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首页> 外文期刊>Journal of Geodesy >Are numerical weather model outputs helpful to reduce tropospheric delay signals in InSAR data?
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Are numerical weather model outputs helpful to reduce tropospheric delay signals in InSAR data?

机译:数值天气模型输出是否有助于减少InSAR数据中的对流层延迟信号?

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摘要

Interferometric synthetic aperture radar phase data include not only signals due to crustal movements, but also those associated with microwave propagation delay through the atmosphere. In particular, the effect of water vapor can generate apparent signals in the order of a few centimeters or more, and prevent us from detecting such geophysical signals as those due to secular crustal deformation. To examine if and to what extent numerical weather model (NWM) outputs are helpful to reduce the tropospheric delay signals at spatial scales of 5-50 km wavelengths, we compared three approaches of tropospheric signal reduction, using 54 interferograms in central Hokkaido, Japan. The first approach is the conventional topography-correlated delay correction that is based on the regional digital elevation model (DEM). The second approach is based on the Japan Meteorological Agency's operational meso-scale analysis model (MSM) data, where we compute tropospheric delays and subtract them from the interferogram. However, the MSM data are available at predefined epochs and their spatial resolution is about 10 km; therefore, we need to interpolate both temporally and spatially to match with interferograms. Expecting to obtain a more physically plausible reduction of the tropospheric effects, we ran a 1 -km mesh high-resolution numerical weather model WRF (Weather Research and Forecasting model) by ourselves, using the MSM data as the initial and boundary conditions. The third approach is similar to the second approach, except that we make use of the WRF-based tropospheric data. Results show that if the topography-correlated phases are significant, both the conventional DEM-based approach and the MSM-based approach reveal comparable performances. However, when the topography-correlated phases are insignificant, none of the approaches can efficiently reduce the tropospheric phases. Although it could reduce the tropospheric signals in a local'area, in none of the case studies did the WRF model produce the "best" performance. Whereas the global atmospheric model outputs are shown to be effective in reducing long-wavelength tropospheric signals, we consider that further improvements are needed for the initial and boundary condition data for high-resolution NWM, so that the NWM-based approach will become more reliable even in the case of a non-stratified troposphere.
机译:干涉式合成孔径雷达相位数据不仅包括由于地壳运动引起的信号,还包括与微波通过大气传播延迟相关的信号。特别是,水蒸气的影响会产生大约几厘米或更多厘米的视在信号,并阻止我们检测到诸如由于长期地壳形变引起的地球物理信号。为了检查数值天气模型(NWM)的输出是否以及在何种程度上有助于减少5-50 km波长空间尺度上的对流层延迟信号,我们使用日本北海道中部的54幅干涉图,比较了三种对流层信号降低的方法。第一种方法是基于区域数字高程模型(DEM)的常规地形相关延迟校正。第二种方法基于日本气象厅的运行中尺度分析模型(MSM)数据,在此我们计算对流层延迟并将其从干涉图中减去。但是,MSM数据可在预定义的时期获得,其空间分辨率约为10 km;因此,我们需要在时间和空间上进行插值以与干涉图匹配。期望获得对流层效应的更实际的减少,我们使用MSM数据作为初始条件和边界条件,自行运行了一个1 km网格的高分辨率数值天气模型WRF(天气研究和预报模型)。第三种方法与第二种方法相似,不同之处在于,我们使用了基于WRF的对流层数据。结果表明,如果与地形相关的阶段很重要,则传统的基于DEM的方法和基于MSM的方法都可以表现出可比的性能。但是,当与地形相关的相位无关紧要时,这些方法都无法有效地减少对流层相位。尽管它可以减少局部区域中的对流层信号,但在任何案例研究中,WRF模型都没有产生“最佳”性能。尽管全球大气模型输出显示出在减少长波对流层信号方面有效,但我们认为,高分辨率NWM的初始和边界条件数据需要进一步改进,因此基于NWM的方法将变得更加可靠即使在非分层对流层中也是如此。

著录项

  • 来源
    《Journal of Geodesy》 |2013年第3期|267-277|共11页
  • 作者单位

    Graduate School of Sciences, Hokkaido University, N10W8, Kita-ku, Sapporo, Hokkaido 060-0810, Japan;

    Graduate School of Sciences, Hokkaido University, N10W8, Kita-ku, Sapporo, Hokkaido 060-0810, Japan;

    National Institute of Information and Communications Technology, Nukui-kita, Koganei, Tokyo 184-8795, Japan;

    National Institute of Information and Communications Technology, Nukui-kita, Koganei, Tokyo 184-8795, Japan;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    InSAR; tropospheric delay; numerical weather model; ALOS;

    机译:InSAR;对流层延迟数值天气模型ALOS;

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