Building Corner Feature Extraction Based on Fusion Technique with Airborne LiDAR Data and Aerial Imagery

Liang-Hwei Lee, S. Shyue, Ming Huang
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引用次数: 5

Abstract

Generally, automatic building corner or linear feature extraction from urban area aerial imagery is based on traditional computer vision corner or edge detection techniques. However, challenges and difficulties remained due to the complex characteristic of objects in urban images. Visually, the linear features in airborne LiDAR are much more distinct than those in aerial imagery, however, common criticisms arising from the low horizontal accuracy of LiDAR data. To overcome these difficulties, this study proposes a building corner extraction algorithm based on information fusion technology by integrating aerial imagery and airborne LiDAR data. According to experiment results, the proposed method can obtain the distinct building corners not only with the characteristics of uniform spatial distributed pattern based on Voronoi graph theory, but also with the shape, length, and height constrained conditions derived from LiDAR linear features. The proposed algorithm resolves the heterogeneous remote sensing data registration difficulties between LiDAR data and raw aerial imagery.
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基于机载激光雷达数据与航空影像融合技术的建筑物角点特征提取
城市航拍图像中建筑物角点或线性特征的自动提取通常是基于传统的计算机视觉角点或边缘检测技术。然而,由于城市图像中物体的复杂性,挑战和困难仍然存在。从视觉上看,机载激光雷达的线性特征比航空图像中的线性特征明显得多,然而,常见的批评来自激光雷达数据的低水平精度。为了克服这些困难,本研究提出了一种基于信息融合技术的建筑角提取算法,该算法将航空影像与机载激光雷达数据相结合。实验结果表明,该方法既可以利用基于Voronoi图理论的均匀空间分布模式特征,又可以利用LiDAR线性特征导出的形状、长度和高度约束条件获得不同的建筑角点。该算法解决了激光雷达数据与原始航空影像之间的异构遥感数据配准难题。
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