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Parallel resolution of large-scale GNSS network un-difference ambiguity

机译:大规模GNSS网络无差异歧义的并行解析

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摘要

To increase redundant observations and estimate fractional cycle bias (FCB) in a global network and whole session, hundreds of globally distributed Global Navigation Satellite System (GNSS) tracking stations are required in the server side. However, the improvement of computational efficiency for FCB estimation and un-difference ambiguity fixing is a critical issue. In this paper, using a multi-node and multi-core platform based on Task Parallel Library, a strategy for multi-core un-difference parallel resolution is proposed. Based on MapReduce, a workflow for multi-node FCB parallel estimation and un-difference ambiguity parallel fixing is developed. As a result, the efficiency of FCB estimating and ambiguity fixing is improved significantly. Data from global International GNSS Service (IGS) tracking stations are used in the experiment. In the server side, the speed-up ratio of FCB estimation using a six-node and four-core platform reaches 14.76 times. In the user side, globally distributed user stations are applied to parallel ambiguity fixing, whereupon the speed-up ratio under the same platform is improved to 12.33 times. In addition, the average accuracy of static hourly solutions for 16 user stations improves from 2.50, 3.12 and 0.99 cm to 1.30, 0.77 and 0.65 cm in the vertical, east and north components, respectively.
机译:为了增加冗余观测值并估算全球网络和整个会话中的分数周期偏差(FCB),服务器端需要数百个全球分布的全球导航卫星系统(GNSS)跟踪站。但是,FCB估计和无差异歧义固定的计算效率的提高是一个关键问题。本文采用基于任务并行库的多节点多核平台,提出了一种多核无差并行解析策略。基于MapReduce,开发了多节点FCB并行估计和无差异歧义并行修复的工作流。结果,FCB估计和歧义修复的效率显着提高。实验中使用了来自全球国际GNSS服务(IGS)跟踪站的数据。在服务器端,使用六节点和四核平台的FCB估计的加速比达到14.76倍。在用户方面,将全球分布的用户站应用于并行歧义固定,从而在同一平台下的提速比提高到12.33倍。此外,针对16个用户站的静态小时解决方案的平均准确性在垂直,东部和北部部分分别从2.50、3.12和0.99 cm提高到1.30、0.77和0.65 cm。

著录项

  • 来源
    《Advances in space research》 |2017年第12期|2637-2647|共11页
  • 作者单位

    School of Surveying and Mapping, PLA Information Engineering University, Zhengzhou 450001, China,State Key Laboratory of Geo-information Engineering, Xi'an 710054, China;

    School of Surveying and Mapping, PLA Information Engineering University, Zhengzhou 450001, China;

    School of Surveying and Mapping, PLA Information Engineering University, Zhengzhou 450001, China;

    School of Surveying and Mapping, PLA Information Engineering University, Zhengzhou 450001, China;

    Henan University of Technology, Zhengzhou 450001, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Un-difference ambiguity resolution; Fractional cycle bias; Task Parallel Library; MapReduce; GNSS;

    机译:无差异歧义解决方案;分数周期偏差;任务并行库;MapReduce;全球导航卫星系统;

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