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Multi-Modal and Multi-Temporal Data Fusion: Outcome of the 2012 GRSS Data Fusion Contest

机译:多模式和多时间数据融合:2012 GRSS数据融合竞赛的结果

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摘要

The 2012 Data Fusion Contest organized by the Data Fusion Technical Committee (DFTC) of the IEEE Geoscience and Remote Sensing Society (GRSS) aimed at investigating the potential use of very high spatial resolution (VHR) multi-modal/multi-temporal image fusion. Three different types of data sets, including spaceborne multi-spectral, spaceborne synthetic aperture radar (SAR), and airborne light detection and ranging (LiDAR) data collected over the downtown San Francisco area were distributed during the Contest. This paper highlights the three awarded research contributions which investigate (i) a new metric to assess urban density (UD) from multi-spectral and LiDAR data, (ii) simulation-based techniques to jointly use SAR and LiDAR data for image interpretation and change detection, and (iii) radiosity methods to improve surface reflectance retrievals of optical data in complex illumination environments. In particular, they demonstrate the usefulness of LiDAR data when fused with optical or SAR data. We believe these interesting investigations will stimulate further research in the related areas.
机译:<?Pub Dtl?>由IEEE地理科学与遥感学会(GRSS)的数据融合技术委员会(DFTC)组织的2012年数据融合竞赛,旨在调查超高空间分辨率(VHR)多模式/多时相图像融合。比赛期间分发了三种不同类型的数据集,包括星载多光谱,星载合成孔径雷达(SAR)以及在旧金山市区收集的机载光检测和测距(LiDAR)数据。本文重点介绍了三项获奖研究成果,它们研究了(i)一种用于从多光谱和LiDAR数据评估城市密度(UD)的新指标,(ii)基于仿真的技术,将SAR和LiDAR数据联合用于图像解释和变化检测;以及(iii)在复杂照明环境中改善光学数据的表面反射率检索的辐射度方法。特别是,它们证明了LiDAR数据与光学或SAR数据融合时的有用性。我们相信,这些有趣的研究将激发相关领域的进一步研究。

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