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Improved Short-Term Clock Prediction Method for Real-Time Positioning

The application of real-time precise point positioning (PPP) requires real-time precise orbit and clock products that should be predicted within a short time to compensate for the communication delay or data gap. Unlike orbit correction, clock correction is difficult to model and predict. The widely...

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Autores principales: Lv, Yifei, Dai, Zhiqiang, Zhao, Qile, Yang, Sheng, Zhou, Jinning, Liu, Jingnan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5492290/
https://www.ncbi.nlm.nih.gov/pubmed/28587307
http://dx.doi.org/10.3390/s17061308
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author Lv, Yifei
Dai, Zhiqiang
Zhao, Qile
Yang, Sheng
Zhou, Jinning
Liu, Jingnan
author_facet Lv, Yifei
Dai, Zhiqiang
Zhao, Qile
Yang, Sheng
Zhou, Jinning
Liu, Jingnan
author_sort Lv, Yifei
collection PubMed
description The application of real-time precise point positioning (PPP) requires real-time precise orbit and clock products that should be predicted within a short time to compensate for the communication delay or data gap. Unlike orbit correction, clock correction is difficult to model and predict. The widely used linear model hardly fits long periodic trends with a small data set and exhibits significant accuracy degradation in real-time prediction when a large data set is used. This study proposes a new prediction model for maintaining short-term satellite clocks to meet the high-precision requirements of real-time clocks and provide clock extrapolation without interrupting the real-time data stream. Fast Fourier transform (FFT) is used to analyze the linear prediction residuals of real-time clocks. The periodic terms obtained through FFT are adopted in the sliding window prediction to achieve a significant improvement in short-term prediction accuracy. This study also analyzes and compares the accuracy of short-term forecasts (less than 3 h) by using different length observations. Experimental results obtained from International GNSS Service (IGS) final products and our own real-time clocks show that the 3-h prediction accuracy is better than 0.85 ns. The new model can replace IGS ultra-rapid products in the application of real-time PPP. It is also found that there is a positive correlation between the prediction accuracy and the short-term stability of on-board clocks. Compared with the accuracy of the traditional linear model, the accuracy of the static PPP using the new model of the 2-h prediction clock in N, E, and U directions is improved by about 50%. Furthermore, the static PPP accuracy of 2-h clock products is better than 0.1 m. When an interruption occurs in the real-time model, the accuracy of the kinematic PPP solution using 1-h clock prediction product is better than 0.2 m, without significant accuracy degradation. This model is of practical significance because it solves the problems of interruption and delay in data broadcast in real-time clock estimation and can meet the requirements of real-time PPP.
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spelling pubmed-54922902017-07-03 Improved Short-Term Clock Prediction Method for Real-Time Positioning Lv, Yifei Dai, Zhiqiang Zhao, Qile Yang, Sheng Zhou, Jinning Liu, Jingnan Sensors (Basel) Article The application of real-time precise point positioning (PPP) requires real-time precise orbit and clock products that should be predicted within a short time to compensate for the communication delay or data gap. Unlike orbit correction, clock correction is difficult to model and predict. The widely used linear model hardly fits long periodic trends with a small data set and exhibits significant accuracy degradation in real-time prediction when a large data set is used. This study proposes a new prediction model for maintaining short-term satellite clocks to meet the high-precision requirements of real-time clocks and provide clock extrapolation without interrupting the real-time data stream. Fast Fourier transform (FFT) is used to analyze the linear prediction residuals of real-time clocks. The periodic terms obtained through FFT are adopted in the sliding window prediction to achieve a significant improvement in short-term prediction accuracy. This study also analyzes and compares the accuracy of short-term forecasts (less than 3 h) by using different length observations. Experimental results obtained from International GNSS Service (IGS) final products and our own real-time clocks show that the 3-h prediction accuracy is better than 0.85 ns. The new model can replace IGS ultra-rapid products in the application of real-time PPP. It is also found that there is a positive correlation between the prediction accuracy and the short-term stability of on-board clocks. Compared with the accuracy of the traditional linear model, the accuracy of the static PPP using the new model of the 2-h prediction clock in N, E, and U directions is improved by about 50%. Furthermore, the static PPP accuracy of 2-h clock products is better than 0.1 m. When an interruption occurs in the real-time model, the accuracy of the kinematic PPP solution using 1-h clock prediction product is better than 0.2 m, without significant accuracy degradation. This model is of practical significance because it solves the problems of interruption and delay in data broadcast in real-time clock estimation and can meet the requirements of real-time PPP. MDPI 2017-06-06 /pmc/articles/PMC5492290/ /pubmed/28587307 http://dx.doi.org/10.3390/s17061308 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
Lv, Yifei
Dai, Zhiqiang
Zhao, Qile
Yang, Sheng
Zhou, Jinning
Liu, Jingnan
Improved Short-Term Clock Prediction Method for Real-Time Positioning
title Improved Short-Term Clock Prediction Method for Real-Time Positioning
title_full Improved Short-Term Clock Prediction Method for Real-Time Positioning
title_fullStr Improved Short-Term Clock Prediction Method for Real-Time Positioning
title_full_unstemmed Improved Short-Term Clock Prediction Method for Real-Time Positioning
title_short Improved Short-Term Clock Prediction Method for Real-Time Positioning
title_sort improved short-term clock prediction method for real-time positioning
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5492290/
https://www.ncbi.nlm.nih.gov/pubmed/28587307
http://dx.doi.org/10.3390/s17061308
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