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A Novel Ship Detection Method Based on Gradient and Integral Feature for Single-Polarization Synthetic Aperture Radar Imagery

机译:基于梯度和积分特征的单极化合成孔径雷达图像舰船检测新方法

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摘要

With the rapid development of remote sensing technologies, SAR satellites like China’s Gaofen-3 satellite have more imaging modes and higher resolution. With the availability of high-resolution SAR images, automatic ship target detection has become an important topic in maritime research. In this paper, a novel ship detection method based on gradient and integral features is proposed. This method is mainly composed of three steps. First, in the preprocessing step, a filter is employed to smooth the clutters and the smoothing effect can be adaptive adjusted according to the statistics information of the sub-window. Thus, it can retain details while achieving noise suppression. Second, in the candidate area extraction, a sea-land segmentation method based on gradient enhancement is presented. The integral image method is employed to accelerate computation. Finally, in the ship target identification step, a feature extraction strategy based on Haar-like gradient information and a Radon transform is proposed. This strategy decreases the number of templates found in traditional Haar-like methods. Experiments were performed using Gaofen-3 single-polarization SAR images, and the results showed that the proposed method has high detection accuracy and rapid computational efficiency. In addition, this method has the potential for on-board processing.
机译:随着遥感技术的飞速发展,像中国的高分三号卫星这样的SAR卫星具有更多的成像模式和更高的分辨率。随着高分辨率SAR图像的出现,自动舰船目标检测已成为海事研究中的重要课题。提出了一种基于梯度和积分特征的船舶检测新方法。该方法主要由三个步骤组成。首先,在预处理步骤中,使用滤波器对杂波进行平滑处理,并且可以根据子窗口的统计信息自适应地调整平滑效果。因此,它可以保留细节,同时实现噪声抑制。其次,在候选区域提取中,提出了一种基于梯度增强的海陆分割方法。积分图像法用于加速计算。最后,在舰船目标识别步骤中,提出了一种基于Haar样梯度信息和Radon变换的特征提取策略。这种策略减少了在传统的类似Haar的方法中发现的模板的数量。利用高分3号单极化SAR图像进行了实验,结果表明该方法具有较高的检测精度和较快的计算效率。另外,这种方法具有进行车载处理的潜力。

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