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Split-Band Interferometry-Assisted Phase Unwrapping for the Phase Ambiguities Correction

机译:裂隙干涉术辅助相位解缠,用于相位模糊度校正

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Split-Band Interferometry (SBInSAR) exploits the large range bandwidth of the new generation of synthetic aperture radar (SAR) sensors to process images at subrange bandwidth. Its application to an interferometric pair leads to several lower resolution interferograms of the same scene with slightly shifted central frequencies. When SBInSAR is applied to frequency-persistent scatterers, the linear trend of the phase through the stack of interferograms can be used to perform absolute and spatially independent phase unwrapping. While the height computation has been the main concern of studies on SBInSAR so far, we propose instead to use it to assist conventional phase unwrapping. During phase unwrapping, phase ambiguities are introduced when parts of the interferogram are separately unwrapped. The proposed method reduces the phase ambiguities so that the phase can be connected between separately unwrapped regions. The approach is tested on a pair of TerraSAR-X spotlight images of Copahue volcano, Argentina. In this framework, we propose two new criteria for the frequency-persistent scatterers detection, based respectively on the standard deviation of the slope of the linear regression and on the phase variance stability, and we compare them to the multifrequency phase error. Both new criteria appear to be more suited to our approach than the multifrequency phase error. We validate the SBInSAR-assisted phase unwrapping method by artificially splitting a continuous phase region into disconnected subzones. Despite the decorrelation and the steep topography affecting the volcanic test region, the expected phase ambiguities are successfully recovered whatever the chosen criterion to detect the frequency-persistent scatterers. Comparing the aspect ratio of the distributions of the computed phase ambiguities, the analysis shows that the phase variance stability is the most efficient criterion to select stable targets and the slope standard deviation gives satisfactory results.
机译:分裂频带干涉术(SBInSAR)利用新一代合成孔径雷达(SAR)传感器的大范围带宽来处理子范围带宽下的图像。将其应用于干涉对时,会导致同一场景的几个较低分辨率的干涉图,并且中心频率会稍有偏移。将SBInSAR应用于频率永久性散射体时,通过干涉图堆栈的相位线性趋势可用于执行绝对和空间独立的相位展开。到目前为止,尽管高度计算一直是SBInSAR研究的主要关注点,但我们建议改为使用它来辅助常规相位展开。在相位展开过程中,当干涉图的各个部分分别展开时会引入相位模糊度。所提出的方法减小了相位模糊度,从而可以将相位连接在分开的未包裹区域之间。该方法已在阿根廷Copahue火山的一对TerraSAR-X聚光灯图像上进行了测试。在此框架中,我们分别基于线性回归斜率的标准偏差和相位方差稳定性,提出了两个用于频率持久性散射体检测的新标准,并将它们与多频相位误差进行比较。与多频相位误差相比,这两个新标准似乎更适合我们的方法。我们通过将连续的相位区域人为地分成不连续的子区域来验证SBInSAR辅助相位展开方法。尽管去相关和陡峭的地形影响了火山测试区域,但无论选择哪种标准来检测频率持久性散射体,都可以成功地恢复预期的相位模糊性。比较所计算出的相位模糊度的纵横比,分析表明,相位方差稳定性是选择稳定目标的最有效标准,并且斜率标准偏差给出了令人满意的结果。

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