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Summary

This study introduces DEHHO, an enhanced Harris Hawks Optimization (HHO) algorithm. DEHHO improves performance on complex problems by combining Gaussian perturbation for exploration and Differential Evolution (DE) for exploitation, outperforming existing methods.

Keywords:
Differential evolutionGaussian perturbationHarris Hawks optimizationModular metaheuristic designTrend-guided exploitation

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Area of Science:

  • Computational Intelligence
  • Optimization Algorithms
  • Metaheuristics

Background:

  • High-dimensional and complex optimization tasks often suffer from stagnation and instability.
  • Existing metaheuristics, including Harris Hawks Optimization (HHO), face challenges in maintaining diversity and convergence.
  • Novel algorithmic approaches are needed to address these limitations.

Purpose of the Study:

  • To present DEHHO, a novel, modular, and lightweight variant of Harris Hawks Optimization (HHO).
  • To enhance optimization performance in high-dimensional and complex problems by mitigating stagnation and directional instability.
  • To validate the effectiveness of DEHHO against state-of-the-art algorithms.

Main Methods:

  • Integration of a Gaussian-based stochastic perturbation mechanism for exploration diversity.
  • Incorporation of a Trend-Guided Differential Evolution (DE) update with a momentum vector for exploitation stability.
  • A dynamic balancing scheme to coordinate search phases efficiently.

Main Results:

  • DEHHO statistically outperformed 10 peer algorithms on CEC 2017 and CEC 2020 benchmark suites (up to 100 dimensions).
  • Demonstrated superior convergence accuracy, robustness, and scalability compared to advanced HHO variants and mainstream metaheuristics.
  • Ablation studies confirmed the efficacy and complementarity of the proposed mechanisms.

Conclusions:

  • DEHHO is a reliable and effective solver for complex numerical and engineering design optimization problems.
  • The synergistic integration of exploration and exploitation strategies significantly enhances optimization performance.
  • The proposed framework offers a robust solution for tackling challenging optimization landscapes.