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首页> 外文期刊>Journal of Geodesy >On the spectral combination of satellite gravity model, terrestrial and airborne gravity data for local gravimetric geoid computation
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On the spectral combination of satellite gravity model, terrestrial and airborne gravity data for local gravimetric geoid computation

机译:关于卫星重力模型,地面和空中重力数据的频谱组合,用于局部重力大地水准面计算

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摘要

One of the challenges for geoid determination is the combination of heterogeneous gravity data. Because of the distinctive spectral content of different data sets, spectral combination is a suitable candidate for its solution. The key to have a successful combination is to determine the proper spectral weights, or the error degree variances of each data set. In this paper, the error degree variances of terrestrial and airborne gravity data at low degrees are estimated by the aid of a satellite gravity model using harmonic analysis. For higher degrees, the error covariances are estimated from local gravity data first, and then used to compute the error degree variances. The white and colored noise models are also used to estimate the error degree variances of local gravity data for comparisons. Based on the error degree variances, the spectral weights of satellite gravity models, terrestrial and airborne gravity data are determined and applied for geoid computation in Texas area. The computed gravimetric geoid models are tested against an independent, highly accurate geoid profile of the Geoid Slope Validation Survey 2011 (GSVS11). The geoid computed by combining satellite gravity model GOCO03S and terrestrial (land and DTU13 altimetric) gravity data agrees with GSVS11 to +/- 1.1 cm in terms of standard deviation along a line of 325 km. After incorporating the airborne gravity data collected at 11 km altitude, the standard deviation is reduced to +/- 0.8 cm. Numerical tests demonstrate the feasibility of spectral combination in geoid computation and the contribution of airborne gravity in an area of high quality terrestrial gravity data. Using the GSVS11 data and the spectral combination, the degree of correctness of the error spectra and the quality of satellite gravity models can also be revealed.
机译:确定大地水准面的挑战之一是非均质重力数据的组合。由于不同数据集的独特光谱内容,光谱组合是其解决方案的合适候选者。成功组合的关键是确定适当的频谱权重或每个数据集的误差程度方差。在本文中,借助谐波分析,借助卫星重力模型估算了地面和空中重力数据的低度误差程度方差。对于更高的度数,首先从局部重力数据估计误差协方差,然后将其用于计算误差度方差。白噪声和彩色噪声模型还用于估计局部重力数据的误差程度方差,以进行比较。根据误差程度的变化,确定卫星重力模型的频谱权重,地面和空中重力数据,并将其应用于德克萨斯州的大地水准面计算。针对大地水准面坡度验证调查2011(GSVS11)的独立,高精度大地水准面测试了计算的重力大地水准面模型。通过结合卫星重力模型GOCO03S和地面(陆地和DTU13高度)重力数据计算出的大地水准面在325 km的直线上,在标准偏差方面与GSVS11一致,为+/- 1.1 cm。合并在11 km高度收集的空中重力数据后,标准偏差减小到+/- 0.8 cm。数值试验证明了在大地水准面计算中频谱组合的可行性以及在高质量地面重力数据区域中空中重力的贡献。使用GSVS11数据和频谱组合,还可以揭示误差频谱的正确程度和卫星重力模型的质量。

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