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THE ISPRS BENCHMARK ON URBAN OBJECT CLASSIFICATION AND 3D BUILDING RECONSTRUCTION

机译:城市对象分类和3D建筑重建的ISPRS基准

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For more than two decades, many efforts have been made to develop methods for extracting urban objects from data acquired by airborne sensors. In order to make the results of such algorithms more comparable, benchmarking data sets are of paramount importance. Such a data set, consisting of airborne image and laserscanner data, has been made available to the scientific community. Researchers were encouraged to submit results of urban object detection and 3D building reconstruction, which were evaluated based on reference data. This paper presents the outcomes of the evaluation for building detection, tree detection, and 3D building reconstruction. The results achieved by different methods are compared and analysed to identify promising strategies for automatic urban object extraction from current airborne sensor data, but also common problems of state-of-the-art methods.
机译:超过二十多年来,已经努力开发用于从机载传感器获取的数据中提取城市对象的方法。为了使这种算法的结果更加可比较,基准数据集是至关重要的。由空中图像和激光器数据组成的这种数据集已经为科学界提供。鼓励研究人员提交城市物体检测和3D建筑重建的结果,这些重建是根据参考数据评估的。本文介绍了建筑检测,树检测和3D建筑重建评估的结果。比较和分析了不同方法实现的结果,以确定自动城市对象提取的有希望的来自当前的空中传感器数据,还具有最先进的方法的常见问题。

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