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Spectral analysis of synthetically affected FG5 absolute gravimeter residuals.

机译:合成影响的FG5绝对重力仪残差的光谱分析。

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摘要

An instrumental or environmental disturbance (signal plus noise) in absolute gravimeter FG5 observations becomes visible by analyzing the residuals, which represent the misfit from the theoretical acceleration parabola. While spectral analysis of FG5 residuals via the classical discrete Fourier transform (DFT) is limited by the non-equispaced nature of the FG5 observations, the Lomb-Scargle periodogram can analyze non-equispaced observations and can be used to estimate (detect) the signal content of FG5 residuals. For the task of revitalization of noisy absolute gravimetry data sets it is interesting to first investigate the detectability of synthetically introduced disturbances in FG5 residuals using Lomb-Scargle periodogram analysis. Based on the performed frequency analysis, a heuristically derived formula using a Gaussian Bell Summation is used for estimating the impact on gravity and to eventually filter out identified disturbances using a modified FG5 data adjustment algorithm. The results demonstrate that the drop frequency used (equivalent to the number of fringes used) changes the sensitivity of Lomb-Scargle analysis in terms of frequency estimation and resolution. Using a different number of fringes consequently leads to different gravity values, which must be considered in FG5 comparisons.;A new wavelet-based approach for analyzing FG5 residuals is also presented. In this approach, a dyadic bundle of drop residuals is analyzed as a whole, while Lomb-Scargle analyzes single drops. Since the appearance of real signals and disturbances are not limited to the duration of a single drop, this analysis bears more potential to identify environmental and instrumental disturbances. By appropriate interpolation, an evenly spaced and dyadic time series is obtained. The discrete wavelet transformation is used to select a relevant frequency range and to denoise the time series of drop residuals. The denoised time series is then analyzed with the wavelet power spectrum using the continuous wavelet transformation. Finally, the new procedure is tested with synthetic and real data. Results of the wavelet analysis indicate superior performance over Lomb-Scargle analysis in terms of detectability and accuracy in frequency determination.
机译:通过分析残差,可以看到绝对重力仪FG5观测中的仪器或环境干扰(信号加噪声),这些残差表示与理论加速度抛物线的不匹配。尽管通过经典离散傅里叶变换(DFT)对FG5残差进行频谱分析受到FG5观测值的非等距性质的限制,但Lomb-Scargle周期图可以分析非等距观测值,并可用于估计(检测)信号FG5残基的含量。为了重振嘈杂的绝对重量数据集,首先要使用Lomb-Scargle周期图分析研究FG5残差中综合引入的干扰的可检测性。基于执行的频率分析,使用高斯贝尔求和法的启发式公式用于估算对重力的影响,并最终使用改进的FG5数据调整算法过滤出已识别的干扰。结果表明,所使用的下降频率(等于所使用的条纹数量)在频率估计和分辨率方面改变了Lomb-Scargle分析的灵敏度。因此,使用不同数量的条纹会导致不同的重力值,这在FG5比较中必须考虑。;还提出了一种基于小波的新方法来分析FG5残差。在这种方法中,对液滴残差的二元束进行了整体分析,而Lomb-Scargle分析单个液滴。由于真实信号和干扰的出现不仅限于单个液滴的持续时间,因此该分析具有识别环境和仪器干扰的更大潜力。通过适当的插值,可以获得均匀间隔的二进时间序列。离散小波变换用于选择相关的频率范围并降噪液滴残差的时间序列。然后使用连续小波变换用小波功率谱分析去噪的时间序列。最后,将对新程序进行综合和真实数据测试。小波分析的结果表明在频率检测的可检测性和准确性方面,优于Lomb-Scargle分析。

著录项

  • 作者

    Orlob, Martin.;

  • 作者单位

    The University of Texas at Dallas.;

  • 授予单位 The University of Texas at Dallas.;
  • 学科 Geophysics.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 129 p.
  • 总页数 129
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 康复医学;
  • 关键词

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