Articles | Volume 23, issue 9
https://doi.org/10.5194/nhess-23-2937-2023
https://doi.org/10.5194/nhess-23-2937-2023
Research article
 | 
06 Sep 2023
Research article |  | 06 Sep 2023

Fire risk modeling: an integrated and data-driven approach applied to Sicily

Alba Marquez Torres, Giovanni Signorello, Sudeshna Kumar, Greta Adamo, Ferdinando Villa, and Stefano Balbi

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Interactive discussion

Status: closed

Comment types: AC – author | RC – referee | CC – community | EC – editor | CEC – chief editor | : Report abuse
  • RC1: 'Comment on egusphere-2023-138', Marj Tonini, 09 Mar 2023
    • AC1: 'Reply on RC1', Alba Marquez, 15 May 2023
  • RC2: 'Comment on egusphere-2023-138', Anonymous Referee #2, 27 Mar 2023
    • AC2: 'Reply on RC2', Alba Marquez, 15 May 2023

Peer review completion

AR: Author's response | RR: Referee report | ED: Editor decision | EF: Editorial file upload
ED: Reconsider after major revisions (further review by editor and referees) (16 May 2023) by Fang Li
AR by Alba Marquez on behalf of the Authors (06 Jun 2023)  Author's response   Author's tracked changes   Manuscript 
ED: Referee Nomination & Report Request started (11 Jun 2023) by Fang Li
RR by Marj Tonini (19 Jun 2023)
RR by Anonymous Referee #2 (07 Jul 2023)
ED: Publish subject to minor revisions (review by editor) (09 Jul 2023) by Fang Li
AR by Alba Marquez on behalf of the Authors (14 Jul 2023)  Author's response   Author's tracked changes   Manuscript 
ED: Publish as is (18 Jul 2023) by Fang Li
ED: Publish as is (19 Jul 2023) by Ricardo Trigo (Executive editor)
AR by Alba Marquez on behalf of the Authors (26 Jul 2023)  Manuscript 
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Short summary
Only by mapping fire risks can we manage forest and prevent fires under current and future climate conditions. We present a fire risk map based on k.LAB, artificial-intelligence-powered and open-source software integrating multidisciplinary knowledge in near real time. Through an easy-to-use web application, we model the hazard with 84 % accuracy for Sicily, a representative Mediterranean region. Fire risk analysis reveals 45 % of vulnerable areas face a high probability of danger in 2050.
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