Dataset of 'MODIS FIRMS and Maximum entropy method-based forest fire prediction mapping of Sikkim Himalaya.'
收藏DataCite Commons2020-08-29 更新2024-07-28 收录
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https://figshare.com/articles/dataset/Dataset_of_MODIS_FIRMS_and_Maximum_entropy_method-based_forest_fire_prediction_mapping_of_Sikkim_Himalaya_/12894149/1
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Globally incidents of forest fire events are in the rise due to human encroachment into wilderness and climate change. Likewise, Sikkim suffers seasonal instances of frequent forest fire during the dry winter months. To address this issue, a GIS-aided and MaxEnt machine learning-based forest fire prediction map has been prepared using forest fire inventory database and maps of environmental features. The study indicates that amongst the environmental features, population density and proximity to roads are the major determinants of the forest fire. This indicates the role of human activities on the incidences of a forest fire. Model validation criteria like ROC curve, correlation coefficient and Cohen’s Kappa show a good predictive capability (AUC = 0.95, COR = 0.78, κ = 0.78). The outcomes of this study in the form of a forest fire prediction map can aid the stakeholders of the forest in taking informed mitigation measures.
提供机构:
figshare
创建时间:
2020-08-29



