Abstract:We study an important, yet largely unexplored problem of largescale cross-modal visual localization by matching ground RGB images to a geo-referenced aerial LIDAR 3D point cloud (rendered as depth images). Prior works were demonstrated on small datasets and did not lend themselves to scaling up for large-scale applications. To enable large-scale evaluation, we introduce a new dataset containing over 550 pairs (covering 143 2 area) of RGB and aerial LIDAR depth images. We propose a novel joint embedding based m… Show more
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