2017
DOI: 10.5194/gmd-10-3391-2017
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A Bayesian framework based on a Gaussian mixture model and radial-basis-function Fisher discriminant analysis (BayGmmKda V1.1) for spatial prediction of floods

Abstract: Abstract. In this study, a probabilistic model, named as BayGmmKda, is proposed for flood susceptibility assessment in a study area in central Vietnam. The new model is a Bayesian framework constructed by a combination of a Gaussian mixture model (GMM), radial-basis-function Fisher discriminant analysis (RBFDA), and a geographic information system (GIS) database. In the Bayesian framework, GMM is used for modeling the data distribution of flood-influencing factors in the GIS database, whereas RBFDA is utilized… Show more

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Cited by 67 publications
(24 citation statements)
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“…In this study, flood risk is assessed with the integration of various indicators of flood depth, population density, land use category, distance to rivers, poverty rate, and road density using AHP and spatial analysis techniques. Some previous studies in the field of flood risk analysis in Vietnam focused on the flood hazard assessments (for example, [17,39,78,79]). The present study used AHP method and spatial techniques to combine flood inundation map with flood exposure and vulnerability data to provide an integrated flood risk assessment map.…”
Section: Discussionmentioning
confidence: 99%
See 1 more Smart Citation
“…In this study, flood risk is assessed with the integration of various indicators of flood depth, population density, land use category, distance to rivers, poverty rate, and road density using AHP and spatial analysis techniques. Some previous studies in the field of flood risk analysis in Vietnam focused on the flood hazard assessments (for example, [17,39,78,79]). The present study used AHP method and spatial techniques to combine flood inundation map with flood exposure and vulnerability data to provide an integrated flood risk assessment map.…”
Section: Discussionmentioning
confidence: 99%
“…In this context, there have been many studies on flood risk analysis in Vietnam with a variety of approaches [17][18][19][20]. However, there is still a lack of studies on holistic flood risk assessments at local scales.…”
Section: Introductionmentioning
confidence: 99%
“…In the modelling, a knowledge of historical flash floods is important [24,48]. Thus, a flash flooding inventory map is essential.…”
Section: Flash Flood Inventorymentioning
confidence: 99%
“…Generation of the landslide maps using machine learning methods requires a knowledge of the historical landslide events [74,77]. Thus, the landslide inventory map is vital for determining the spatial links of historic earth slips with factors of geomorphological, hydrological, climatic factors, and anthropogenic activities [78,79].…”
Section: Landslide Inventorymentioning
confidence: 99%