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Application of the method of moment and Monte-Carlo simulation to extract oil spill areas from synthetic aperture radar images

机译:矩量法和蒙特卡罗模拟方法在合成孔径雷达图像提取漏油区域中的应用

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Synthetic aperture radar (SAR) is a useful instrument to detect oil slicks on the sea surface. Generally, the algorithm for detection of oil slick in SAR images is based on the approach to distinguish the darker area compared to the surrounding area defined on the typical backscatter level. This value can calculate by scattering model using moment method and Monte-Carlo simulation for various conditions of surface roughness induced wind, oil-layer thickness, frequency, polarization and incidence angle. For the simulation, Automatic Weather System (AWS) were used to generate wind fields in SAR image area. The purpose of this study is that extraction of oil spill area from SAR images. For the extraction, radar backscattering value was calculated using scattering model, and it is used by threshold value for distinguishing between oil-covered and non-area in SAR images. In this study, oil thickness assumed by constant, and didn't take into account the direction of the wind. From this study results, we expect that automatic classification of oil slick features from lookalikes and detecting of seepage on sea surface.
机译:合成孔径雷达(SAR)是检测海面浮油的有用仪器。通常,用于检测SAR图像中浮油的算法是基于区分与典型反向散射级别上定义的周围区域相比较暗的区域的方法。该值可以通过使用矩量法和蒙特卡洛模拟的散射模型针对表面粗糙度引起的风,油层厚度,频率,极化和入射角的各种条件进行计算。为了进行仿真,使用自动气象系统(AWS)在SAR图像区域中生成风场。这项研究的目的是从SAR图像中提取溢油面积。为了进行提取,使用散射模型计算了雷达的反向散射值,并通过阈值将其用于区分SAR图像中的油层和非区域。在这项研究中,油的厚度假定为常数,并且未考虑风向。从这项研究结果中,我们期望从外观上自动对浮油特征进行分类并检测海面渗漏。

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