基于多波束声纳的鲁棒目标轮廓提取

Cheng De-shan, Liu Heng-rui, Li Ting-wen, Wang Yang, Wu Zhong-ping, Zhao Jiang-bin
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引用次数: 1

摘要

多波束声呐是水下中远距离目标探测的重要视觉感知工具之一。由此获得的声纳图像是水下场景三维重建的重要数据源。为了解决多波束声呐水下目标检测中存在的背景噪声和杂波问题,提出了一种鲁棒的多波束图像声呐目标轮廓提取方法。首先,根据像素灰度值对图像各列上的点进行阈值处理和非最大值抑制,得到目标轮廓的候选点;其次,根据多波束声纳成像原理,建立候选点的似然概率模型和相邻图像列间的跳罚模型,消除噪声对轮廓提取的影响;根据所建立的目标函数的特点,采用动态规划方法进行求解。实测数据和仿真数据的实验结果表明,该算法简单、易于操作,能够准确有效地提取多波束图像声纳的单轮廓,具有较高的应用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust Object Profile Extraction Based on Multi-beam Sonar
Multi-beam sonar is one of the most important visual perception tools for underwater medium and longdistance object detection. The sonar image obtained by it is an important data source for Three-dimensional reconstruction of underwater scenes. In order to solve the problems of background noise and clutter in underwater target detection based on multi-beam sonar, a robust object profile extraction method for multi-beam image sonar is proposed in this paper. Firstly, threshold processing and non-maximum suppression are carried out for the points on each column of the image according to the pixel gray value to obtain the candidate points of the object profile. Secondly, according to the imaging principle of multi-beam sonar, the likelihood probability model of candidate points and the jump penalty model between adjacent columns of image are established to remove the influence of noise on profile extraction. According to the characteristics of the established objective function, the dynamic programming method is used to solve the problem. The experimental results of measured and simulated data show that this algorithm is simple and easy to operate, and can accurately and effectively extract the single profile of multi-beam image sonar, which has a high application value.
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