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Learning Geo-Temporal Image Features

16 September 2019
Menghua Zhai
Tawfiq Salem
Connor Greenwell
Scott Workman
Robert Pless
Nathan Jacobs
    3DH
ArXiv (abs)PDFHTML
Abstract

We propose to implicitly learn to extract geo-temporal image features, which are mid-level features related to when and where an image was captured, by explicitly optimizing for a set of location and time estimation tasks. To train our method, we take advantage of a large image dataset, captured by outdoor webcams and cell phones. The only form of supervision we provide are the known capture time and location of each image. We find that our approach learns features that are related to natural appearance changes in outdoor scenes. Additionally, we demonstrate the application of these geo-temporal features to time and location estimation.

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