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APPLICATION OF SWARM INTELLIGENCE FOR LANDSLIDE SUSCEPTIBILITY MODELING FROM GEOSPATIAL DATA FUSION

机译:种群智能在地理空间数据融合中的滑坡敏感性建模中的应用

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This study utilizes and explores the feasibility and application of swarm intelligence for landslide susceptibility modeling based on collected inventory of rainfall-induced shallow landslide events. Eleven geospatial factors are considered, including topographic, vegetative, environmental, geological and man-made information. Landslide inventory and factors are overlapped to obtain the training data for modeling (classification) and verification. Experimental results indicate that swarm intelligence algorithms can provide plausible results for landslide susceptibility modeling, comparing with conventional landslide detection and prediction methods.
机译:本研究利用和探讨了基于降雨库存的浅层滑坡事件的收集库存的滑坡敏感性建模的可行性和应用。考虑了11个地理空间因素,包括地形,植物,环境,地质和人造信息。 Landslide库存和因子重叠以获得建模(分类)和验证的培训数据。实验结果表明,与常规滑坡检测和预测方法相比,群体智能算法可以为滑坡易感性建模提供合理的结果。

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