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Data fusion of high-resolution satellite imagery and LiDAR data for automatic building extraction

机译:高分辨率卫星图像和LiDAR数据的数据融合,可自动提取建筑物

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This paper aims to present a new approach for automatic extraction of building footprints in a combination of the IKONOS imagery with pan-sharpened multi-spectral bands and the low-sampled (~0.1 points/m~2) airborne laser scanning data acquired from the Optech's 1020 ALTM (Airborne Laser Terrain Mapper). Initially, a laser point cluster in 3D object space was recognized as an isolated building object if all the member points were similarly attributed as building points by investigating the height property of laser points and the normalized difference vegetation indices (NDVI) driven from IKONOS imagery. As modelling cues, rectilinear lines around building outlines collected by either data-driven or model-driven manner were integrated in order to compensate the weakness of both methods. Finally, a full description of building outlines was accomplished by merging convex polygons, which were obtained as a building region was hierarchically divided by the extracted lines using the Binary Space Partitioning (BSP) tree. The system performance was evaluated by objective evaluation metrics in comparison to the Ordnance Survey's MasterMap~®. This evaluation showed the delineation performance of up to 0.11 (the branching factor) and the detection percentage of 90.1% (the correctness) and the overall quality of 80.5%.
机译:本文旨在结合IKONOS影像(具有超锐化的多光谱波段)和从地面采集的低采样(〜0.1点/ m〜2)机载激光扫描数据,提出一种自动提取建筑足迹的新方法。 Optech的1020 ALTM(机载激光地形测绘仪)。最初,如果通过调查激光点的高度属性和由IKONOS图像驱动的归一化植被指数(NDVI),将所有成员点都相似地归为建筑物点,则将3D对象空间中的激光点簇识别为孤立的建筑物对象。作为建模提示,以数据驱动或模型驱动方式收集的围绕建筑物轮廓的直线被整合,以弥补这两种方法的缺点。最后,通过合并凸多边形完成了建筑轮廓的完整描述,这些凸多边形是通过使用Binary Space Partitioning(BSP)树按提取的线对建筑物区域进行分层划分而获得的。系统性能是通过客观评估指标与军械测量公司的MasterMap®进行比较而得出的。该评估显示出高达0.11(分支因子)的描绘性能,90.1%(正确性)的检测百分比和80.5%的总体质量。

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