数字农科院2.0

An Ensemble Learning Model Considering Multiple Spatial Proximities and Its Application in the Study of Dust Storm Source Area Susceptibility on the Mongolian Plateau

文献类型: 外文期刊

作者: 李明玥;;都瓦拉;;玉山;;洪志敏;;Avirmed Dashtseren;;张道婷

关键词: Dust storm; ensemble model; dust storm source area; Mongolian Plateau; spatial heterogeneity; spatial proximity.

期刊名称: IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing

ISSN: 1939-1404

年卷期: 2025 年

页码:

收录情况: SCIE(2025版) ; ; EI(2025版)

摘要: The Mongolian Plateau is one of the primary sources of dust storms globally, and these storms significantly impact the climate, ecology, and human health in East Asia and beyond. Accurately identifying the source areas of dust storms is crucial for improving disaster prevention, mitigation, and environmental governance. This article proposes an innovative geospatial heterogeneous ensemble learning model (sp-GSH_EL) that incorporates multiple spatial proximity measures. By combining Euclidean distance with great-circle distance, this model effectively integrates geographically weighted regression, geographically optimal similarity (GOS), and random forest (RF) models, taking into account spatial heterogeneity, global similarity, and nonlinear relationships. Using dust storm occurrence data from the Mongolian Plateau between 2000 and 2021, the study introduces a novel method for identifying dust storm sources by combining aerosol optical depth (AOD) and dust storm occurrence data. By setting an AOD threshold and combining the hourly change rate of AOD, the model accurately captures the dynamic changes of dust source points. These source and nonsource points are then used as training samples for dynamic identification of the susceptibility of dust storm source areas in the Mongolian Plateau. The results show that the overall accuracy of the sp-GSH_EL model was 0.941, with a precision of 0.929, recall rate of 0.954, F1–score of 0.941, MCC of 0.883, and AUC of 0.983, all outperforming traditional models. The study highlights that temperature, snow depth, and wind speed are key factors influencing dust storm source areas in the Mongolian Plateau. In addition, it was found that the main source areas of dust storms are located in the Gobi Desert and arid steppe regions in the central and southern parts of the Plateau, with a significant expansion of source areas between 2005 and 2010. The total area of high-risk and very high-risk zones increased from 3.4% to 9.9% .

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