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A novel mathematical morphology based algorithm for shoreline extraction from satellite images

机译:一种基于数学形态学的卫星图像海岸线提取算法

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Shoreline extraction is fundamental and inevitable for several studies. Ascertaining the precise spatial location of the shoreline is crucial. Recently, the need for using remote sensing data to accomplish the complex task of automatic extraction of features, such as shoreline, has considerably increased. Automated feature extraction can drastically minimize the time and cost of data acquisition and database updating. Effective and fast approaches are essential to monitor coastline retreat and update shoreline maps. Here, we present a flexible mathematical morphology-driven approach for shoreline extraction algorithm from satellite imageries. The salient features of this work are the preservation of actual size and shape of the shorelines, run-time structuring element definition, semi-automation, faster processing, and single band adaptability. The proposed approach is tested with various sensor-driven images with low to high resolutions. Accuracy of the developed methodology has been assessed with manually prepared ground truths of the study area and compared with an existing shoreline classification approach. The proposed approach is found successful in shoreline extraction from the wide variety of satellite images based on the results drawn from visual and quantitative assessments.
机译:海岸线提取是一些研究的基础,也是不可避免的。确定海岸线的精确空间位置至关重要。近来,使用遥感数据来完成诸如海岸线的特征的自动提取的复杂任务的需求已经大大增加。自动特征提取可以大大减少数据采集和数据库更新的时间和成本。有效和快速的方法对于监控海岸线撤退和更新海岸线图至关重要。在这里,我们为卫星图像的海岸线提取算法提出了一种灵活的数学形态学驱动方法。这项工作的显着特征是保留海岸线的实际大小和形状,运行时结构元素定义,半自动化,更快的处理速度和单波段适应性。所提出的方法已通过各种分辨率低至高分辨率的传感器驱动的图像进行了测试。已使用人工准备的研究区域的真实情况评估了开发方法的准确性,并与现有的海岸线分类方法进行了比较。根据从视觉和定量评估得出的结果,发现该提议的方法成功地从各种各样的卫星图像中提取了海岸线。

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