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DISPARITY REFINEMENT OF BUILDING EDGES USING ROBUSTLY MATCHED STRAIGHT LINES FOR STEREO MATCHING

机译:建筑边缘的差异细化使用强大的直线用于立体声匹配

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摘要

Stereo dense matching has already been one of the dominant tools in 3D reconstruction of urban regions, due to its low cost and high flexibility in generating 3D points. However, the image-derived 3D points are often inaccurate around building edges, which limit its use in several vision tasks (e.g. building modelling). To generate 3D point clouds or digital surface models (DSM) with sharp boundaries, this paper integrates robustly matched lines for improving dense matching, and proposes a non-local disparity refinement of building edges through an iterative least squares plane adjustment approach. In our method, we first extract and match straight lines in images using epipolar constraints, then detect building edges from these straight lines by comparing matching results on both sides of straight lines, and finally we develop a non-local disparity refinement method through an iterative least squares plane adjustment constrained by matched straight lines to yield sharper and more accurate edges. Experiments conducted on both satellite and aerial data demonstrate that our proposed method is able to generate more accurate DSM with sharper object boundaries.
机译:立体声密集匹配已经是城市地区三维重建的主导工具之一,由于其在生成3D点的低成本和高度灵活性。然而,图像导出的3D点通常不准确,在建筑边缘周围限制其在若干视觉任务中的使用(例如,构建建模)。为了产生具有尖端的3D点云或数字表面模型(DSM),本文集成了强大的匹配线来改善密集匹配,并通过迭代最小二乘平面调整方法提出建筑边的非局部视差细化。在我们的方法中,我们首先使用eMipolar约束提取和匹配图像的直线,然后通过比较直线两侧的匹配结果来检测从这些直线的建筑边缘,最后我们通过迭代开发非局部视差细化方法最小二乘平面调节由匹配的直线限制,以产生更清晰和更精确的边缘。在卫星和空中数据上进行的实验表明,我们所提出的方法能够产生更精确的DSM,具有更锐的对象边界。

著录项

  • 作者

    X. Huang; R. Qin; M. Chen;

  • 作者单位
  • 年度 2018
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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