遇见数据集

Dataset for: Predicting Anthropogenic Wildfire Occurrence Using Explainable Machine Learning Models: A Nationwide Case Study of South Korea

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NIAID Data Ecosystem2026-05-10 收录
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This repository contains the dataset used in the study: “Predicting Anthropogenic Wildfire Occurrence Using Explainable Machine Learning Models: A Nationwide Case Study of South Korea.” The dataset includes the final machine learning dataset (ML_fire_dataset.csv) and the geospatial wildfire occurrence dataset (fire_points_5186_public.gpkg) used for model training, validation, and spatial analysis. ML_fire_dataset.csv contains wildfire occurrence labels and all explanatory variables used in the machine learning models, including climatic, topographic, environmental, and human accessibility variables. fire_points_5186_public.gpkg contains the geospatial wildfire occurrence point data used to construct the modeling dataset. The coordinate reference system (CRS) is EPSG:5186 (Korea 2000 / Central Belt). All data necessary to reproduce the machine learning analysis and results presented in the manuscript are fully provided to ensure transparency and reproducibility.

创建时间:
2026-02-20
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