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A Bayesian approach to seafloor classification using multi-beam echo-sounder backscatter data

机译:使用多波束回声-后向散射数据的贝叶斯海底分类方法

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摘要

Seafloor classification using acoustic remote sensing techniques is an attractive approach due to its high-coverage capabilities and limited costs. The multi-beam echo-sounder (MBES) system provides high-resolution bathymetry and backscatter information with 100% coverage. In this paper, we present a seafloor classification method that employs the MBES backscatter data. The method uses the averaged backscatter data per beam. It, therefore, is independent on the quality of the MBES calibration. Also, its performance is insensitive to seafloor type variation along the MBES swathe and corrections for the angular dependence of the backscatter are not needed. The method accounts for the ping-to-ping variability of the backscatter intensity. It estimates both the number of seafloor types present in the survey area and the probability density function for the backscatter strength at a certain angle for each of the seafloor types. Application of the method to MBES backscatter data acquired in a well-known test area in the North Sea shows very good agreement with available ground truth. The method's discriminatory performance for this area is demonstrated to be comparable to that of taking samples of the sediment. All seafloor types known to be present in the area are resolved for. Application of the method to the Stanton bank data set shows clearly separable areas that differ in seafloor composition.
机译:由于其高覆盖能力和有限的成本,使用声学遥感技术对海底进行分类是一种有吸引力的方法。多光束回声法(MBES)系统可提供100%覆盖率的高分辨率测深和反向散射信息。在本文中,我们提出了一种利用MBES反向散射数据的海底分类方法。该方法使用每个光束的平均反向散射数据。因此,它与MBES校准的质量无关。而且,其性能对沿MBES缠绕的海底类型变化不敏感,因此不需要对反向散射的角度依赖性进行校正。该方法考虑了反向散射强度的ping到ping变异性。它估计调查区域中存在的海底类型的数量以及每种海底类型在特定角度的反向散射强度的概率密度函数。将该方法应用于在北海一个著名的测试区域中获得的MBES背向散射数据表明,它与现有的地面真相非常吻合。事实证明,该方法在该区域的辨别性能与取样沉积物的性能相当。解决该区域已知的所有海底类型。将该方法应用于斯坦顿银行数据集后,可以清楚地看出可分离区域的海底成分不同。

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