Geo-social media as a proxy for hydrometeorological data for streamflow estimation and to improve flood monitoring

نویسندگان

  • Camilo Restrepo Estrada
  • Sidgley Camargo de Andrade
  • Narumi Abe
  • Maria Clara Fava
  • Eduardo Mario Mendiondo
  • João Porto de Albuquerque
چکیده

Floods are one of the most devastating types of worldwide disasters in terms of human, economic, and social losses. If authoritative data is scarce, or unavailable for some periods, other sources of information are required to improve streamflow estimation and early flood warnings. Georeferenced social media messages are increasingly being regarded as an alternative source of information for coping with flood risks. However, existing studies have mostly concentrated on the links between geo-social media activity and flooded areas. Thus, there is still a gap in research with regard to the use of social media as a proxy for rainfall-runoff estimations and flood forecasting. To address this, we propose using a transformation function that creates a proxy variable for rainfall by analysing geo-social media messages and rainfall measurements from authoritative sources, which are later incorporated within a hydrological model for streamflow estimation. We found that the combined use of official rainfall values with the social media proxy variable as input for the Probability Distributed Model (PDM), improved streamflow simulations for flood monitoring. The com∗Corresponding author Email addresses: [email protected] (Camilo Restrepo-Estrada), [email protected] (Sidgley Camargo de Andrade), [email protected] (Narumi Abe), [email protected] (Maria Clara Fava), [email protected] (Eduardo Mario Mendiondo), [email protected] (João Porto de Albuquerque) Preprint submitted to Computers & Geosciences October 25, 2017 M AN US CR IP T AC CE PT ED ACCEPTED MANUSCRIPT bination of authoritative sources and transformed geo-social media data during flood events achieved a 71% degree of accuracy and a 29% underestimation rate in a comparison made with real streamflow measurements. This is a significant improvement on the respective values of 39% and 58%, achieved when only authoritative data were used for the modelling. This result is clear evidence of the potential use of derived geo-social media data as a proxy for environmental variables for improving flood early-warning systems.

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عنوان ژورنال:
  • Computers & Geosciences

دوره 111  شماره 

صفحات  -

تاریخ انتشار 2018