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contributor authorParkes, Brandon L.
contributor authorCloke, Hannah L.
contributor authorPappenberger, Florian
contributor authorNeal, Jeff
contributor authorDemeritt, David
date accessioned2017-06-09T16:41:15Z
date available2017-06-09T16:41:15Z
date copyright2013/08/01
date issued2013
identifier otherams-72228.pdf
identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4214208
description abstractlood simulation models and hazard maps are only as good as the underlying data against which they are calibrated and tested. However, extreme flood events are by definition rare, so the observational data of flood inundation extent are limited in both quality and quantity. The relative importance of these observational uncertainties has increased now that computing power and accurate lidar scans make it possible to run high-resolution 2D models to simulate floods in urban areas. However, the value of these simulations is limited by the uncertainty in the true extent of the flood. This paper addresses that challenge by analyzing a point dataset of maximum water extent from a flood event on the River Eden at Carlisle, United Kingdom, in January 2005. The observation dataset is based on a collection of wrack and water marks from two postevent surveys. A smoothing algorithm for identifying, quantifying, and reducing localized inconsistencies in the dataset is proposed and evaluated showing positive results. The proposed smoothing algorithm can be applied in order to improve flood inundation modeling assessment and the determination of risk zones on the floodplain.
publisherAmerican Meteorological Society
titleReducing Inconsistencies in Point Observations of Maximum Flood Inundation Level
typeJournal Paper
journal volume17
journal issue6
journal titleEarth Interactions
identifier doi10.1175/2012EI000475.1
journal fristpage1
journal lastpage27
treeEarth Interactions:;2013:;volume( 017 ):;issue: 006
contenttypeFulltext


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