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An Image-Segmentation-Based Urban DTM Generation Method Using Airborne Lidar Data

机译:基于机载激光雷达数据的基于图像分割的城市DTM生成方法

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摘要

DTM generation using airborne Light detection and ranging (Lidar) data is the fundamental issue of Lidar data processing and has been massively studied. However, DTM generation is still challenging in urban areas, due to the existence of densely distributed urban features and very large buildings. Different from most point-based DTM generation algorithms, this research proposes an image-segmentation-based method for urban DTM generation. First, image segmentation is conducted using the DSM image. Next, a seed ground segment is set for each cell. Following the order of the nearest segment pair, each unclassified segment is examined by comparing the spatial correlation between the candidate segment and its nearest ground segment. This process continues until no unclassified segment remains. Based on classified ground segments, all ground points can thus be extracted and the output DTM can be obtained through postinterpolation. This method was experimented in the central Cambridge. The accuracy assessment and comparison with other Lidar-processing methods proved that the segmentation-based method produces urban DTMs with a small mean bias and limited large errors. This methodology has the potential to be applied to other areas and terrain situations. In addition to an original DTM generation method, this research works as an example that mature methods from other subjects can be employed to extend the category of Lidar-processing algorithms.
机译:使用机载光检测和测距(Lidar)数据生成DTM是激光雷达数据处理的基本问题,并且已经进行了大量研究。但是,由于存在密集分布的城市特征和非常大的建筑物,DTM的产生在城市地区仍然具有挑战性。与大多数基于点的DTM生成算法不同,本研究提出了一种基于图像分割的城市DTM生成方法。首先,使用DSM图像进行图像分割。接下来,为每个单元格设置一个种子地面片段。按照最接近的片段对的顺序,通过比较候选片段与其最接近的地面片段之间的空间相关性,检查每个未分类的片段。此过程将继续进行,直到没有未分类的细分为止。因此,基于分类的地面部分,可以提取所有地面点,并可以通过后插值获得输出DTM。该方法在剑桥市中心进行了实验。准确性评估和与其他激光雷达处理方法的比较证明,基于分割的方法产生的城市DTM具有较小的平均偏差和有限的大误差。这种方法有可能应用于其他地区和地形情况。除了原始的DTM生成方法外,本研究还可以作为示例,说明可以利用其他主题的成熟方法来扩展Lidar处理算法的类别。

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