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A probabilistic model for real‐time flood warning based on deterministic flood inundation mapping
Authors:Jiun‐Huei Jang  Pao‐Shan Yu  Sen‐Hai Yeh  Jin‐Cheng Fu  Chen‐Jia Huang
Institution:1. National Science and Technology Center for Disaster Reduction, Taiwan, Republic of China;2. National Cheng Kung University, Tainan City, Taiwan, Republic of China
Abstract:Deterministic flood inundation mapping is valuable for the investigation of detailed flood depth and extent. However, when these data are used for real‐time flood warning, uncertainty arises while encountering the difficulties of timely response, message interpretation and performance evaluation that makes statistical analysis necessary. By incorporating deterministic flood inundation map outputs statistically by means of logistic regression, this paper presents a probabilistic real‐time flood warning model determining region‐based flood probability directly from rainfall, being efficient in computation, clear in message, and valid in physical meaning. The calibration and validation of the probabilistic model show a satisfactory overall correctness rate, with the hit rate far surpassing the false alarm rate in issuing flood warning for historical events. Further analyses show that the probabilistic model is effective in evaluating the level of uncertainty lying within flood warning which can be reduced by several techniques proposed in order to improve warning performance. Copyright © 2011 John Wiley & Sons, Ltd.
Keywords:inundation mapping  flood warning  logistic regression  decision support  uncertainty
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