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A Semi-Automatic Approach for Estimating Bedrock and Surface Layers from Multichannel Coherent Radar Depth Sounder Imagery

机译:从多通道相干雷达深度测深仪影像估算基岩和表层的半自动方法

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The dynamic responses of the polar ice sheets in Greenland and Antarctica can have substantial impacts on sea level rise. Understanding the mass balance requires accurate assessments of the bedrock and surface layers, but identifying each layer is performed subjectively by time-consuming, dense hand selection. We have developed an approach for semi-automatically estimating bedrock and surface layers from radar depth sounder imagery acquired from Antarctica. Our solution utilizes an active contours method ("level sets") to propagate an initial estimation of a layer's position based upon curvature and image intensity gradients. This allows the initial curve to gravitate with topological changes while providing smooth boundaries for discriminating between bedrock and surface layers. We evaluated the proposed semi-automatic method on 20 images with respect to hand labeled ground-truth. Compared to an automatic technique, our approach reduced labeling error by factors of 5 and 3.5 for tracing bedrock and surface layers, respectively.
机译:格陵兰岛和南极洲极地冰盖的动力响应可能会对海平面上升产生重大影响。了解质量平衡需要对基岩层和表层进行准确评估,但是通过费时,密集的人工选择来主观地确定每一层。我们已经开发出一种方法,可以根据从南极洲获得的雷达测深仪影像,半自动估算基岩和表层。我们的解决方案利用主动轮廓方法(“水平集”)传播基于曲率和图像强度梯度的层位置初始估计。这样可以使初始曲线随拓扑变化而趋向,同时提供平滑的边界以区分基岩层和表层。我们针对手工标记的地面真相,对20张图像评估了建议的半自动方法。与自动技术相比,我们的方法分别在跟踪基岩层和表层时将标签错误减少了5倍和3.5倍。

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