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Detection and quantification of precipitations signatures on Synthetic Aperture Radar imagery at X band

机译:X波段合成孔径雷达影像上降水特征的检测和定量

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Nowadays a well-established tool for Earth remote sensing is represented by Spaceborne synthetic aperture radars (SARs) operating at L-band and above that offers a microwave perspective at very high spatial resolution in almost all-weather conditions. Nevertheless, atmospheric precipitating clouds can significantly affect the signal backscattered from the ground surface on both amplitude and phase, as assessed by numerous recent works analyzing data collected by COSMO-SkyMed (CSK) and TerraSAR-X (TSX) missions. On the other hand, such sensitivity could allow detecting and quantifying precipitations through SARs. In this work, we propose an innovative processing framework aiming at producing X-SARs precipitation maps and cloud masks. While clouds masks allow the user to detect areas interested by precipitations, precipitation maps offer the unique opportunity to ingest within flood forecasting model precipitation data at the catchment scale. Indeed, several issues still need to be fully addressed. The proposed approach allows distinguishing flooded areas, precipitating clouds together with permanent water bodies. The detection procedure uses image segmentation techniques, fuzzy logic and ancillary data such as local incident angle map and land cover; an improved regression empirical algorithm gives the precipitation estimation. We have applied the proposed methodology to 16 study cases, acquired within TSX and CSK missions over Italy and United States. This choice allows analysing different typologies of events, and verifying the proposed methodology through the available local weather radar networks. In this work, we will discuss the results obtained until now in terms of improved rain cell localization and precipitation quantification.
机译:如今,以L波段及以上波段运行的星载合成孔径雷达(SAR)代表了一种完善的地球遥感工具,该雷达在几乎全天候的条件下以很高的空间分辨率提供了微波视角。然而,正如最近对COSMO-SkyMed(CSK)和TerraSAR-X(TSX)任务收集到的数据进行分析后得出的结论,大气中的降水云会在幅度和相位上严重影响从地面反向散射的信号。另一方面,这种敏感性可以允许通过SAR检测和量化降水。在这项工作中,我们提出了一个创新的处理框架,旨在产生X-SAR降水图和云罩。尽管云遮罩使用户能够检测到降水感兴趣的区域,但降水图提供了在流域尺度上将洪水预报模型中的降水数据吸收到洪水中的独特机会。实际上,仍然需要充分解决几个问题。所提出的方法可以区分洪泛区,使云层与永久水体一起沉淀。检测程序使用图像分割技术,模糊逻辑和辅助数据,例如局部入射角图和土地覆盖;改进的回归经验算法给出了降水估计。我们已将所建议的方法应用于在意大利和美国的TSX和CSK任务中获得的16个研究案例。这种选择可以分析事件的不同类型,并通过可用的本地天气雷达网络验证所提出的方法。在这项工作中,我们将讨论到目前为止获得的关于改进的雨单元定位和降水量化方面的结果。

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