Machine learning in earthquake- and typhoon-triggered landslide susceptibility mapping and critical factor identification

被引:27
作者
Ali, Muhammad Zeeshan [1 ]
Chu, Hone-Jay [1 ]
Chen, Yi-Chin [2 ]
Ullah, Saleem [3 ]
机构
[1] Natl Cheng Kung Univ, Tainan, Taiwan
[2] Natl Changhua Univ Educ, Changhua, Taiwan
[3] Inst Space Technol, Islamabad, Pakistan
关键词
Landslide susceptibility mapping; Earthquake; Typhoon; decision tree; Logistic regression; 2005 KASHMIR EARTHQUAKE; LOGISTIC-REGRESSION; TRANSLATIONAL LANDSLIDE; 3; GORGES; EROSION; TAIWAN; SCALE; MECHANISM; MODEL; AREA;
D O I
10.1007/s12665-021-09510-z
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Landslides are one of the most devastating natural hazards worldwide. Landslides are triggered by different forces, such as earthquakes and typhoons, and have different characteristics in terms of distribution, influential factors, and process. The objectives of this study are to develop susceptibility maps using machine learning for two different triggering forces (earthquake and typhoon) and identify the main predisposing factors in mountainous regions of Pakistan and Taiwan. To compare different machine learning models for landslide susceptibility mapping, landslide susceptibility maps were developed using traditional (logistic regression) and modern techniques (decision tree). Results show that the spatial pattern of susceptibility map from logistic regression is continuously distributed, whereas that from the decision tree is crisp and sharp. From both models, consistent results show that the most important critical factors are completely different for both the earthquake- and typhoon-triggered landslides. For rainfall-triggered landslides in Taiwan, the most important factor of landslide susceptibility is the distance to the rivers, whereas, for earthquake-triggered landslides in Pakistan, the most important one is geological formations. Moreover, landslide susceptibility maps show that earthquake-triggered landslides tend to occur at the Muzaffarabad Formation, whereas rainstorm-induced landslides aggregate in the slope toe along the river.
引用
收藏
页数:21
相关论文
共 65 条
[31]   Assessment of the effects of training data selection on the landslide susceptibility mapping: a comparison between support vector machine (SVM), logistic regression (LR) and artificial neural networks (ANN) [J].
Kalantar, Bahareh ;
Pradhan, Biswajeet ;
Naghibi, Seyed Amir ;
Motevalli, Alireza ;
Mansor, Shattri .
GEOMATICS NATURAL HAZARDS & RISK, 2018, 9 (01) :49-69
[32]   GIS-based landslide susceptibility mapping for the 2005 Kashmir earthquake region [J].
Kamp, Ulrich ;
Growley, Benjamin J. ;
Khattak, Ghazanfar A. ;
Owen, Lewis A. .
GEOMORPHOLOGY, 2008, 101 (04) :631-642
[33]   GIS based landslide susceptibility mapping of northern areas of Pakistan, a case study of Shigar and Shyok Basins [J].
Kanwal, Shamsa ;
Atif, Salman ;
Shafiq, Muhammad .
GEOMATICS NATURAL HAZARDS & RISK, 2017, 8 (02) :348-366
[34]   Selecting optimal conditioning factors in shallow translational landslide susceptibility mapping using genetic algorithm [J].
Kavzoglu, Taskin ;
Sahin, Emrehan Kutlug ;
Colkesen, Ismail .
ENGINEERING GEOLOGY, 2015, 192 :101-112
[35]   Evolution of earthquake-triggered landslides in the Kashmir Himalaya, northern Pakistan [J].
Khattak, Ghazanfar A. ;
Owen, Lewis A. ;
Kamp, Ulrich ;
Harp, Edwin L. .
GEOMORPHOLOGY, 2010, 115 (1-2) :102-108
[36]   Rock-type control on erosion-induced uplift, eastern Swiss Alps [J].
Korup, Oliver ;
Schlunegger, Fritz .
EARTH AND PLANETARY SCIENCE LETTERS, 2009, 278 (3-4) :278-285
[37]   Landslide erosion controlled by hillslope material [J].
Larsen, Isaac J. ;
Montgomery, David R. ;
Korup, Oliver .
NATURE GEOSCIENCE, 2010, 3 (04) :247-251
[38]   Landslide Susceptibility Evaluation Using Hybrid Integration of Evidential Belief Function and Machine Learning Techniques [J].
Li, Yang ;
Chen, Wei .
WATER, 2020, 12 (01)
[39]   Preparing a landslide and shadow inventory map from high-spatial-resolution imagery facilitated by an expert system [J].
Liu, Cheng-Chien .
JOURNAL OF APPLIED REMOTE SENSING, 2015, 9
[40]   Topographic site effects and the location of earthquake induced landslides [J].
Meunier, Patrick ;
Hovius, Niels ;
Haines, John Allan .
EARTH AND PLANETARY SCIENCE LETTERS, 2008, 275 (3-4) :221-232