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首页> 外文期刊>Sensors >A Robust and Multi-Weighted Approach to Estimating Topographically Correlated Tropospheric Delays in Radar Interferograms
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A Robust and Multi-Weighted Approach to Estimating Topographically Correlated Tropospheric Delays in Radar Interferograms

机译:估计雷达干涉图中地形相关对流层延迟的鲁棒且加权方法

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Spatial and temporal variations in the vertical stratification of the troposphere introduce significant propagation delays in interferometric synthetic aperture radar (InSAR) observations. Observations of small amplitude surface deformations and regional subsidence rates are plagued by tropospheric delays, and strongly correlated with topographic height variations. Phase-based tropospheric correction techniques assuming a linear relationship between interferometric phase and topography have been exploited and developed, with mixed success. Producing robust estimates of tropospheric phase delay however plays a critical role in increasing the accuracy of InSAR measurements. Meanwhile, few phase-based correction methods account for the spatially variable tropospheric delay over lager study regions. Here, we present a robust and multi-weighted approach to estimate the correlation between phase and topography that is relatively insensitive to confounding processes such as regional subsidence over larger regions as well as under varying tropospheric conditions. An expanded form of robust least squares is introduced to estimate the spatially variable correlation between phase and topography by splitting the interferograms into multiple blocks. Within each block, correlation is robustly estimated from the band-filtered phase and topography. Phase-elevation ratios are multiply- weighted and extrapolated to each persistent scatter (PS) pixel. We applied the proposed method to Envisat ASAR images over the Southern California area, USA, and found that our method mitigated the atmospheric noise better than the conventional phase-based method. The corrected ground surface deformation agreed better with those measured from GPS.
机译:对流层垂直分层中的时空变化在干涉合成孔径雷达(InSAR)观测中引入了显着的传播延迟。对流层延迟困扰着小振幅表面变形和区域沉降速率的观测,并且与地形高度变化密切相关。假设干涉相和地形之间存在线性关系的基于相位的对流层校正技术已经得到开发和利用,但取得了成功。然而,对流层相位延迟的可靠估计在提高InSAR测量精度方面起着至关重要的作用。同时,很少有基于相位的校正方法可以解释较大研究区域内空间变化的对流层延迟。在这里,我们提出了一种鲁棒的,多权重的方法来估计相位和地形之间的相关性,该方法对混杂过程(例如较大区域的对流沉降以及对流层条件不同)相对不敏感。引入了鲁棒最小二乘的扩展形式,通过将干涉图分成多个块来估计相位和地形之间的空间变量相关性。在每个块内,可以从频带滤波后的相位和形貌中可靠地估计相关性。将相高比相乘并外推到每个持久性散射(PS)像素。我们将提出的方法应用于美国南加州地区的Envisat ASAR图像,发现我们的方法比传统的基于相位的方法更好地减轻了大气噪声。校正后的地面变形与GPS测得的变形更吻合。

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