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Processing of Extremely High-Resolution LiDAR and RGB Data: Outcome of the 2015 IEEE GRSS Data Fusion Contest–Part A: 2-D Contest

机译:超高分辨率LiDAR和RGB数据的处理:2015年IEEE GRSS数据融合竞赛的结果– A部分:二维竞赛

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In this paper, we discuss the scientific outcomes of the 2015 data fusion contest organized by the Image Analysis and Data Fusion Technical Committee (IADF TC) of the IEEE Geoscience and Remote Sensing Society (IEEE GRSS). As for previous years, the IADF TC organized a data fusion contest aiming at fostering new ideas and solutions for multisource studies. The 2015 edition of the contest proposed a multiresolution and multisensorial challenge involving extremely high-resolution RGB images and a three-dimensional (3-D) LiDAR point cloud. The competition was framed in two parallel tracks, considering 2-D and 3-D products, respectively. In this paper, we discuss the scientific results obtained by the winners of the 2-D contest, which studied either the complementarity of RGB and LiDAR with deep neural networks (winning team) or provided a comprehensive benchmarking evaluation of new classification strategies for extremely high-resolution multimodal data (runner-up team). The data and the previously undisclosed ground truth will remain available for the community and can be obtained at http://www.grss-ieee.org/community/technical-committees/data-fusion/2015-ieee-grss-data-fusion-contest/. The 3-D part of the contest is discussed in the Part-B paper [1].
机译:在本文中,我们讨论了由IEEE地质科学与遥感学会(IEEE GRSS)的图像分析和数据融合技术委员会(IADF TC)组织的2015年数据融合竞赛的科学成果。与往年一样,IADF TC组织了一次数据融合竞赛,旨在为多源研究培育新的思路和解决方案。 2015年竞赛的版本提出了多分辨率和多感官挑战,其中涉及超高分辨率RGB图像和三维(3-D)LiDAR点云。竞赛分为两个平行轨道进行,分别考虑了2-D和3-D产品。在本文中,我们讨论了2-D竞赛获胜者获得的科学结果,该研究结果是通过深度神经网络(获胜团队)研究了RGB和LiDAR的互补性,或者为极高的分类策略提供了全面的基准评估分辨率的多峰数据(预备队)。数据和以前未公开的地面事实将继续为社区所用,可以在http://www.grss-ieee.org/community/technical-committees/data-fusion/2015-ieee-grss-data-fusion中获得-比赛/。竞赛的3-D部分在B部分的论文[1]中进行了讨论。

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