基于方位角舍入的建筑变形监测高程掩模建模方法

IF 1.4 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS Acta Geodaetica et Geophysica Pub Date : 2023-06-27 DOI:10.1007/s40328-023-00413-y
Han Junqiang, Tu Rui, Lu Xiaochun, Xiao Xia, Zhang Rui, Fan Lihong, Zhang Pengfei, Wang Siyao
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引用次数: 0

摘要

随着建筑业的快速发展,对建筑物变形进行精确、高效的监测已成为保证其安全施工和稳定运行的关键因素。高层建筑引起的卫星信号频繁出现遮挡和衍射误差,已成为制约北斗卫星变形监测定位精度的主要挑战。针对这一问题,本研究提出了一种基于方位角舍入的卫星信号遮挡仰角建模方法,并将其应用于BDS建筑变形实时监测与定位算法。所提出的方法包括定义整数方位角和仰角的特定子集,然后利用该子集中的最小仰角来开发与方位角相关的仰角掩模角模型。我们的目标是使用传统方法开发仰角掩模模型,该模型可用于聚焦非视距(NLOS)和多径信号,并通过降低其权重来减弱其对定位精度的影响。实验结果表明,仰角掩模模型可以很容易地利用BDS卫星在一天内的观测数据完成,它的使用可以使参与BDS实时变形监测计算的有效卫星数量更加准确和可靠。含浮子溶液的定位结果在东北朝上(ENU)方向的均方根(RMS)分别提高了91.1%、93.3%和72.7%,固定模糊定位结果的均方根(RMS)分别提高了6.9%、10.0%和29.5%。由此可见,仰角掩模建模算法实现方便,能显著提高北斗系统变形监测结果的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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An elevation mask modeling method based on azimuth rounding for monitoring building deformation

With the rapid growth of the construction industry, precise and efficient monitoring of building deformation has become a crucial factor in ensuring their secure construction and stable operation. The frequent occurrence of occlusion and diffraction errors in satellite signals caused by high-rise buildings has emerged as a primary challenge that constrains the accuracy of positioning in deformation monitoring by BeiDou Navigation Satellite (BDS). To solve the problems, this study proposes an elevation mask angle modeling method of satellite signal occlusion based on azimuth rounding and applies it to real-time BDS building deformation monitoring and positioning algorithm. The proposed approach involves defining a particular subset of integer azimuth and elevation angles, followed by utilizing the minimum elevation angle from this subset to develop a model for the azimuth-dependent elevation mask angle. We aimed to develop an elevation angle mask model using a conventional approach, and the model can be utilized to focus on non-line-of-sight (NLOS) and multipath signals and attenuate their impact on positioning accuracy by reducing their weight. The experimental results show that the elevation angle mask model can be easily completed by using the observation data of BDS satellites in a single day, and its use can make the number of effective satellites involved in the calculation of real-time deformation monitoring of BDS more accurate and reliable. The root mean square (RMS) of positioning results including float solutions was increased respectively by 91.1%, 93.3%, and 72.7% in the direction of East-North-Up (ENU), and the RMS of results with fixed ambiguity was increased by 6.9%, 10.0%, and 29.5%, respectively. Therefore, it can be concluded that the elevation mask angle modeling algorithm is convenient to realize and can significantly improve the performance of deformation monitoring results by BDS.

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来源期刊
Acta Geodaetica et Geophysica
Acta Geodaetica et Geophysica GEOCHEMISTRY & GEOPHYSICS-
CiteScore
3.10
自引率
7.10%
发文量
26
期刊介绍: The journal publishes original research papers in the field of geodesy and geophysics under headings: aeronomy and space physics, electromagnetic studies, geodesy and gravimetry, geodynamics, geomathematics, rock physics, seismology, solid earth physics, history. Papers dealing with problems of the Carpathian region and its surroundings are preferred. Similarly, papers on topics traditionally covered by Hungarian geodesists and geophysicists (e.g. robust estimations, geoid, EM properties of the Earth’s crust, geomagnetic pulsations and seismological risk) are especially welcome.
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