Publication | Open Access
IM2GPS: estimating geographic information from a single image
885
Citations
16
References
2008
Year
Unknown Venue
Scene AnalysisEngineeringLocalizationSocial SciencesGeospatial MappingImage AnalysisData SciencePattern RecognitionImage LocationGeographic InformationCartographyMachine VisionGeospatial DataGeographyComputer ScienceComputer VisionSpatial VerificationProbability DistributionScene UnderstandingMulti-view GeometryScene Modeling
Estimating geographic information from an image is an excellent, difficult high-level computer vision problem whose time has come. The emergence of vast amounts of geographically-calibrated image data is a great reason for computer vision to start looking globally - on the scale of the entire planet! In this paper, we propose a simple algorithm for estimating a distribution over geographic locations from a single image using a purely data-driven scene matching approach. For this task, we leverage a dataset of over 6 million GPS-tagged images from the Internet. We represent the estimated image location as a probability distribution over the Earthpsilas surface. We quantitatively evaluate our approach in several geolocation tasks and demonstrate encouraging performance (up to 30 times better than chance). We show that geolocation estimates can provide the basis for numerous other image understanding tasks such as population density estimation, land cover estimation or urban/rural classification.
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