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Automatic Edge Extraction by LIDAR-Optical Data Fusion Adaptive for Complex Building Shapes

机译:通过LIDAR光学数据融合自适应边缘自动提取,适用于复杂的建筑形状

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This paper presents a new method of automatic edge extraction by LIDAR-optical fusion adaptive for complex building shapes. Different building features are extracted respectively from the two data sources and fused to form the ultimate complete building edges. Firstly, the points of each roof patch are detected from LIDAR point cloud, which consists of four steps, namely filtering, building detection, wall point removing and roof patch detection. Secondly, the initial edges are extracted from images using the improved Canny detector which is conducted by the edge location information from LIDAR point cloud in the form of edge buffer areas. Finally, the roof patch and initial edges are integrated to form the ultimate complete edge by mathematical morphology. This method presents an innovative strategy to fuse the two data sources to get building edges of high accuracy, which don't impose any constraints or rules on building shape. So this method is fully data-driven. The experimental results demonstrate that our method can automatically extract the accurate edges of various buildings of complex shapes, which have high robustness for complex scene.
机译:本文提出了一种基于LIDAR-光学融合自适应的复杂建筑物形状自动边缘提取新方法。分别从两个数据源中提取不同的建筑物特征,并将其融合以形成最终的完整建筑物边缘。首先,从LIDAR点云中检测每个屋顶斑块的点,包括四个步骤,即滤波,建筑物检测,墙体点去除和屋顶斑块检测。其次,使用改进的Canny检测器从图像中提取初始边缘,该检测器由LIDAR点云中的边缘位置信息以边缘缓冲区的形式进行边缘定位。最后,通过数学形态将屋顶补丁和初始边缘整合在一起,形成最终的完整边缘。这种方法提出了一种创新的策略,可以将两个数据源融合在一起,从而获得高精度的建筑物边缘,而不会对建筑物的形状施加任何约束或规则。因此,此方法完全由数据驱动。实验结果表明,该方法能够自动提取形状复杂的各种建筑物的准确边缘,对复杂场景具有较高的鲁棒性。

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