ionospheric observables using PPP models
title_full Carrier phase-based ionospheric observables using PPP models
title_fullStr Carrier phase-based ionospheric observables using PPP models
title_full_unstemmed Carrier phase-based ionospheric observables using PPP models
title_sort carrier phase-based ionospheric observables using ppp models
publisher KeAi Communications Co., Ltd.
series Geodesy and Geodynamics
issn 1674-9847
publishDate 2017-01-01
description The ionosphere is one of the major error sources in Global Navigation Satellite System (GNSS) positioning, navigation and timing. Estimating the ionospheric delays precisely is of great interest in the GNSS community. To date, GNSS observables for ionospheric estimation are most commonly based on carrier phase smoothed code measurements. However, leveling errors, which affect the performance of ionospheric modeling and differential code bias (DCB) estimation, exist in the carrier phase smoothed code observations. Such leveling errors are caused by the multipath and the short-term variation of DCB. To reduce these leveling errors, this paper investigates and estimates the ionospheric delays based on carrier phase measurements without the leveling errors. The line-of-sight ionospheric observables with high precision are calculated using precise point positioning (PPP) techniques, in which carrier phase measurements are the principal observables. Ionosphere-free and UofC PPP models are applied and compared for their effectiveness to minimize the leveling errors. To assess the leveling errors, single difference of ionospheric observables for a short baseline is examined. Results show that carrier phase-derived ionospheric observables from PPP techniques can effectively reduce the leveling errors. Furthermore, we compared the PPP ionosphere estimation model with the conventional carrier phase smoothed code method to assess the bias consistency and investigate the biases in the ionospheric observables.
topic Differential code bias(DCB)
Bias consistency
Ionospheric observable
Precise point positioning (PPP)
Leveling errors
url http://www.sciencedirect.com/science/article/pii/S1674984717300162
work_keys_str_mv AT yanxiang carrierphasebasedionosphericobservablesusingpppmodels
AT yanggao carrierphasebasedionosphericobservablesusingpppmodels
AT junboshi carrierphasebasedionosphericobservablesusingpppmodels
AT chaoqianxu carrierphasebasedionosphericobservablesusingpppmodels
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