ISSN 1003-8035 CN 11-2852/P
    Ranke FANG, Yanhui LIU, Zhiquan HUANG. A review of the methods of regional landslide hazard assessment based on machine learning[J]. The Chinese Journal of Geological Hazard and Control, 2021, 32(4): 1-8. DOI: 10.16031/j.cnki.issn.1003-8035.2021.04-01
    Citation: Ranke FANG, Yanhui LIU, Zhiquan HUANG. A review of the methods of regional landslide hazard assessment based on machine learning[J]. The Chinese Journal of Geological Hazard and Control, 2021, 32(4): 1-8. DOI: 10.16031/j.cnki.issn.1003-8035.2021.04-01

    A review of the methods of regional landslide hazard assessment based on machine learning

    • The landslide disaster in China is widespread and serious. Regional landslide risk assessment has always been one of the most important contents of landslide disaster prevention and mitigation. In recent years, with the rapid development of big data and artificial intelligence technology, machine learning technology has gradually been widely used in landslide hazard assessment andachieved good results. Based on a large number of literatures, this paper systematically expounds the research status of landslide risk assessment methods based on machine learning technology. This paper reviews and analyzes the existing research results from three key links: evaluation factor selection and quantization normalization, data cleaning and sample set construction, model selection and training evaluation, and finally puts forward some suggestions on the development trend of machine learning landslide risk evaluation methods.
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