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Finding Arbitrary-Oriented Ships From Remote Sensing Images Using Corner Detection

机译:使用拐角检测找到从遥感图像的任意定向的船舶

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摘要

Ship detection in remote sensing images is a challenging task. In this letter, a novel anchor-free framework is proposed for detecting arbitrary-oriented ships in remote sensing images. First, an end-to-end fully convolutional network is designed to detect the three key points, including the bow, stern, and center of the ship, as well as its angle. Second, the key points of the bow and stern are combined to generate possible rotated bounding boxes. Third, the predicted center and angle information of the ship are used to confirm the bounding box. In the designed network, feature fusion and feature enhancement modules are introduced to improve the performance in complex scenes. The proposed method avoids complicated anchor design compared with anchor-based methods. The experimental results show that with good robustness to haze occlusion, scale variation, and adjacent ship disturbances, our method outperforms other state-of-the-art methods.
机译:遥感图像中的船舶检测是一个具有挑战性的任务。在这封信中,提出了一种用于检测遥感图像中的任意导向的船舶的新颖锚。首先,端到端的完全卷积网络旨在检测船舶的船首,船尾和中心的三个关键点,以及其角度。其次,组合弓和船尾的关键点以产生可能的旋转边界盒。第三,船舶的预测中心和角度信息用于确认边界框。在设计的网络中,引入了功能融合和功能增强模块,以提高复杂场景中的性能。该方法与基于锚的方法相比,避免了复杂的锚设计。实验结果表明,对遮蔽闭塞,尺度变化和相邻船舶障碍的稳健性良好,我们的方法优于其他最先进的方法。

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