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Author (up) López-Catalán, B.; Bañuls, V.A. pdf  doi
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  Title A Topic Modeling Approach for Extracting Key City Resilience Indicators Type Conference Article
  Year 2023 Publication Proceedings of the 20th International ISCRAM Conference Abbreviated Journal Iscram 2023  
  Volume Issue Pages 944-952  
  Keywords Urban Resilience; Machine Learning; Indicators; Topic Modeling; KCR  
  Abstract In the field of urban resilience, there is a great diversity of approaches to measuring the level of resilience in cities. This information is scattered among reports and academic articles. In this ongoing research paper, we explore the potential of Topic Modeling to analyze this information, in order to determine cluster indicators for a set of academic papers and resilience frameworks. These clusters are referred to as Key City Resilience Indicators (KCRI), which are used as reference to facilitate the measurement of urban resilience regardless of the context, including all the key dimensions required for cities to achieve resilience. Topic modeling outcomes can be used to generate indicators based on each topic or to automatically classify a new set of indicators in each of the established topics. These results can be applied to any resilience framework  
  Address Universidad Pablo de Olavide  
  Corporate Author Thesis  
  Publisher University of Nebraska at Omaha Place of Publication Omaha, USA Editor Jaziar Radianti; Ioannis Dokas; Nicolas Lalone; Deepak Khazanchi  
  Language English Summary Language Original Title  
  Series Editor Hosssein Baharmand Series Title Abbreviated Series Title  
  Series Volume Series Issue Edition 1  
  ISSN ISBN Medium  
  Track AI for Disaster Risk Management Expedition Conference  
  Notes http://dx.doi.org/10.59297/DTVH1466 Approved no  
  Call Number ISCRAM @ idladmin @ Serial 2578  
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