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Semiautomatic airport runway extraction using a line-finder-aided level set evolution

机译:使用寻线仪辅助的水平集演化进行半自动机场跑道提取

摘要

In recent years, airport runway extraction has become increasingly important for various engineering applications. Existing approaches for airport runway extraction primarily focus on locating the airport roughly, i.e., determining whether an airport is present or not, but not delineating the airport runway accurately. This study develops a novel method for semiautomatic airport runway extraction from Google earth images by integrating a long straight line finder and a region-based level set evolution (LSE). Specifically, we start by detecting the long straight lines that most likely represent airport runway boundaries in the original images. Then, based on the extracted lines, we propose a method for semiautomatic generation of initial level curves for the LSE. Furthermore, for accurate extraction of the entire airport runways, a fast region-based LSE is used to evolve the initial level curves toward the desired boundaries. Experiments validate that the proposed method is capable of semiautomatically extracting objects with complex geometrical shapes and topological structures from challenging backgrounds. Compared with other state-of-the-art approaches, the proposed method has much fewer parameters and is more computationally efficient while achieving object extraction accuracy comparable to other approaches.
机译:近年来,机场跑道提取对于各种工程应用变得越来越重要。现有的机场跑道提取方法主要集中在粗略地定位机场,即确定是否存在机场,而不是准确地描绘出机场跑道。这项研究通过集成长直线查找器和基于区域的水平集演化(LSE),开发了一种从Google地球图像中提取半自动机场跑道的新方法。具体来说,我们首先检测很可能代表原始图像中机场跑道边界的长直线。然后,基于提取的线,我们提出了一种用于LSE的半自动生成初始水平曲线的方法。此外,为了准确提取整个机场跑道,使用了基于区域的快速LSE将初始水准曲线向所需边界方向发展。实验证明,该方法能够从具有挑战性的背景中半自动提取具有复杂几何形状和拓扑结构的对象。与其他最新方法相比,该方法具有更少的参数,并且在计算效率上更高,同时可实现与其他方法相当的目标提取精度。

著录项

  • 作者

    Li Z; Liu Z; Shi W;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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