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A fully automated method for monitoring the intertidal topography using Video Monitoring Systems

机译:一种使用视频监控系统监控跨境地形的全自动方法

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Coastal systems are extremely dynamic environments exposed to many hazards, making accurate and regular monitoring a major challenge, particularly in the context of global change and sea level rise. In this frame of reference, high-frequency, high-resolution coastal Video Monitoring Systems (VMS) have been installed on three megatidal (tidal amplitude 9 m) sites of Normandy (France) including a sandy beach at Villers-sur-Mer, a pebble beach at Etretat and a composite beach at Hautot-sur-Mer. This article proposes the use of Mask R-CNN to process images acquired at these sites and perform the automatic segmentation of the visible bodies of water in order to extract the waterline. The extracted waterlines are associated with a measured water level, which makes it possible to reconstruct the topography of the beaches at the scale of the tidal cycle. After training the neural network on manually labeled data, the segmentation by Mask R-CNN is very efficient by achieving a satisfactory segmentation on 69.87% of the images of Villers-sur-Mer, on 67.11% at Hautot-sur-Mer, and on 97.33% at Etretat. Once the waterlines have been extracted and georeferenced, the reproduction of the beaches' morphology is satisfactory (averaged vertical RMSE = 28 cm). These results confirm that segmentation by Mask R-CNN is a particularly powerful tool that allows efficient and low-cost monitoring of the evolution of beach morphology, particularly in response to marine conditions. Its capabilities to detect and segment bodies of water while not being affected by the various sources of noise make it a notably effective tool for coastal science applications.
机译:沿海系统是极其动态的环境,暴露在许多危险中,做出准确和定期监测主要挑战,特别是在全球变化和海平面上升的背景下。在该参考框架中,高频,高分辨率沿海视频监控系统(VMS)已安装在诺曼底(法国)的三个兆(潮汐幅度& 9米)地点,包括村民们 - 苏尔默尔德的沙滩,在埃特雷特特塔特的鹅卵石海滩和豪尔特苏尔梅尔的复合海滩。本文提出使用掩模R-CNN来处理在这些位点上获取的图像,并进行可见水体的自动分割以提取水线。提取的水线与测量的水位相关,这使得可以在潮汐循环的规模处重建海滩的形貌。在手动标记的数据上培训神经网络后,通过在Hautot-sur-mer的67.11%的67.11%上实现69.87%的69.87%的令人满意的分割,掩模R-CNN的分割非常有效。 etretat 97.33%。一旦水线被提取和地割草,海滩的形态的繁殖是令人满意的(平均垂直RMSE = 28cm)。这些结果证实,面罩R-CNN的分割是一种特别强大的工具,允许对海滩形态的演变的有效和低成本监测,特别是响应海洋状况。它来检测和分段水体的能力,同时不会受到各种噪音来源的影响,使其成为沿海科学应用的有效工具。

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