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Urban 3D Challenge: Building Footprint Detection Using Orthorectified Imagery and Digital Surface Models from Commercial Satellites

机译:城市3D挑战:使用来自商业卫星的正射影像和数字表面模型检测建筑足迹

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One challenging problem in many remote sensing applications is identifying building footprints in 2D and/or 3D imagery. Existing solutions to this problem use a variety of sensing modalities as input. Recent public challenges have yielded high quality building footprint detection algorithms using high-resolution 2D and 3D imaging modalities as input. However, performance of many of these algorithms is typically degraded as the fidelity and post spacing of the input imagery is reduced. Other challenges use lower resolution 2D satellite imagery alone. The United States Special Operations Command (USSOCOM) sponsored a public prize challenge aimed at identifying building footprints using 2D RGB orthorectified imagery and coincident 3D Digital Surface Models (DSMs) created from commercial satellite imagery. The top 6 winning solutions have been made publicly available as open source software. This paper summarizes the public challenge and provides results and data analysis. In addition, we provide lessons learned and hope to encourage additional research by publicly releasing the benchmark dataset to the community.
机译:在许多遥感应用中,一个具有挑战性的问题是在2D和/或3D图像中识别建筑物的占地面积。针对该问题的现有解决方案使用多种感测模态作为输入。最近的公共挑战已经产生了使用高分辨率2D和3D成像模态作为输入的高质量建筑足迹检测算法。但是,由于降低了输入图像的保真度和后期间距,许多这些算法的性能通常会下降。其他挑战仅使用较低分辨率的2D卫星图像。美国特种作战司令部(USSOCOM)发起了一项公共奖项挑战赛,目的是使用2D RGB正交校正图像和从商业卫星图像创建的重合3D数字表面模型(DSM)来识别建筑物的占地面积。排名前6位的获奖解决方案已作为开源软件公开发布。本文总结了公共挑战,并提供了结果和数据分析。此外,我们提供了经验教训,并希望通过向社区公开发布基准数据集来鼓励其他研究。

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