2018
DOI: 10.3390/rs11010062
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A Hybrid GIS Multi-Criteria Decision-Making Method for Flood Susceptibility Mapping at Shangyou, China

Abstract: Floods are considered one of the most disastrous hazards all over the world and cause serious casualties and property damage. Therefore, the assessment and regionalization of flood disasters are becoming increasingly important and urgent. To predict the probability of a flood, an essential step is to map flood susceptibility. The main objective of this work is to investigate the use a novel hybrid technique by integrating multi-criteria decision analysis and geographic information system to evaluate flood susc… Show more

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Cited by 139 publications
(54 citation statements)
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“…There is a dearth of published research that combined GIS-based ANP model and RS to forecast flood susceptible zones in Perlis, Malaysia. Recent studies that adopted the ANP method have not incorporated remote sensing microwave images such as Radar Satellite (RADARSAT) into the analysis [10][11][12]. Moreover, Perlis is in the northern part of Malaysia that is regarded as the "rice bowl" of the country [13].…”
Section: Introductionmentioning
confidence: 99%
“…There is a dearth of published research that combined GIS-based ANP model and RS to forecast flood susceptible zones in Perlis, Malaysia. Recent studies that adopted the ANP method have not incorporated remote sensing microwave images such as Radar Satellite (RADARSAT) into the analysis [10][11][12]. Moreover, Perlis is in the northern part of Malaysia that is regarded as the "rice bowl" of the country [13].…”
Section: Introductionmentioning
confidence: 99%
“…The high importance of remote sensing is due to the fact that these techniques play an essential role in the creation of input datasets for machine learning models. This fact is highlighted also by Wang et al [36] who mentioned that the remote sensing images are a reliable source for flood inventory procedure.…”
Section: Introductionmentioning
confidence: 81%
“…Three multi-criteria decision-making (MCDM) analysis techniques (VIKOR, TOPSIS, and SAW), along with two machine-learning methods (NBT and NB), were tested for their ability to model flood susceptibility. Wang and others [61] investigated the use of a novel hybrid technique by integrating a multi-criteria decision analysis and geographic information system to evaluate flood susceptibility mapping (FSM) in a case study in Shangyou County, China.…”
Section: Introductionmentioning
confidence: 99%