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Erschienen in: Bulletin of Engineering Geology and the Environment 8/2023

01.08.2023 | Original Paper

Application of novel ensemble models to improve landslide susceptibility mapping reliability

verfasst von: Zhong ling Tong, Qing tao Guan, Alireza Arabameri, Marco Loche, Gianvito Scaringi

Erschienen in: Bulletin of Engineering Geology and the Environment | Ausgabe 8/2023

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Abstract

Most landslides in the Eastern Golestan province in Iran occur in the Doji watershed. Their number, however, lies at the lower limit for reliable statistical analyses. By selecting a statistical sample in an area with rather homogeneous conditions (thereby reducing the number of meaningful covariates), significant insights can nevertheless be obtained. We relied on an inventory of 145 landslides which discerns between types of movement and implemented six machine learning algorithms (Decorate, DE-REPTree, Random Subspace, RS-REPTree, Dagging, and DA-REPTree) to produce landslide susceptibility maps. This allowed us to evaluate the relative importance and the effect of covariates in the models and identify factors that are consistently associated with the presence of landslides. Our results demonstrate that, even for a small landslide inventory, reliable susceptibility maps can be produced for homogeneous landscapes. We discuss that our approach could be used to assess the reliability of statistical approaches at small scales, where a distinctive trigger is lacking.

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Metadaten
Titel
Application of novel ensemble models to improve landslide susceptibility mapping reliability
verfasst von
Zhong ling Tong
Qing tao Guan
Alireza Arabameri
Marco Loche
Gianvito Scaringi
Publikationsdatum
01.08.2023
Verlag
Springer Berlin Heidelberg
Erschienen in
Bulletin of Engineering Geology and the Environment / Ausgabe 8/2023
Print ISSN: 1435-9529
Elektronische ISSN: 1435-9537
DOI
https://doi.org/10.1007/s10064-023-03328-8

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