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A Comparative Study of Kernel Logistic Regression, Radial Basis Function Classifier, Multinomial Naïve Bayes, and Logistic Model Tree for Flash Flood Susceptibility Mapping

Pham, Binh Thai (författare)
University of Transport Technology, Hanoi, Viet Nam
Phong, Tran Van (författare)
Institute of Geological Sciences, Vietnam Academy of Sciences and Technology, Dong da, Hanoi, Viet Nam
Nguyen, Huu Duy (författare)
Faculty of Geography, VNU University of Science, Hanoi, Viet Nam
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Qi, Chongchong (författare)
School of Resources and Safety Engineering, Central South University, Changsha, China
Al-Ansari, Nadhir, 1947- (författare)
Luleå tekniska universitet,Geoteknologi
Amini, Ata (författare)
Kurdistan Agricultural and Natural Resources Research and Education Center, AREEO, Sanandaj, Iran
Ho, Lanh Si (författare)
Institute of Research and Development, Duy Tan University, Da Nang, Vietnam
Tuyen, Tran Thi (författare)
Department of Resource and Environment Management, School of Agriculture and Resources, Vinh University, Vietnam
Yen, Hoang Phan Hai (författare)
Department of Geography, School of Social Education, Vinh University, Vietnam
Ly, Hai‐Bang (författare)
University of Transport Technology, Hanoi, Viet Nam
Prakash, Indra (författare)
Department of Science & Technology, Bhaskarcharya Institute for Space Applications and Geo-Informatics (BISAG), Government of Gujarat, Gandhinagar, India
Bui, Dieu Tien (författare)
Geographic Information System group, Department of Business and IT, University of South-Eastern Norway, Notodden, Norway
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 (creator_code:org_t)
2020-01-15
2020
Engelska.
Ingår i: Water. - Switzerland : MDPI. - 2073-4441. ; 12:1, s. 1-21
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
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  • Risk of flash floods is currently an important problem in many parts of Vietnam. In this study, we used four machine-learning methods, namely Kernel Logistic Regression (KLR), Radial Basis Function Classifier (RBFC), Multinomial Naïve Bayes (NBM), and Logistic Model Tree (LMT) to generate flash flood susceptibility maps at the minor part of Nghe An province of the Center region (Vietnam) where recurrent flood problems are being experienced. Performance of these four methods was evaluated to select the best method for flash flood susceptibility mapping. In the model studies, ten flash flood conditioning factors, namely soil, slope, curvature, river density, flow direction, distance from rivers, elevation, aspect, land use, and geology, were chosen based on topography and geo-environmental conditions of the site. For the validation of models, the area under Receiver Operating Characteristic (ROC), Area Under Curve (AUC), and various statistical indices were used. The results indicated that performance of all the models is good for generating flash flood susceptibility maps (AUC = 0.983–0.988). However, performance of LMT model is the best among the four methods (LMT: AUC = 0.988; KLR: AUC = 0.985; RBFC: AUC = 0.984; and NBM: AUC = 0.983). The present study would be useful for the construction of accurate flash flood susceptibility maps with the objectives of identifying flood-susceptible areas/zones for proper flash flood risk management.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Samhällsbyggnadsteknik -- Geoteknik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Civil Engineering -- Geotechnical Engineering (hsv//eng)

Nyckelord

flash flood
kernel logistic regression
radial basis function network
multinomial naïve
Soil Mechanics
Geoteknik

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