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Seafloor mapping based on multibeam echosounder bathymetry and backscatter data using Object-Based Image Analysis: a case study from the Rewal site, the Southern Baltic

机译:基于多射流Qoosounder的海底映射和基于对象的图像分析的返回散射数据 - 南波罗南部Rewal网站的案例研究

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摘要

Seafloor mapping is a fast developing multidisciplinary branch of oceanology that combines geophysics, geostatistics, sedimentology and ecology. One of its objectives is to isolate distinct seabed features in a repeatable, fast and objective way, taking into consideration multibeam echosounder (MBES) bathymetry and backscatter data. A large-scale acoustic survey was conducted by the Maritime Institute in Gdansk in 2010 using Reson 8125 MBES. The dataset covered over 20 km(2) of a shallow seabed area (depth of up to 22 m) in the Polish Exclusive Economic Zone within the Southern Baltic. Determination of sediments was possible based on ground-truth grab samples acquired during the MBES survey. Four classes of sediments were recognized as muddy sand, very fine sand, fine sand and clay. The backscatter mosaic created using the Angular Variable Gain (AVG) empirical method was the primary contribution to the image processing method used in this study. The use of the Object-Based Image Analysis (OBIA) and the Classification and Regression Trees (CART) classifier makes it possible to isolate the backscatter image with 87.5% overall and 81.0% Kappa accuracy. The obtained results confirm the possibility of creating reliable maps of the seafloor based on MBES measurements. Once developed, the OBIA workflow can be applied to other spatial and temporal scenes.
机译:Seafloor Mapping是一个快速发展的海洋学的多学科分支,结合了地球物理,地统计学,沉积学和生态学。其目标之一是以可重复,快速和客观的方式隔离不同的海底特征,考虑到多次阵线回路器(MBES)浴室和反向散射数据。使用Reson 8125 MBES在Gdansk的Maritime Institute进行了大规模的声学调查。在南波罗的海南部的波兰专属经济区,该数据集覆盖了20公里(2)米的浅海底区域(深度高达22米)。基于MBES调查期间获得的地面真理抓取样品,可以确定沉积物的测定。四类沉积物被认为是泥泞的沙子,非常细小的沙子,细砂和粘土。使用角度可变增益(AVG)经验方法创建的反向散射拼接是对本研究中使用的图像处理方法的主要贡献。使用基于对象的图像分析(OBIA)和分类和回归树(购物车)分类器可以将反向散射图像和81.0%的Kappa精度隔离。所获得的结果证实了基于MBES测量创建海底地板的可靠地图的可能性。一旦开发出来,可以将OBIA工作流应用于其他空间和时间场景。

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