Estimation of Static and Dynamic Urban Populations with Mobile Network Metadata

October 30, 2018 Β· Declared Dead Β· πŸ› IEEE Transactions on Mobile Computing

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Authors Ghazaleh Khodabandelou, Vincent Gauthier, Marco Fiore, Mounim El-Yacoubi arXiv ID 1810.12909 Category cs.NI: Networking & Internet Cross-listed cs.CY, cs.SI Citations 48 Venue IEEE Transactions on Mobile Computing Last Checked 6 months ago
Abstract
Communication-enabled devices routinely carried by individuals have become pervasive, opening unprecedented opportunities for collecting digital metadata about the mobility of large populations. In this paper, we propose a novel methodology for the estimation of people density at metropolitan scales, using subscriber presence metadata collected by a mobile operator. Our approach suits the estimation of static population densities, i.e., of the distribution of dwelling units per urban area contained in traditional censuses. More importantly, it enables the estimation of dynamic population densities, i.e., the time-varying distributions of people in a conurbation. By leveraging substantial real-world mobile network metadata and ground-truth information, we demonstrate that the accuracy of our solution is superior to that granted by state-of-the-art methods in practical heterogeneous urban scenarios.
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