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Seamless Fusion of LiDAR and Aerial Imagery for Building Extraction

机译:LiDAR与航空影像的无缝融合以提取建筑物

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Although many efforts have been made on the fusion of Light Detection and Ranging (LiDAR) and aerial imagery for the extraction of houses, little research on taking advantage of a building's geometric features, properties, and structures for assisting the further fusion of the two types of data has been made. For this reason, this paper develops a seamless fusion between LiDAR and aerial imagery on the basis of aspect graphs, which utilize the features of houses, such as geometry, structures, and shapes. First, 3-D primitives, standing for houses, are chosen, and their projections are represented by the aspects. A hierarchical aspect graph is then constructed using aerial image processing in combination with the results of LiDAR data processing. In the aspect graph, the note represents the face aspect and the arc is described by attributes obtained by the formulated coding regulations, and the coregistration between the aspect and LiDAR data is implemented. As a consequence, the aspects and/or the aspect graph are interpreted for the extraction of houses, and then the houses are fitted using a planar equation for creating a digital building model (DBM). The experimental field, which is located in Wytheville, VA, is used to evaluate the proposed method. The experimental results demonstrated that the proposed method is capable of effectively extracting houses at a successful rate of 93%, as compared with another method, which is 82% effective when LiDAR spacing is approximately 7.3 by 7.3 ft $^{2}$. The accuracy of 3-D DBM is higher than the method using only single LiDAR data.
机译:尽管在将光探测与测距(LiDAR)与航拍图像融合以提取房屋方面做出了许多努力,但很少有研究利用建筑物的几何特征,特性和结构来辅助这两种类型的融合数据已完成。因此,本文基于纵横图开发了LiDAR与航拍图像之间的无缝融合,这些纵横图利用了房屋的几何,结构和形状等特征。首先,选择代表房屋的3-D图元,并用各方面表示它们的投影。然后使用航拍图像处理与LiDAR数据处理的结果相结合,构造出一个分层的外观图。在外观图中,注释表示面部外观,并通过制定的编码规则获得的属性来描述圆弧,并实现外观与LiDAR数据之间的一致性。结果,解释方面和/或方面图以提取房屋,然后使用平面方程拟合房屋,以创建数字建筑物模型(DBM)。位于弗吉尼亚州威斯维尔的实验场用于评估该方法。实验结果表明,与另一种方法相比,该方法能够以93%的成功率有效地提取房屋,而当LiDAR间距约为7.3 x 7.3 ft ^ {2} $时,该方法的有效率为82%。 3-D DBM的准确性高于仅使用单个LiDAR数据的方法。

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