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An adaptive threshod segmentation algorithm to extract dark targets from SAR images

机译:自适应阈值分割算法从SAR图像中提取暗目标

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An adaptive threshold segmentation algorithm to extract dark targets from SAR images is presented, which is the key procedure to establish an automatic oil spill detection system. The extracted dark targets will then be sent to a classifier, such as a neural network, to discriminate oil spills and look-alikes. In order to reduce the calculation amount of following classifier, some simple filters are applied to reduce the look-alikes as many as possible while ensuring all oil spills are remained. Accurate local background estimation is required to determine the dark targets. Usually, the mean brightness of a small sliding window is used to estimate the background brightness. But it is not suitable for big dark targets. To avoid the effect of big dark targets, the proposed algorithm firstly estimates a rough background and then iteratively refines the background estimation. In each step, the rough dark targets are extracted based on the rough background. The new background is then calculated by removing the dark targets. The procedures above repeat iteratively and finally the best estimated background and dark targets are obtained simultaneously. The first guess background can be calculated by fitting the azimuthal averaged brightness trend along the range with parabolic curve.
机译:提出了一种自适应阈值分割算法,可以从SAR图像中提取暗目标,这是建立自动溢油检测系统的关键步骤。然后,提取的暗目标将被发送到分类器(例如神经网络)以区分溢油和相似物体。为了减少后续分类器的计算量,应用了一些简单的过滤器来尽可能地减少相似性,同时确保保留所有溢油。需要准确的局部背景估计来确定暗目标。通常,小滑动窗口的平均亮度用于估计背景亮度。但是它不适合大型黑暗目标。为了避免大目标的影响,该算法首先对背景进行粗略估计,然后对背景估计进行迭代细化。在每个步骤中,将根据粗糙背景提取粗糙的深色目标。然后,通过删除深色目标来计算新的背景。上面的过程反复进行,最终同时获得了最佳的估计背景和暗目标。可以通过使用抛物线曲线拟合沿范围的方位角平均亮度趋势来计算第一个猜测背景。

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