Dataset of Pathloss and ToA Radio Maps With Localization Application

November 18, 2022 Β· Declared Dead Β· πŸ› arXiv.org

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Authors Γ‡ağkan Yapar, Ron Levie, Gitta Kutyniok, Giuseppe Caire arXiv ID 2212.11777 Category cs.NI: Networking & Internet Cross-listed cs.LG, eess.SP Citations 54 Venue arXiv.org Last Checked 5 months ago
Abstract
In this article, we present a collection of radio map datasets in dense urban setting, which we generated and made publicly available. The datasets include simulated pathloss/received signal strength (RSS) and time of arrival (ToA) radio maps over a large collection of realistic dense urban setting in real city maps. The two main applications of the presented dataset are 1) learning methods that predict the pathloss from input city maps (namely, deep learning-based simulations), and, 2) wireless localization. The fact that the RSS and ToA maps are computed by the same simulations over the same city maps allows for a fair comparison of the RSS and ToA-based localization methods.
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