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Ship Detection in Satellite Imagery Using Rank-Order Grayscale Hit-or-Miss Transforms

机译:卫星图像中使用秩阶灰度命中或缺失变换的船舶检测

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Ship detection from satellite imagery is something that has great utility in various communities. Knowing where ships are and their types provides useful intelligence information. However, detecting and recognizing ships is a difficult problem. Existing techniques suffer from too many false-alarms. We describe approaches we have taken in trying to build ship detection algorithms that have reduced false alarms. Our approach uses a version of the grayscale morphological Hit-or-Miss transform. While this is well known and used in its standard form, we use a version in which we use a rank-order selection for the dilation and erosion parts of the transform, instead of the standard maximum and minimum operators. This provides some slack in the fitting that the algorithm employs and provides a method for tuning the algorithm's performance for particular detection problems. We describe our algorithms, show the effect of the rank-order parameter on the algorithm's performance and illustrate the use of this approach for real ship detection problems with panchromatic satellite imagery.
机译:通过卫星图像进行船舶检测在各种社区中都有很大的用途。了解船舶的位置及其类型可提供有用的情报信息。但是,检测和识别船只是一个难题。现有技术存在过多的错误警报。我们描述了尝试建立减少误报的船舶检测算法时所采用的方法。我们的方法使用了灰度形态学“命中或未命中”变换的版本。尽管这是众所周知的并以其标准形式使用,但我们使用的版本中,对转换的扩张和侵蚀部分使用了等级顺序选择,而不是标准的最大值和最小值运算符。这为算法采用的拟合提供了一些松弛,并提供了针对特定检测问题调整算法性能的方法。我们描述了我们的算法,展示了排序参数对算法性能的影响,并说明了该方法在全色卫星图像实际船检问题中的使用。

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