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Real-world rogue wave probabilities
Dion Häfner1, Johannes Gemmrich2, Markus Jochum3
1Niels Bohr Institute, University of Copenhagen, Copenhagen, Denmark. dion.haefner@nbi.ku.dk.
Scientific Reports
|May 13, 2021
Summary
Predicting dangerous rogue waves is challenging. New analysis of over a billion waves shows crest-trough correlation, not kurtosis, is key for forecasting rogue wave risk in real-world sea states.
Area of Science:
- Oceanography
- Fluid Dynamics
- Data Science
Background:
- Rogue waves pose significant risks to maritime operations.
- Existing forecasting methods based on simulations and lab experiments have limitations.
- Reliable prediction of rogue waves remains an unsolved challenge.
Purpose of the Study:
- To identify reliable predictors for rogue wave occurrence using extensive observational data.
- To evaluate the effectiveness of traditional rogue wave prediction parameters.
- To understand the underlying mechanisms driving rogue wave formation.
Main Methods:
- Analysis of over one billion ocean surface wave observations.
- Application of data mining and interpretable machine learning techniques.
- Statistical evaluation of various sea state parameters as predictors.
Main Results:
- Traditional parameters like kurtosis and Benjamin-Feir index are weak predictors of rogue wave risk.
- Crest-trough correlation is the dominant predictor across various conditions, explaining significant risk variation.
- For rogue crests, skewness, steepness, and Ursell number are strong predictors, aligning with second-order theory.
Conclusions:
- Linear superposition in bandwidth-limited seas is the primary mechanism for common rogue waves.
- Nonlinear effects play a secondary role in the formation of everyday rogue waves.
- The standard definition of rogue waves based solely on height may lack practical significance.
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