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Spatial Modelling of Fire Drivers in Urban-Forest Ecosystems in China

  • Futao Guo
  • , Zhangwen Su
  • , Mulualem Tigabu
  • , Xiajie Yang
  • , Fangfang Lin
  • , Huiling Liang
  • , Guangyu Wang

Publikation: Bidrag till tidskriftArtikel i vetenskaplig tidskriftPeer review

Sammanfattning

Fires in urban-forest ecosystems (UFEs) are frequent with complex causes, posing a serious hazard to human lives and infrastructure. Thus, quantifying wildfire risks in UFEs and their spatial pattern is quintessential to develop appropriate fire management strategies. The aim of this study was to explore spatial ( geographically weighted logistic regression, GWLR) versus non-spatial ( logistic regression, LR) modelling approaches to determine the relationship between forest fire occurrence and driving factors in Yichun, a typical urban-forest ecosystem in China. As drivers of fire, 13 factors related to topographic, vegetation, infrastructure, meteorological and socio-economy were considered and regressed against fire occurrence data from 1980 to 2010. Results demonstrate the superiority of GWLR models over LR in terms of prediction accuracy, goodness of fit and model residuals. The GWLR model further captured the spatial variability of driving factors over a broad study area, and the fire likelihood maps identified areas with different zones of fire risk in the study area. In conclusion, the study demonstrates quantitatively and spatially the importance of accounting for local variation in drivers of fires, thereby improving fire management and prevention strategies. The findings also contribute to the emerged field of fire management and fire risk assessment in UFEs.
OriginalspråkEngelska
Artikelnummer180
Antal sidor18
TidskriftForests
Volym8
Nummer6
DOI
StatusPublicerad - 2017

FN:s SDG:er

Detta resultat bidrar till följande hållbara utvecklingsmål:

  1. SDG 11 – Hållbara städer och samhällen
    SDG 11 – Hållbara städer och samhällen
  2. SDG 15 – Ekosystem och biologisk mångfald
    SDG 15 – Ekosystem och biologisk mångfald

Nyckelord

  • spatial heterogeneity
  • geographically weighted logistic regression
  • fire risk
  • wildfire management

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