A New Approach for the Stochastic Simulation of Regional Wave Climates Conditioned on Synoptic-Scale Meteorology

Pringle, J. and Stretch, D.D., 2019. A new approach for the stochastic simulation of regional wave climates conditioned on synoptic scale meteorology. Journal of Coastal Research, 35(6), 1331–1342. Coconut Creek (Florida), ISSN 0749-0208. Statistical modelling of wave climates is an important tool i...

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Published inJournal of coastal research Vol. 35; no. 6; pp. 1331 - 1342
Main Authors Pringle, Justin, Stretch, Derek D.
Format Journal Article
LanguageEnglish
Published Fort Lauderdale Coastal Education and Research Foundation 01.11.2019
Allen Press Publishing
Allen Press Inc
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ISSN0749-0208
1551-5036
DOI10.2112/JCOASTRES-D-18-00158.1

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Abstract Pringle, J. and Stretch, D.D., 2019. A new approach for the stochastic simulation of regional wave climates conditioned on synoptic scale meteorology. Journal of Coastal Research, 35(6), 1331–1342. Coconut Creek (Florida), ISSN 0749-0208. Statistical modelling of wave climates is an important tool in coastal and ocean engineering design and vulnerability assessments. Modern techniques of multivariate modelling that exploit copulas are now being developed and used for risk assessment applications in diverse fields ranging from finance to hydrology and coastal engineering. Many such statistical models do not directly exploit the physical links between events of interest, such as floods or extreme storm waves, and their fundamental drivers. On the other hand, process-based models that attempt to include those links are subject to modelling errors because of limited understanding of the processes or limitations, or both, in the available computational resources to adequately resolve those processes. This study introduces a new mixed approach to the stochastic simulation of wave climates that is conditioned on synoptic-scale meteorological circulation patterns (CPs) as the key drivers of waves. Copulas are used for the multivariate dependence structure in the model, and the CP occurrences are treated as a Markov chain. Simulated wave time series are shown to reproduce observed wave statistics from a case study site, including extremum statistics. The new techniques presented here should improve statistical modelling while retaining their simplicity and parsimony relative to full process-based models.
AbstractList Pringle, J. and Stretch, D.D., 2019. A new approach for the stochastic simulation of regional wave climates conditioned on synoptic scale meteorology. Journal of Coastal Research, 35(6), 1331–1342. Coconut Creek (Florida), ISSN 0749-0208. Statistical modelling of wave climates is an important tool in coastal and ocean engineering design and vulnerability assessments. Modern techniques of multivariate modelling that exploit copulas are now being developed and used for risk assessment applications in diverse fields ranging from finance to hydrology and coastal engineering. Many such statistical models do not directly exploit the physical links between events of interest, such as floods or extreme storm waves, and their fundamental drivers. On the other hand, process-based models that attempt to include those links are subject to modelling errors because of limited understanding of the processes or limitations, or both, in the available computational resources to adequately resolve those processes. This study introduces a new mixed approach to the stochastic simulation of wave climates that is conditioned on synoptic-scale meteorological circulation patterns (CPs) as the key drivers of waves. Copulas are used for the multivariate dependence structure in the model, and the CP occurrences are treated as a Markov chain. Simulated wave time series are shown to reproduce observed wave statistics from a case study site, including extremum statistics. The new techniques presented here should improve statistical modelling while retaining their simplicity and parsimony relative to full process-based models.
Statistical modelling of wave climates is an important tool in coastal and ocean engineering design and vulnerability assessments. Modern techniques of multivariate modelling that exploit copulas are now being developed and used for risk assessment applications in diverse fields ranging from finance to hydrology and coastal engineering. Many such statistical models do not directly exploit the physical links between events of interest, such as floods or extreme storm waves, and their fundamental drivers. On the other hand, process-based models that attempt to include those links are subject to modelling errors because of limited understanding of the processes or limitations, or both, in the available computational resources to adequately resolve those processes. This study introduces a new mixed approach to the stochastic simulation of wave climates that is conditioned on synoptic-scale meteorological circulation patterns (CPs) as the key drivers of waves. Copulas are used for the multivariate dependence structure in the model, and the CP occurrences are treated as a Markov chain. Simulated wave time series are shown to reproduce observed wave statistics from a case study site, including extremum statistics. The new techniques presented here should improve statistical modelling while retaining their simplicity and parsimony relative to full process-based models.
Author Pringle, Justin
Stretch, Derek D.
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CitedBy_id crossref_primary_10_1016_j_coastaleng_2022_104149
crossref_primary_10_1016_j_cageo_2021_104707
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Snippet Pringle, J. and Stretch, D.D., 2019. A new approach for the stochastic simulation of regional wave climates conditioned on synoptic scale meteorology. Journal...
Statistical modelling of wave climates is an important tool in coastal and ocean engineering design and vulnerability assessments. Modern techniques of...
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SubjectTerms Algorithms
Case studies
circulation patterns
Classification
Climate change
Coastal engineering
Coastal inlets
Coastal research
coastal vulnerability assessment
Computer applications
Computer simulation
Cyclones
Design engineering
Exploitation
Extreme weather
fuzzy logic classification
Hydrology
Markov chains
Mathematical models
Meteorology
Modelling
Multivariate analysis
Ocean engineering
Ocean models
Offshore engineering
Principal components analysis
Risk assessment
Simulation
Standard deviation
Statistical analysis
Statistical methods
Statistical models
Statistics
Storms
TECHNICAL COMMUNICATIONS
Vulnerability
Wave climate simulation
Wave statistics
Title A New Approach for the Stochastic Simulation of Regional Wave Climates Conditioned on Synoptic-Scale Meteorology
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