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Seabed classification of multibeam sonar images

机译:Mulibeam Sonar图像的海底分类

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Seabed images, from multibeam hydrographic systems or from single or multibeam sidescans, convey a lot of information about seabed type. Statistical processing of portions of images can generate features adequate for seabed classification that agree with both large-scale interpretation and fine details. The authors describe Quester Tangent's QTC MULTIVIEW/sup TM/ system for statistical seabed classification, and present several results. This software uses many statistical algorithms to generate over 130 statistical features for each image patch. Principal components analysis extracts the linear combinations of features that best describe the variance in a data set of images. The selection of statistical features is thereby optimized for a particular sediment discrimination problem, rather than a set of features selected for general use. Data points are then assigned to classes by an established clustering process. Examples demonstrate the limitations imposed by sonar physics and by design details of multibeam systems. For accurate classification results, these limitations require respect, either through compensation steps in the processing or excluding pings acquired under non-standard conditions.
机译:来自Multibeam水文系统或单身或多次SideScans的海底图像传达了有关海底类型的大量信息。图像部分的统计处理可以为海底分类产生足够的功能,这与大规模解释和细节相同。作者描述了Quester Tangent的QTC Multiview / Sup TM / System,用于统计海底分类,并呈现几种结果。该软件使用许多统计算法为每个图像修补程序生成超过130个统计功能。主成分分析提取最能描述数据集中的差异的功能的线性组合。由此优化统计特征的选择,针对特定的沉积物辨别问题,而不是选择一般使用的一组特征。然后通过建立的聚类过程分配数据点。示例展示了声纳物理学和多滨系统的设计细节施加的限制。为了准确分类结果,这些限制需要尊重,无论是通过在非标准条件下获取的处理还是排除潮汐的补偿步骤。

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