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An Enhanced Non-Coherent Pre-Filter Design for Tracking Error Estimation in GNSS Receivers

Tracking error estimation is of great importance in global navigation satellite system (GNSS) receivers. Any inaccurate estimation for tracking error will decrease the signal tracking ability of signal tracking loops and the accuracies of position fixing, velocity determination, and timing. Tracking...

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Autores principales: Luo, Zhibin, Ding, Jicheng, Zhao, Lin, Wu, Mouyan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5712877/
https://www.ncbi.nlm.nih.gov/pubmed/29156581
http://dx.doi.org/10.3390/s17112668
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author Luo, Zhibin
Ding, Jicheng
Zhao, Lin
Wu, Mouyan
author_facet Luo, Zhibin
Ding, Jicheng
Zhao, Lin
Wu, Mouyan
author_sort Luo, Zhibin
collection PubMed
description Tracking error estimation is of great importance in global navigation satellite system (GNSS) receivers. Any inaccurate estimation for tracking error will decrease the signal tracking ability of signal tracking loops and the accuracies of position fixing, velocity determination, and timing. Tracking error estimation can be done by traditional discriminator, or Kalman filter-based pre-filter. The pre-filter can be divided into two categories: coherent and non-coherent. This paper focuses on the performance improvements of non-coherent pre-filter. Firstly, the signal characteristics of coherent and non-coherent integration—which are the basis of tracking error estimation—are analyzed in detail. After that, the probability distribution of estimation noise of four-quadrant arctangent (ATAN2) discriminator is derived according to the mathematical model of coherent integration. Secondly, the statistical property of observation noise of non-coherent pre-filter is studied through Monte Carlo simulation to set the observation noise variance matrix correctly. Thirdly, a simple fault detection and exclusion (FDE) structure is introduced to the non-coherent pre-filter design, and thus its effective working range for carrier phase error estimation extends from (−0.25 cycle, 0.25 cycle) to (−0.5 cycle, 0.5 cycle). Finally, the estimation accuracies of discriminator, coherent pre-filter, and the enhanced non-coherent pre-filter are evaluated comprehensively through the carefully designed experiment scenario. The pre-filter outperforms traditional discriminator in estimation accuracy. In a highly dynamic scenario, the enhanced non-coherent pre-filter provides accuracy improvements of 41.6%, 46.4%, and 50.36% for carrier phase error, carrier frequency error, and code phase error estimation, respectively, when compared with coherent pre-filter. The enhanced non-coherent pre-filter outperforms the coherent pre-filter in code phase error estimation when carrier-to-noise density ratio is less than 28.8 dB-Hz, in carrier frequency error estimation when carrier-to-noise density ratio is less than 20 dB-Hz, and in carrier phase error estimation when carrier-to-noise density belongs to (15, 23) dB-Hz [Formula: see text] (26, 50) dB-Hz.
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spelling pubmed-57128772017-12-07 An Enhanced Non-Coherent Pre-Filter Design for Tracking Error Estimation in GNSS Receivers Luo, Zhibin Ding, Jicheng Zhao, Lin Wu, Mouyan Sensors (Basel) Article Tracking error estimation is of great importance in global navigation satellite system (GNSS) receivers. Any inaccurate estimation for tracking error will decrease the signal tracking ability of signal tracking loops and the accuracies of position fixing, velocity determination, and timing. Tracking error estimation can be done by traditional discriminator, or Kalman filter-based pre-filter. The pre-filter can be divided into two categories: coherent and non-coherent. This paper focuses on the performance improvements of non-coherent pre-filter. Firstly, the signal characteristics of coherent and non-coherent integration—which are the basis of tracking error estimation—are analyzed in detail. After that, the probability distribution of estimation noise of four-quadrant arctangent (ATAN2) discriminator is derived according to the mathematical model of coherent integration. Secondly, the statistical property of observation noise of non-coherent pre-filter is studied through Monte Carlo simulation to set the observation noise variance matrix correctly. Thirdly, a simple fault detection and exclusion (FDE) structure is introduced to the non-coherent pre-filter design, and thus its effective working range for carrier phase error estimation extends from (−0.25 cycle, 0.25 cycle) to (−0.5 cycle, 0.5 cycle). Finally, the estimation accuracies of discriminator, coherent pre-filter, and the enhanced non-coherent pre-filter are evaluated comprehensively through the carefully designed experiment scenario. The pre-filter outperforms traditional discriminator in estimation accuracy. In a highly dynamic scenario, the enhanced non-coherent pre-filter provides accuracy improvements of 41.6%, 46.4%, and 50.36% for carrier phase error, carrier frequency error, and code phase error estimation, respectively, when compared with coherent pre-filter. The enhanced non-coherent pre-filter outperforms the coherent pre-filter in code phase error estimation when carrier-to-noise density ratio is less than 28.8 dB-Hz, in carrier frequency error estimation when carrier-to-noise density ratio is less than 20 dB-Hz, and in carrier phase error estimation when carrier-to-noise density belongs to (15, 23) dB-Hz [Formula: see text] (26, 50) dB-Hz. MDPI 2017-11-18 /pmc/articles/PMC5712877/ /pubmed/29156581 http://dx.doi.org/10.3390/s17112668 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Luo, Zhibin
Ding, Jicheng
Zhao, Lin
Wu, Mouyan
An Enhanced Non-Coherent Pre-Filter Design for Tracking Error Estimation in GNSS Receivers
title An Enhanced Non-Coherent Pre-Filter Design for Tracking Error Estimation in GNSS Receivers
title_full An Enhanced Non-Coherent Pre-Filter Design for Tracking Error Estimation in GNSS Receivers
title_fullStr An Enhanced Non-Coherent Pre-Filter Design for Tracking Error Estimation in GNSS Receivers
title_full_unstemmed An Enhanced Non-Coherent Pre-Filter Design for Tracking Error Estimation in GNSS Receivers
title_short An Enhanced Non-Coherent Pre-Filter Design for Tracking Error Estimation in GNSS Receivers
title_sort enhanced non-coherent pre-filter design for tracking error estimation in gnss receivers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5712877/
https://www.ncbi.nlm.nih.gov/pubmed/29156581
http://dx.doi.org/10.3390/s17112668
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