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Analysis of the regional GNSS coordinate time series by ICA-weighted spatio-temporal filtering

机译:ICA加权时空滤波的区域GNSS坐标时间序列分析

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Independent component analysis (ICA) is a blind source signal separation method which can effectively estimate high-order information and thus can effectively extract the common mode errors (CMEs) of a regional global navigation satellite system (GNSS) observation network. In this paper, ICA is used for the weighted filtering (WICA) and the extraction of CMEs of a regional GNSS observation network with the root mean square error (RMSE) of daily solution taken as the weighting factor. Through an analysis of the observed data from 19 valid stations of the Crustal Movement Observation Network of China (CMONOC) in North China, it is shown that the coordinate series precision of 13, 16 and 12 stations in the N, E and U directions, respectively, after filtering by WICA is higher than that by the traditional ICA method. The average correlation coefficient of the coordinate time series for each station after filtering is obviously decreased. Two simulation experiments are designed to extract known CMEs. It is shown that CMEs can be recovered better by WICA and that the standard deviations of most stations after filtering are smaller than those by ICA. The results from the real data and simulation experiments suggest that the RMSE of coordinate series be considered in spatio-temporal filtering.
机译:独立分量分析(ICA)是一种盲源信号分离方法,可以有效地估计高阶信息,因此可以有效地提取区域全球导航卫星系统(GNSS)观察网络的共模误差(CMES)。在本文中,ICA用于加权滤波(WICA)和区域GNSS观察网络的CMES的提取与作为加权因子的日常溶液的根均方误差(RMSE)。通过对华北地壳运动观测网络的19个有效站的观察数据分析,表明N,E和U方向的13,16和12站的坐标串联精度,分别在WICS过滤后,通过传统的ICA方法筛选。滤波后每个站的坐标时间序列的平均相关系数显然降低。两个模拟实验旨在提取已知的CME。结果表明,WICE可以更好地恢复CME,过滤后大多数站的标准偏差小于ICA的标准偏差。实际数据和仿真实验的结果表明,在时空滤波中考虑坐标系的RMSE。

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