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Model-based approach to the detection and classification of mines in sidescan sonar

机译:基于模型的侧扫声纳探测和分类方法

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This paper presents a model-based approach to mine detection and classification by use of sidescan sonar. Advances in autonomous underwater vehicle technology have increased the interest in automatic target recognition systems in an effort to automate a process that is currently carried out by a human operator. Current automated systems generally require training and thus produce poor results when the test data set is different from the training set. This has led to research into unsupervised systems, which are able to cope with the large variability in conditions and terrains seen in sidescan imagery. The system presented in this paper first detects possible minelike objects using a Markov random field model, which operates well on noisy images, such as sidescan, and allows a priori information to be included through the use of priors. The highlight and shadow regions of the object are then extracted with a cooperating statistical snake, which assumes these regions are statistically separate from the background. Finally, a classification decision is made using Dempster-Shafer theory, where the extracted features are compared with synthetic realizations generated with a sidescan sonar simulator model. Results for the entire process are shown on real sidescan sonar data. Similarities between the sidescan sonar and synthetic aperture radar (SAR) imaging processes ensure that the approach outlined here could be made applied to SAR image analysis.
机译:本文提出了一种基于模型的侧扫声纳探测和分类方法。自主水下航行器技术的进步增加了对自动目标识别系统的兴趣,以努力使操作人员当前执行的过程自动化。当前的自动化系统通常需要培训,因此当测试数据集与培训集不同时,结果会很差。这就导致了对无监督系统的研究,该系统能够应对侧面扫描图像中看到的条件和地形的巨大变化。本文介绍的系统首先使用马尔可夫随机场模型检测可能的类似地雷的物体,该模型在噪声图像(如侧面扫描)上运行良好,并允许通过使用先验来包含先验信息。然后使用协作统计蛇提取对象的高光和阴影区域,假定这些区域在统计上与背景分离。最后,使用Dempster-Shafer理论做出分类决策,将提取的特征与通过侧扫声纳模拟器模型生成的综合实现进行比较。整个过程的结果显示在真实的侧扫声纳数据上。侧面扫描声纳和合成孔径雷达(SAR)成像过程之间的相似之处确保了此处概述的方法可以应用于SAR图像分析。

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