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Ship roll motion prediction based on ℓ1 regularized extreme learning machine.

Binglei Guan1,2, Wei Yang3, Zhibin Wang4

  • 1Logistics Engineering College, Shanghai Maritime University, Shanghai, 200135, China.

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This study introduces an advanced Extreme Learning Machine (ELM) method for accurate ship roll motion prediction. The novel approach optimizes ELM structure, enhancing predictive performance for maritime applications.

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Area of Science:

  • Naval Architecture and Marine Engineering
  • Computational Intelligence
  • Time Series Analysis

Background:

  • Accurate prediction of ship roll motion is crucial for maritime safety and operational efficiency.
  • Traditional methods often struggle with complex dynamics and real-time prediction accuracy.
  • Overfitting and underfitting can significantly degrade the performance of predictive models.

Purpose of the Study:

  • To propose a novel Extreme Learning Machine (ELM) based method for enhanced ship roll motion prediction.
  • To improve prediction accuracy and model robustness by optimizing ELM structure.
  • To validate the proposed method using real-world ship roll motion data.

Main Methods:

  • Input selection from roll motion time series using the Lipschitz quotient method.
  • Determination of hidden layer nodes via an ℓ1 regularization technique.
  • Solving the ℓ1 regularized ELM using the least angle regression (LAR) algorithm.

Main Results:

  • The proposed method demonstrates improved accuracy in ship roll motion prediction.
  • Optimization techniques effectively prevent over or underfitting, leading to robust models.
  • Experimental validation confirms the method's effectiveness on real measured data.

Conclusions:

  • The developed ℓ1 regularized ELM offers a superior approach for ship roll motion prediction.
  • The combination of Lipschitz quotient and ℓ1 regularization enhances model performance.
  • This method provides a valuable tool for real-time maritime safety and operational planning.