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Estimation of gravity noise variance and signal covariance parameters in least squares collocation with considering data resolution

机译:考虑数据分辨率,重力噪声方差和信号协方差参数最小二乘搭配的估计

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摘要

The article describes an implementation of the negative log-likelihood function in the determination of uncorrelated noise standard deviation together with the parameters of spherical signal covariance model in least squares collocation (LSC) of gravity anomalies. The correctness and effectiveness of restricted maximum likelihood (REML) estimates are fully validated by leave-one-out validation (LOO). These two complementary methods give an opportunity to inspect the parametrization of the signal and uncorrelated noise in details and can provide some guidance related to the estimation of individual parameters. The study provides the practical proof that noise variance is related with the data resolution, which is often neglected and the information on a priori noise variance is based on the measurement error. The data have been downloaded from U.S. terrestrial gravity database and resampled to enable an analysis with four different horizontal resolutions. These data are intentionally the same, as in the previous study of the same author, with the application of the planar covariance model. The aim is to compare the results from two different covariance models, which have different covariance approximation at larger distances. The most interesting outputs from this study confirm previous observations on the relations of the data resolution, a priori noise variance, signal spectrum and LSC accuracy.
机译:该物品描述了在确定不相关的噪声标准偏差中的负面记录似然函数的实现与重力异常的最小二乘搭配(LSC)的球面信号协方差模型的参数一起确定。受限制最大可能性(REML)估计的正确性和有效性通过休留一次验证(LOO)完全验证。这两个互补方法赋予了细节中的信号和不相关噪声的参数化,并且可以提供与个体参数估计相关的一些指导。该研究提供了实际证明,即噪声方差与数据分辨率相关,数据分辨率通常被忽略,并且关于先验噪声方差的信息基于测量误差。数据已从U.S.地面重力数据库下载,并重新采样以实现具有四种不同水平分辨率的分析。这些数据是有意的,如在同一作者的先前研究中,应用平面协方差模型。目的是将两种不同协方差模型的结果进行比较,这在较大的距离下具有不同的协方差近似。本研究中最有趣的输出确认了对数据分辨率的关系,先验噪声方差,信号谱和LSC精度的先前观察。

著录项

  • 作者

    Wojciech Jarmołowski;

  • 作者单位
  • 年度 2016
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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