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Automatic detection and tracking of ship based on mean shift in corrected video sequences

机译:基于校正视频序列中的均值漂移自动检测和跟踪船舶

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Robust real-time ship detection and tracking for visual images automatically has become one of the crucial requirements for numerous situations. In order to improve the performance of automatic ship target detection and tracking system, a novel method based on mean shift is proposed for automatic detection and tracking of ship in the corrected video sequences. Firstly, video frames are corrected based on real-time attitude of the imaging equipment in order to decrease the drift of the ship target from frame to frame. Secondly, sea horizon is extracted based on Ostu algorithm and Hough transform. Thirdly, the ship location is detected based on the detection of grayscale peak. Finally, the ship is automatically tracked by using the mean shift algorithm. The result shows that this method has not only improved the robustness of the system against the shaking while tracking the ships, but also achieved a high success rate of tracking ships automatically in corrected video sequences.
机译:稳健的实时船舶检测和用于视觉图像的跟踪自动已成为许多情况的关键要求之一。为了提高自动船舶目标检测和跟踪系统的性能,提出了一种基于平均移位的新方法,用于校正视频序列中船舶的自动检测和跟踪。首先,基于成像设备的实时姿态来校正视频帧,以便将船舶目标的漂移与框架减小到帧。其次,基于OSTU算法和Hough变换提取海洋地平线。第三,基于灰度峰的检测检测船位置。最后,通过使用平均移位算法自动跟踪该船。结果表明,该方法在跟踪船舶的同时,该方法不仅提高了系统对摇动的鲁棒性,而且还实现了在校正的视频序列中自动跟踪船舶的高成功率。

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