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AUTOMATIC BUILDING CHANGE DETECTION USING MULTI-TEMPORAL AIRBORNE LIDAR DATA

机译:使用多时间空气传播激光雷达数据自动建设变更检测

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The automatic detection of building changes is an essential process for urban area monitoring, urban planning, and database update. In this context, 3D information derived from multi-temporal airborne LiDAR scanning is one effective alternative. Despite several works in the literature, the separation of change areas in building and non-building remains a challenge. In this sense, it is proposed a new method for building change detection, having as the main contribution the use of height entropy concept to identify the building change areas. The experiments were performed considering multi-temporal airborne LiDAR data from 2012 and 2014, both with average density around 5 points/m2. Qualitative and quantitative analyses indicate that the proposed method is robust in building change detection, having the potential to identify small changes (larger than 20 m2). In general, the change detection method presented average completeness and correctness around 97% and 71%, respectively.
机译:建筑变革的自动检测是城市监测,城市规划和数据库更新的重要过程。在这种情况下,来自多时间空气传播激光扫描扫描的3D信息是一种有效的替代方案。尽管文学中有几种作品,但建筑和非建筑物的变化区域的分离仍然是一个挑战。从这个意义上讲,提出了一种建立改变检测的新方法,具有使用高度熵概念来识别建筑变化区域的主要贡献。考虑到2012年和2014年的多颞空气传播的LIDAR数据进行实验,平均密度约为5分/平方米。定性和定量分析表明,该方法在建筑物变化检测方面具有稳健性,具有识别较小的变化(大于20平方米)。通常,变化检测方法分别呈现平均完整性和正确性,分别为97%和71%。

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