首页> 外文会议>IPTA 2012;International Conference on Image Processing Theory, Tools and Applications >Automatic oil spill detection in TerraSAR-X data using multi-contextual Markov modeling on irregular graphs
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Automatic oil spill detection in TerraSAR-X data using multi-contextual Markov modeling on irregular graphs

机译:在不规则图上使用多语境Markov建模的Terrasar-X数据中的自动漏油检测

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This paper describes the workflow of an automatic near-real time oil spill detection approach using single-polarized high resolution X-Band Synthetic Aperture Radar satellite data. Dark formations on the water surface are classified in a completely unsupervised way using an automatic tile-based thresholding procedure. The derived global threshold value is used for the initialization of a hybrid multi-contextual Markov image model which integrates scale-dependent and spatial contextual information on irregular hierarchical graph structures into the segment-based labeling process of slick-covered and slick-free water surfaces. Experimental investigations performed on TerraSAR-X ScanSAR data acquired during large-scale oil pollutions in the Gulf of Mexico in May 2010 confirm the effectiveness of the proposed method with respect to accuracy and computational effort.
机译:本文介绍了一种使用单极化高分辨率X波段合成孔径雷达卫星数据的自动接近实时油溢出检测方法的工作流程。 水面上的暗结构以完全无监督的方式分类为基于自动平铺的阈值处理程序。 衍生的全局阈值用于初始化混合多体上下文马尔可夫图像模型,其将规模相关的和空间上下文信息集成到不规则分层图结构中的基于SLICK覆盖和无光水表面的基于分段的标记过程中 。 在2010年5月在墨西哥湾大型石油污染期间进行的实验调查在大型石油污染期间获得的,确认了提出的方法关于准确性和计算努力的有效性。

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