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Improving the estimation of zenith dry tropospheric delays using regional surface meteorological data

机译:利用区域地面气象数据改进对天顶干对流层延迟的估算

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摘要

Global Navigation Satellite Systems (GNSS) are emerging as possible tools for remote sensing high-resolution atmospheric water vapour that improves weather forecasting through numerical weather prediction models. Nowadays, the GNSS-derived tropospheric zenith total delay (ZTD), comprising zenith dry delay (ZDD) and zenith wet delay (ZWD), is achievable with sub-centimetre accuracy. However, if no representative near-site meteorological information is available, the quality of the ZDD derived from tropospheric models is degraded, leading to inaccurate estimation of the water vapour component ZWD as difference between ZTD and ZDD. On the basis of freely accessible regional surface meteorological data, this paper proposes a height-dependent linear correction model for a priori ZDD. By applying the ordinary least-squares estimation (OLSE), bootstrapping (BOOT), and leave-one-out cross-validation (CROS) methods, the model parameters are estimated and analysed with respect to outlier detection. The model validation is carried out using GNSS stations with near-site meteorological measurements. The results verify the efficiency of the proposed ZDD correction model, showing a significant reduction in the mean bias from several centimetres to about 5 mm. The OLSE method enables a fast computation, while the CROS procedure allows for outlier detection. All the three methods produce consistent results after outlier elimination, which improves the regression quality by about 20% and the model accuracy by up to 30%.
机译:全球导航卫星系统(GNSS)逐渐成为可能的工具,用于遥感高分辨率大气水汽,通过数值天气预报模型改善天气预报。如今,由GNSS得出的对流层天顶总延迟(ZTD),包括天顶干延迟(ZDD)和天顶湿延迟(ZWD),都可以达到亚厘米的精度。但是,如果没有代表性的近地气象信息可用,则从对流层模型导出的ZDD的质量会降低,导致作为ZTD和ZDD之间差异的水汽分量ZWD的估算不准确。在可自由获取的区域地面气象数据的基础上,本文针对先验ZDD提出了高度相关的线性校正模型。通过应用普通最小二乘估计(OLSE),自举(BOOT)和留一法交叉验证(CROS)方法,可以对模型参数进行估计并就异常检测进行分析。使用带有近场气象测量结果的GNSS站进行模型验证。结果证实了所提出的ZDD校正模型的效率,表明平均偏差从几厘米显着降低到约5 mm。 OLSE方法可实现快速计算,而CROS过程可进行离群值检测。这三种方法在消除异常值后都能产生一致的结果,从而将回归质量提高了约20%,并将模型精度提高了30%。

著录项

  • 来源
    《Advances in space research》 |2013年第12期|2204-2214|共11页
  • 作者

    X. Luo; B. Heck; J.L. Awange;

  • 作者单位

    Geodetic Institute, Karlsruhe Institute of Technology (KIT), Englerstrasse 7, 76131 Karlsruhe, Germany,Leica Geosystems AG, Heinrich-Wild-Strasse, 9435, Heerbrugg, Switzerland;

    Geodetic Institute, Karlsruhe Institute of Technology (KIT), Englerstrasse 7, 76131 Karlsruhe, Germany;

    Geodetic Institute, Karlsruhe Institute of Technology (KIT), Englerstrasse 7, 76131 Karlsruhe, Germany,Western Australian Centre for Geodesy and Institute for Geoscience Research, Curtin University, GPO Box U1987, Perth, WA 6845, Australia;

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

    GNSS meteorology; Zenith tropospheric delay; Regional surface meteorological data; Outlier detection; Linear regression;

    机译:GNSS气象学;天顶对流层延迟;区域地面气象数据;离群值检测;线性回归;

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