High-Precision Tropospheric Correction Method for NRTK Regions with Significant Height Differences

IF 2.7 3区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY Measurement Science and Technology Pub Date : 2024-07-15 DOI:10.1088/1361-6501/ad6343
xiaoting lei, Xiaolong Xu, Jun Tao, Tianyu Yang, Qile Zhao, Jing Guo
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Abstract

In response to the issue of poor Network Real-Time Kinematic (NRTK) service performance in regions with significant height differences, an Improved Tropospheric Height Correction (ITHC) method is proposed. Precise Point Positioning (PPP) is employed to compute the troposphere delay at base stations. Subsequently, a Tropospheric Vertical Profile Fitting Model (TVPFM) is established for the vertical reduction of the troposphere in regions with significant height differences. In this case, the tropospheric errors introduced by the height differences between the base and rover stations can be calculated. Finally, the tropospheric error can be corrected during the generation of virtual observations, ensuring high-accuracy positioning of NRTK rovers. With the troposphere delay computed based on the PPP approach, datum errors introduced by inaccurate tropospheric correction methods are mitigated. To reduce the dependence of the troposphere delay on height, ECMWF Reanalysis v5 (ERA5) data are employed to fit the TVPFM. Experimental analysis demonstrates that the troposphere exhibits distinct vertical variation characteristics, allowing for its segmentation into three layers. Consequently, a piecewise TVPFM is established. Observations obtained from the Continuously Operating Reference Stations (CORS) network located in Yunnan, China, are utilized for validation. The selected stations exhibit a maximum height difference of approximately 2 km. The experimental results exhibit a notable enhancement in correction accuracy with the ITHC in comparison to conventional correction methodologies. Specifically, the ambiguity fixing rate demonstrates a noteworthy improvement of 13.3%, accompanied by a substantial increase in positioning accuracy by 51.4%.
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针对高度差异显著的 NRTK 区域的高精度对流层校正方法
针对高度差异明显地区的网络实时运动学(NRTK)服务性能不佳的问题,提出了一种改进的对流层高度校正(ITHC)方法。采用精确点定位(PPP)来计算基站的对流层延迟。随后,建立了对流层垂直剖面拟合模型(TVPFM),用于在高度差异显著的区域对流层进行垂直缩减。在这种情况下,可以计算出基站和漫游站之间的高度差带来的对流层误差。最后,对流层误差可在生成虚拟观测数据时进行修正,从而确保 NRTK 漫游车的高精度定位。通过基于 PPP 方法计算的对流层延迟,可以减少不准确的对流层校正方法带来的基准误差。为了减少对流层延迟对高度的依赖,采用了 ECMWF Reanalysis v5 (ERA5) 数据来拟合 TVPFM。实验分析表明,对流层具有明显的垂直变化特征,可将其划分为三个层次。因此,建立了片状 TVPFM。从位于中国云南的连续运行参考站(CORS)网络获得的观测数据被用于验证。所选站点的最大高度差约为 2 公里。与传统的校正方法相比,实验结果表明 ITHC 显著提高了校正精度。具体来说,模糊修正率显著提高了 13.3%,定位精度也大幅提高了 51.4%。
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来源期刊
Measurement Science and Technology
Measurement Science and Technology 工程技术-工程:综合
CiteScore
4.30
自引率
16.70%
发文量
656
审稿时长
4.9 months
期刊介绍: Measurement Science and Technology publishes articles on new measurement techniques and associated instrumentation. Papers that describe experiments must represent an advance in measurement science or measurement technique rather than the application of established experimental technique. Bearing in mind the multidisciplinary nature of the journal, authors must provide an introduction to their work that makes clear the novelty, significance, broader relevance of their work in a measurement context and relevance to the readership of Measurement Science and Technology. All submitted articles should contain consideration of the uncertainty, precision and/or accuracy of the measurements presented. Subject coverage includes the theory, practice and application of measurement in physics, chemistry, engineering and the environmental and life sciences from inception to commercial exploitation. Publications in the journal should emphasize the novelty of reported methods, characterize them and demonstrate their performance using examples or applications.
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