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      Multi-Output Artificial Neural Network for Storm Surge Prediction in North Carolina

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          Abstract

          During hurricane seasons, emergency managers and other decision makers need accurate and `on-time' information on potential storm surge impacts. Fully dynamical computer models, such as the ADCIRC tide, storm surge, and wind-wave model take several hours to complete a forecast when configured at high spatial resolution. Additionally, statically meaningful ensembles of high-resolution models (needed for uncertainty estimation) cannot easily be computed in near real-time. This paper discusses an artificial neural network model for storm surge prediction in North Carolina. The network model provides fast, real-time storm surge estimates at coastal locations in North Carolina. The paper studies the performance of the neural network model vs. other models on synthetic and real hurricane data.

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          Author and article information

          Journal
          2016-09-23
          Article
          1609.07378
          cc0138dd-39c7-4bec-ad35-cf2d9cbbb774

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          cs.NE physics.ao-ph stat.AP

          Applications,Atmospheric, Oceanic and Environmental physics,Neural & Evolutionary computing

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