3D rooftop extraction using perceptual organization based on fast graph search

Dong-Min Woo, Q. Nguyen, Dong-Chul Park
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引用次数: 2

Abstract

This paper presents a new building rooftop extraction method from aerial images. In our approach, we extract the useful building location information from the generated disparity map to segment the interested objects and consequently reduce unnecessary line segments extracted in low level feature extraction step. Hypothesis selection is carried out by using undirected graph, in which close cycles represent complete rooftops hypotheses. We test the proposed method with the synthetic images generated from Avenches dataset of Ascona aerial images. The experiment result shows that the extracted 3D line segments of the reconstructed buildings reflect the actual building structure and our method can be efficiently used for the task of building detection and reconstruction from aerial images.
基于快速图搜索的感知组织三维屋顶提取
提出了一种基于航拍图像的建筑物屋顶提取方法。在我们的方法中,我们从生成的视差图中提取有用的建筑物位置信息来分割感兴趣的物体,从而减少在低级特征提取步骤中提取的不必要的线段。使用无向图进行假设选择,其中闭合环表示完整的屋顶假设。我们用Avenches的Ascona航空图像数据集生成的合成图像对该方法进行了测试。实验结果表明,提取的重建建筑物的三维线段反映了建筑物的实际结构,该方法可以有效地用于航拍图像的建筑物检测和重建任务。
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