New Hybrids of ANFIS with Several Optimization Algorithms for Flood Susceptibility Modeling

被引:198
作者
Dieu Tien Bui [1 ,2 ]
Khosravi, Khabat [3 ]
Li, Shaojun [4 ]
Shahabi, Himan [5 ]
Panahi, Mahdi [6 ]
Singh, Vijay P. [7 ,8 ]
Chapi, Kamran [9 ]
Shirzadi, Ataollah [9 ]
Panahi, Somayeh [6 ]
Chen, Wei [10 ]
Bin Ahmad, Baharin [11 ]
机构
[1] Ton Duc Thang Univ, Geog Informat Sci Res Grp, Ho Chi Minh City, Vietnam
[2] Ton Duc Thang Univ, Fac Environm & Labour Safety, Ho Chi Minh City, Vietnam
[3] Sari Agr Sci & Nat Resources Univ, Fac Nat Resources, Dept Watershed Management Engn, Sari 4818168984, Iran
[4] Chinese Acad Sci, Inst Rock & Soil Mech, State Key Lab Geomech & Geotech Engn, Wuhan 430071, Hubei, Peoples R China
[5] Univ Kurdistan, Fac Nat Resources, Dept Geomorphol, Sanandaj 6617715175, Iran
[6] Islamic Azad Univ, North Tehran Branch, Young Researchers & Elites Club, Tehran 19585466, Iran
[7] Texas A&M Univ, Dept Biol & Agr Engn, College Stn, TX 77843 USA
[8] Texas A&M Univ, Zachry Dept Civil Engn, College Stn, TX 77843 USA
[9] Univ Kurdistan, Fac Nat Resources, Dept Rangeland & Watershed Management, Sanandaj 6617715175, Iran
[10] Xian Univ Sci & Technol, Coll Geol & Environm, Xian 710054, Shaanxi, Peoples R China
[11] Univ Teknol Malaysia, Fac Geoinformat & Real Estate, Dept Geoinformat, Skudai 81310, Malaysia
基金
美国国家科学基金会;
关键词
flood susceptibility modeling; ANFIS; cultural algorithm; bees algorithm; invasive weed optimization; Haraz watershed; ADAPTIVE NEURO-FUZZY; INVASIVE WEED OPTIMIZATION; SUPPORT VECTOR MACHINE; WEIGHTS-OF-EVIDENCE; SPATIAL PREDICTION; INFERENCE SYSTEM; MULTICRITERIA DECISION; LOGISTIC-REGRESSION; STATISTICAL-MODELS; GENETIC ALGORITHM;
D O I
10.3390/w10091210
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study presents three new hybrid artificial intelligence optimization modelsnamely, adaptive neuro-fuzzy inference system (ANFIS) with cultural (ANFIS-CA), bees (ANFIS-BA), and invasive weed optimization (ANFIS-IWO) algorithmsfor flood susceptibility mapping (FSM) in the Haraz watershed, Iran. Ten continuous and categorical flood conditioning factors were chosen based on the 201 flood locations, including topographic wetness index (TWI), river density, stream power index (SPI), curvature, distance from river, lithology, elevation, ground slope, land use, and rainfall. The step-wise weight assessment ratio analysis (SWARA) model was adopted for the assessment of relationship between flood locations and conditioning factors. The ANFIS model, based on SWARA weights, was employed for providing FSMs with three optimization models to enhance the accuracy of prediction. To evaluate the model performance and prediction capability, root-mean-square error (RMSE) and receiver operating characteristic (ROC) curve (area under the ROC (AUROC)) were used. Results showed that ANFIS-IWO with lower RMSE (0.359) had a better performance, while ANFIS-BA with higher AUROC (94.4%) showed a better prediction capability, followed by ANFIS0-IWO (0.939) and ANFIS-CA (0.921). These models can be suggested for FSM in similar climatic and physiographic areas for developing measures to mitigate flood damages and to sustainably manage floodplains.
引用
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页数:28
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