Gis and fuzzy logic approach for forest fire risk modeling in the Cajamarca region, Peru

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Forest fires are a potential threat to life, as they contribute to reducing forest areas, impact on the services we expect from ecosystems, the health of the inhabitants is affected by smoke and the economic costs for the recovery of affected areas is high. The objective of the study is to apply fuz...

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Detalles Bibliográficos
Autor: Ocaña Zúñiga,Candy Lisbeth
Formato: artículo
Fecha de Publicación:2023
Institución:Universidad Nacional de Jaén
Repositorio:UNJ-Institucional
Lenguaje:inglés
OAI Identifier:oai:repositorio.unj.edu.pe:UNJ/740
Enlace del recurso:http://repositorio.unj.edu.pe/handle/UNJ/740
Nivel de acceso:acceso abierto
Materia:forest fires risk
fuzzy logic
membership function
multi-criteria analysis
spatial modeling
vulnerability
https://purl.org/pe-repo/ocde/ford#4.01.02
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dc.title.es_ES.fl_str_mv Gis and fuzzy logic approach for forest fire risk modeling in the Cajamarca region, Peru
title Gis and fuzzy logic approach for forest fire risk modeling in the Cajamarca region, Peru
spellingShingle Gis and fuzzy logic approach for forest fire risk modeling in the Cajamarca region, Peru
Ocaña Zúñiga,Candy Lisbeth
forest fires risk
fuzzy logic
membership function
multi-criteria analysis
spatial modeling
vulnerability
https://purl.org/pe-repo/ocde/ford#4.01.02
title_short Gis and fuzzy logic approach for forest fire risk modeling in the Cajamarca region, Peru
title_full Gis and fuzzy logic approach for forest fire risk modeling in the Cajamarca region, Peru
title_fullStr Gis and fuzzy logic approach for forest fire risk modeling in the Cajamarca region, Peru
title_full_unstemmed Gis and fuzzy logic approach for forest fire risk modeling in the Cajamarca region, Peru
title_sort Gis and fuzzy logic approach for forest fire risk modeling in the Cajamarca region, Peru
author Ocaña Zúñiga,Candy Lisbeth
author_facet Ocaña Zúñiga,Candy Lisbeth
author_role author
dc.contributor.author.fl_str_mv Ocaña Zúñiga,Candy Lisbeth
dc.subject.es_ES.fl_str_mv forest fires risk
fuzzy logic
membership function
multi-criteria analysis
spatial modeling
vulnerability
topic forest fires risk
fuzzy logic
membership function
multi-criteria analysis
spatial modeling
vulnerability
https://purl.org/pe-repo/ocde/ford#4.01.02
dc.subject.ocde.es_ES.fl_str_mv https://purl.org/pe-repo/ocde/ford#4.01.02
description Forest fires are a potential threat to life, as they contribute to reducing forest areas, impact on the services we expect from ecosystems, the health of the inhabitants is affected by smoke and the economic costs for the recovery of affected areas is high. The objective of the study is to apply fuzzy logic to model the risk of forest fires in the Cajamarca-Peru region, incorporating variables that represent biological, topographic, socioeconomic, and meteorological factors. The analysis was based on the acquisition, editing and rasterization of the database, application of fuzzy membership functions and image fuzzification, fuzzy superposition and spatial reclassification of forest fire risk. The results obtained show that 71.68% of the area is under very low or medium forest fire risk. However, 28.32% of the study area has a high to very high fire risk, which makes the occurrence of fires susceptible to the lack of rain and water in the soil. It was found that biological, topographic, and socioeconomic factors with their respective variables are directly influenced by meteorological factor variables such as temperature, rainfall and water availability. Fuzzy logic offered flexibility in modeling wildfire risk in the region, proving to be a useful tool for predicting and mapping wildfire risk.
publishDate 2023
dc.date.accessioned.none.fl_str_mv 2024-10-09T04:11:18Z
dc.date.available.none.fl_str_mv 2024-10-09T04:11:18Z
dc.date.issued.fl_str_mv 2023-06-03
dc.type.es_ES.fl_str_mv info:eu-repo/semantics/article
dc.type.version.es_ES.fl_str_mv info:eu-repo/semantics/publishedVersion
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dc.identifier.uri.none.fl_str_mv http://repositorio.unj.edu.pe/handle/UNJ/740
dc.identifier.doi.es_ES.fl_str_mv 10.5267/j.dsl.2023.1.002
url http://repositorio.unj.edu.pe/handle/UNJ/740
identifier_str_mv 10.5267/j.dsl.2023.1.002
dc.language.iso.en_US.fl_str_mv eng
language eng
dc.relation.ispartof.es_ES.fl_str_mv Management Science Letters
Management Science Letters
Management Science Letters
Management Science Letters
dc.rights.es_ES.fl_str_mv info:eu-repo/semantics/openAccess
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eu_rights_str_mv openAccess
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dc.format.es_ES.fl_str_mv application/pdf
dc.publisher.es_ES.fl_str_mv Growing Science
dc.publisher.country.es_ES.fl_str_mv CA
dc.source.es_ES.fl_str_mv Universidad Nacional de Jaén||Repositorio Institucional - UNJ
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spelling Ocaña Zúñiga,Candy Lisbeth2024-10-09T04:11:18Z2024-10-09T04:11:18Z2023-06-03http://repositorio.unj.edu.pe/handle/UNJ/74010.5267/j.dsl.2023.1.002Forest fires are a potential threat to life, as they contribute to reducing forest areas, impact on the services we expect from ecosystems, the health of the inhabitants is affected by smoke and the economic costs for the recovery of affected areas is high. The objective of the study is to apply fuzzy logic to model the risk of forest fires in the Cajamarca-Peru region, incorporating variables that represent biological, topographic, socioeconomic, and meteorological factors. The analysis was based on the acquisition, editing and rasterization of the database, application of fuzzy membership functions and image fuzzification, fuzzy superposition and spatial reclassification of forest fire risk. The results obtained show that 71.68% of the area is under very low or medium forest fire risk. However, 28.32% of the study area has a high to very high fire risk, which makes the occurrence of fires susceptible to the lack of rain and water in the soil. It was found that biological, topographic, and socioeconomic factors with their respective variables are directly influenced by meteorological factor variables such as temperature, rainfall and water availability. Fuzzy logic offered flexibility in modeling wildfire risk in the region, proving to be a useful tool for predicting and mapping wildfire risk.application/pdfengGrowing ScienceCAManagement Science LettersManagement Science LettersManagement Science LettersManagement Science Lettersinfo:eu-repo/semantics/openAccesshttp://creativecommons.org/licenses/by/3.0/Universidad Nacional de Jaén||Repositorio Institucional - UNJreponame:UNJ-Institucionalinstname:Universidad Nacional de Jaéninstacron:UNJforest fires riskfuzzy logicmembership functionmulti-criteria analysisspatial modelingvulnerabilityhttps://purl.org/pe-repo/ocde/ford#4.01.02Gis and fuzzy logic approach for forest fire risk modeling in the Cajamarca region, Peruinfo:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersion44798819ORIGINALDeclaración Jurada de Acceso a la Información_5_INCENDIOS.pdfDeclaración Jurada de Acceso a la Información_5_INCENDIOS.pdfapplication/pdf109155http://repositorio.unj.edu.pe/bitstream/UNJ/740/1/Declaraci%c3%b3n%20Jurada%20de%20Acceso%20a%20la%20Informaci%c3%b3n_5_INCENDIOS.pdf8174db372eadd0c2c683b6c58a612704MD51LICENSElicense.txtlicense.txttext/plain; charset=utf-81748http://repositorio.unj.edu.pe/bitstream/UNJ/740/2/license.txt8a4605be74aa9ea9d79846c1fba20a33MD52UNJ/740oai:repositorio.unj.edu.pe:UNJ/7402025-01-02 15:42:39.632Repositorio UNJrepositorio@unj.edu.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