首页> 外文期刊>Geoscience and Remote Sensing Letters, IEEE >A Novel Ship Wake CFAR Detection Algorithm Based on SCR Enhancement and Normalized Hough Transform
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A Novel Ship Wake CFAR Detection Algorithm Based on SCR Enhancement and Normalized Hough Transform

机译:基于SCR增强和归一化Hough变换的舰船唤醒CFAR检测新算法。

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摘要

A novel ship wake constant false alarm rate (CFAR) detection algorithm is proposed. The algorithm first detects all the ships and replaces the pixels' gray value of the detected ship with the gray mean value. Then, with the ship target's geometric center as the center, a square image with a certain length is got, and the image is subdivided into four subimages, where the gray intensity contrast of the wake to clutter in the subimage is enhanced. Normalized Hough transform is applied on every subimage, and the probability distribution function in the Hough domain of each subimage is modeled, which can be used for CFAR detection. Finally, the detection results of the subimages are fused to get the final detection. Using our algorithm, the signal-to-clutter ratio of the wake to clutter is enhanced, the ship's navigation direction can be extracted easily, and most importantly, CFAR detection is realized.
机译:提出了一种新的船舶航迹常数虚警率检测算法。该算法首先检测所有船只,并将检测到的船只的像素灰度值替换为灰度平均值。然后,以舰船目标的几何中心为中心,得到一定长度的正方形图像,并将其细分为四个子图像,增强了子图像中尾波到杂波的灰度强度对比度。对每个子图像应用归一化的霍夫变换,并对每个子图像的霍夫域中的概率分布函数进行建模,可将其用于CFAR检测。最终,将子图像的检测结果融合以获得最终检测结果。使用我们的算法,增强了尾波与杂波的信噪比,可以轻松提取船的航行方向,最重要的是,实现了CFAR检测。

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