Ubiquitous geo-sensing for context-aware analysis: exploring relationships between environmental and human dynamics.

Sensors (Basel)

Doctoral College Geographic Information Science, University of Salzburg, Schillerstrasse 30, 5020 Salzburg, Austria.

Published: February 2013

AI Article Synopsis

  • Ubiquitous geo-sensing allows for context-aware analyses that examine the interplay between physical and social phenomena, but such studies are still underrepresented in scientific literature.
  • The research analyzed human behavior in relation to weather by correlating mobile phone data (indicating human activity) with weather data from Udine, Italy, using advanced statistical methods.
  • The findings revealed patterns that differentiate between normal and adverse weather conditions, and illustrated how these conditions affect mobile network activity, providing new insights and raising further research questions about the relationship between weather and human dynamics.

Article Abstract

Ubiquitous geo-sensing enables context-aware analyses of physical and social phenomena, i.e., analyzing one phenomenon in the context of another. Although such context-aware analysis can potentially enable a more holistic understanding of spatio-temporal processes, it is rarely documented in the scientific literature yet. In this paper we analyzed the collective human behavior in the context of the weather. We therefore explored the complex relationships between these two spatio-temporal phenomena to provide novel insights into the dynamics of urban systems. Aggregated mobile phone data, which served as a proxy for collective human behavior, was linked with the weather data from climate stations in the case study area, the city of Udine, Northern Italy. To identify and characterize potential patterns within the weather-human relationships, we developed a hybrid approach which integrates several spatio-temporal statistical analysis methods. Thereby we show that explanatory factor analysis, when applied to a number of meteorological variables, can be used to differentiate between normal and adverse weather conditions. Further, we measured the strength of the relationship between the 'global' adverse weather conditions and the spatially explicit effective variations in user-generated mobile network traffic for three distinct periods using the Maximal Information Coefficient (MIC). The analyses result in three spatially referenced maps of MICs which reveal interesting insights into collective human dynamics in the context of weather, but also initiate several new scientific challenges.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3444129PMC
http://dx.doi.org/10.3390/s120709800DOI Listing

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