Cycle Slips Detection for Triple-Frequency Signals of BDS by Combining Carrier Phase and Doppler Measurements

A new model is presented to resolve cycle slips detection for triple-frequency observations of BeiDou navigation satellite system (BDS) in this article when pseudorange observations are missing or insufficiently accurate under harsh or special situations. Based on the first-order time-difference geo...

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Main Authors: Zengkai Shi, Xurong Dong, Xiangxiang Fan, Gang Zhang, Zhaoyong Qian
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
BDS
Online Access:https://ieeexplore.ieee.org/document/9200458/
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spelling doaj-a160454e228d4794883ce0bc9f45bbcf2021-03-30T03:59:05ZengIEEEIEEE Access2169-35362020-01-01817225217226510.1109/ACCESS.2020.30247889200458Cycle Slips Detection for Triple-Frequency Signals of BDS by Combining Carrier Phase and Doppler MeasurementsZengkai Shi0https://orcid.org/0000-0002-1049-7079Xurong Dong1Xiangxiang Fan2https://orcid.org/0000-0001-8748-3815Gang Zhang3https://orcid.org/0000-0002-1803-3180Zhaoyong Qian4https://orcid.org/0000-0002-1713-1811Department of Space Information, Space Engineering University, Beijing, ChinaDepartment of Space Information, Space Engineering University, Beijing, ChinaDepartment of Space Information, Space Engineering University, Beijing, ChinaDepartment of Space Information, Space Engineering University, Beijing, ChinaDepartment of Space Information, Space Engineering University, Beijing, ChinaA new model is presented to resolve cycle slips detection for triple-frequency observations of BeiDou navigation satellite system (BDS) in this article when pseudorange observations are missing or insufficiently accurate under harsh or special situations. Based on the first-order time-difference geometry-free (GF) pseudorange-phase combination model, the new cycle slips detection and correction method based on the triple-frequency carrier phase and Doppler observations is proposed. With analyses on the two common sampling intervals (30 s and 1 s), it can be concluded that the optimal combination coefficients of the proposed model relate to sampling intervals. Combinations [4, -2, -3], [-1, -5,6], and [-3,6, -2] are selected to detect and correct cycle slips for 30 s sampling interval, while combinations [0, -1,1], [1,0, -1], and [-3,2,2] are selected for 1 s sampling interval. The validity of the phase-Doppler combination model under the static condition and the steady ionosphere with 30 s sampling interval and 1 s sampling interval is verified by two static experiments. Results show that the phase-Doppler combination model can achieve the same performance as the pseudorange-phase combination model. All the small, insensitive, and large cycle slips added to the three types of BDS satellites which separately belong to Geostationary Earth Orbit (GEO), Inclined Geosynchronous Orbit (IGSO), and Medium Earth Orbit (MEO) are detected and corrected successfully by the proposed model.https://ieeexplore.ieee.org/document/9200458/Triple-frequencyBDScycle slips detectiongeometry-free pseudorange-phase combination modelphase-Doppler combination model
collection DOAJ
language English
format Article
sources DOAJ
author Zengkai Shi
Xurong Dong
Xiangxiang Fan
Gang Zhang
Zhaoyong Qian
spellingShingle Zengkai Shi
Xurong Dong
Xiangxiang Fan
Gang Zhang
Zhaoyong Qian
Cycle Slips Detection for Triple-Frequency Signals of BDS by Combining Carrier Phase and Doppler Measurements
IEEE Access
Triple-frequency
BDS
cycle slips detection
geometry-free pseudorange-phase combination model
phase-Doppler combination model
author_facet Zengkai Shi
Xurong Dong
Xiangxiang Fan
Gang Zhang
Zhaoyong Qian
author_sort Zengkai Shi
title Cycle Slips Detection for Triple-Frequency Signals of BDS by Combining Carrier Phase and Doppler Measurements
title_short Cycle Slips Detection for Triple-Frequency Signals of BDS by Combining Carrier Phase and Doppler Measurements
title_full Cycle Slips Detection for Triple-Frequency Signals of BDS by Combining Carrier Phase and Doppler Measurements
title_fullStr Cycle Slips Detection for Triple-Frequency Signals of BDS by Combining Carrier Phase and Doppler Measurements
title_full_unstemmed Cycle Slips Detection for Triple-Frequency Signals of BDS by Combining Carrier Phase and Doppler Measurements
title_sort cycle slips detection for triple-frequency signals of bds by combining carrier phase and doppler measurements
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description A new model is presented to resolve cycle slips detection for triple-frequency observations of BeiDou navigation satellite system (BDS) in this article when pseudorange observations are missing or insufficiently accurate under harsh or special situations. Based on the first-order time-difference geometry-free (GF) pseudorange-phase combination model, the new cycle slips detection and correction method based on the triple-frequency carrier phase and Doppler observations is proposed. With analyses on the two common sampling intervals (30 s and 1 s), it can be concluded that the optimal combination coefficients of the proposed model relate to sampling intervals. Combinations [4, -2, -3], [-1, -5,6], and [-3,6, -2] are selected to detect and correct cycle slips for 30 s sampling interval, while combinations [0, -1,1], [1,0, -1], and [-3,2,2] are selected for 1 s sampling interval. The validity of the phase-Doppler combination model under the static condition and the steady ionosphere with 30 s sampling interval and 1 s sampling interval is verified by two static experiments. Results show that the phase-Doppler combination model can achieve the same performance as the pseudorange-phase combination model. All the small, insensitive, and large cycle slips added to the three types of BDS satellites which separately belong to Geostationary Earth Orbit (GEO), Inclined Geosynchronous Orbit (IGSO), and Medium Earth Orbit (MEO) are detected and corrected successfully by the proposed model.
topic Triple-frequency
BDS
cycle slips detection
geometry-free pseudorange-phase combination model
phase-Doppler combination model
url https://ieeexplore.ieee.org/document/9200458/
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