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Sea–Sky Line and Its Nearby Ships Detection Based on the Motion Attitude of Visible Light Sensors

机译:基于可见光传感器运动姿态的海天线及其附近船舶检测

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摘要

In the maritime scene, visible light sensors installed on ships have difficulty accurately detecting the sea–sky line (SSL) and its nearby ships due to complex environments and six-degrees-of-freedom movement. Aimed at this problem, this paper combines the camera and inertial sensor data, and proposes a novel maritime target detection algorithm based on camera motion attitude. The algorithm mainly includes three steps, namely, SSL estimation, SSL detection, and target saliency detection. Firstly, we constructed the camera motion attitude model by analyzing the camera’s six-degrees-of-freedom motion at sea, estimated the candidate region (CR) of the SSL, then applied the improved edge detection algorithm and the straight-line fitting algorithm to extract the optimal SSL in the CR. Finally, in the region of ship detection (ROSD), an improved visual saliency detection algorithm was applied to extract the target ships. In the experiment, we constructed SSL and its nearby ship detection dataset that matches the camera’s motion attitude data by real ship shooting, and verified the effectiveness of each model in the algorithm through comparative experiments. Experimental results show that compared with the other maritime target detection algorithm, the proposed algorithm achieves a higher detection accuracy in the detection of the SSL and its nearby ships, and provides reliable technical support for the visual development of unmanned ships.
机译:在海上场景中,由于复杂的环境和六自由度运动,安装在船舶上的可见光传感器难以准确检测出海天线(SSL)及其附近的船舶。针对这一问题,本文将摄像机和惯性传感器数据相结合,提出了一种基于摄像机运动姿态的新型海上目标检测算法。该算法主要包括三个步骤,即SSL估计,SSL检测和目标显着性检测。首先,我们通过分析相机的六自由度海上运动来构建相机运动姿态模型,估计SSL的候选区域(CR),然后将改进的边缘检测算法和直线拟合算法应用于在CR中提取最佳SSL。最后,在舰船检测(ROSD)区域,采用了一种改进的视觉显着性检测算法来提取目标舰船。在实验中,我们构建了SSL及其附近的舰船检测数据集,该数据集通过真实的舰船射击与摄像机的运动姿态数据相匹配,并通过对比实验验证了算法中每种模型的有效性。实验结果表明,与其他海上目标检测算法相比,该算法在SSL及其附近船舶的检测中具有较高的检测精度,为无人舰船的视觉发展提供了可靠的技术支持。

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