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Original Articles

Landslide susceptibility assessment using three bivariate models considering the new topo-hydrological factor: HAND

ORCID Icon, , ORCID Icon &
Pages 1155-1185 | Received 02 Dec 2016, Accepted 22 May 2017, Published online: 14 Jun 2017
 

Abstract

The main objective of this study is to assess the relative contribution of the state-of-the-art topo-hydrological factor, known as height above the nearest drainage (HAND), to landslide susceptibility modellling using three novel statistical models: weights-of-evidence (WofE), index of entropy and certainty factor. In total, 12 landslide conditioning factors that affect the landslide incidence were used as input to the models in the Ziarat Watershed, Golestan Province, Iran. Landslide inventory was randomly divided into a ratio of 70:30 for training and validating the results of the models. The optimum combination of conditioning factors was identified using the principal components analysis (PCA) method. The results demonstrated that HAND is the defining factor among hydrological and topographical factors in the study area. Additionally, the WofE model had the highest prediction capability (AUPRC = 74.31%). Therefore, HAND was found to be a promising factor for landslide susceptibility mapping.

Acknowledgements

We are grateful to the Editor, Prof. Rundquist and the two anonymous referees for their useful insights which led to major enhancement of this manuscript’s quality.

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