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Generation of a DTM and building detection based on an MPF through integrating airborne lidar data and aerial images

机译:通过集成机载激光雷达数据和航拍图像,基于MPF生成DTM和建筑物检测

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摘要

This study presents an approach that uses airborne light detection and ranging (lidar) data and aerial imagery for creating a digital terrain model (DTM) and for extracting building objects. The process of creating the DTM from lidar data requires four steps in this study: pre-processing, segmentation, extraction of ground points, and refinement. In the pre-processing step, raw data are transformed to raster data. For segmentation, we propose a new mean planar filter (MPF) that uses a 3 × 3 kernel to divide lidar data into planar and nonplanar surfaces. For extraction of ground points, a new method to extract additional ground points in forest areas is used, thus improving the accuracy of the DTM. The refinement process further increases the accuracy of the DTM by repeated comparison of a temporary DTM and the digital surface model. After the DTM is generated, building objects are extracted via a proposed three-step process: detection of high objects, removal of forest areas, and removal of small areas. High objects are extracted using the height threshold from the normalized digital surface model. To remove forest areas from among the high objects, an aerial image and normalized digital surface model from the lidar data are used in a supervised classification. Finally, an area-based filter eliminates small areas, such as noise, thus extracting building objects. To evaluate the proposed method, we applied this and three other methods to five sites in different environments. The experiment showed that the proposed method leads to a notable increase in accuracy over three other methods when compared with the in situ reference data.
机译:这项研究提出了一种方法,该方法使用机载光检测和测距(激光)数据以及航空影像来创建数字地形模型(DTM)和提取建筑物物体。从激光雷达数据创建DTM的过程需要这项研究中的四个步骤:预处理,分割,地面点提取和优化。在预处理步骤中,原始数据被转换为栅格数据。对于分割,我们提出了一种新的平均平面滤波器(MPF),该滤波器使用3×3内核将激光雷达数据分为平面和非平面表面。为了提取地面点,使用了一种在森林区域中提取其他地面点的新方法,从而提高了DTM的准确性。通过重复比较临时DTM和数字表面模型,优化过程进一步提高了DTM的准确性。生成DTM后,将通过提议的三步过程来提取建筑对象:高物体的检测,林区的清除和小区域的清除。使用高度阈值从归一化的数字表面模型中提取高物体。为了从高物体中去除森林区域,在监督分类中使用了来自激光雷达数据的航拍图像和标准化数字表面模型。最后,基于区域的滤波器消除了诸如噪声之类的小区域,从而提取了建筑对象。为了评估建议的方法,我们将此方法和其他三种方法应用于不同环境中的五个站点。实验表明,与现场参考数据相比,该方法比其他三种方法的准确性显着提高。

著录项

  • 来源
    《International journal of remote sensing》 |2013年第8期|2947-2968|共22页
  • 作者单位

    Department of Civil and Environmental Engineering, Seoul National University, Seoul 151-742,South Korea;

    Department of Advanced Technology Fusion, Konkuk University, Seoul 143-701,South Korea;

    Department of Civil and Environmental Engineering, Seoul National University, Seoul 151-742,South Korea;

    Department of Civil and Environmental Engineering, Seoul National University, Seoul 151-742,South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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