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MEIAO: A Multi-Strategy Enhanced Information Acquisition Optimizer for Global Optimization and UAV Path Planning.

Yongzheng Chen1, Ruibo Sun2, Jun Zheng3

  • 1School of Mathematics, University of Edinburgh, Edinburgh EH8 8FH, UK.

Biomimetics (Basel, Switzerland)
|November 26, 2025
PubMed
Summary

A new Multi-Strategy Enhanced Information Acquisition Optimizer (MEIAO) improves unmanned aerial vehicle (UAV) path planning in complex 3D terrains. MEIAO offers more efficient exploration and robust path generation compared to existing methods.

Keywords:
UAV path planningdifferential evolution operatorglobal optimizationinformation acquisition optimizermetaheuristic algorithm

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Area of Science:

  • Robotics and Automation
  • Artificial Intelligence
  • Optimization Algorithms

Background:

  • Traditional path planning struggles with multi-constraint, multi-objective UAV missions in complex 3D environments.
  • Standard swarm intelligence algorithms, like the Information Acquisition Optimizer (IAO), face limitations in exploration efficiency, population diversity, and boundary handling for high-dimensional problems.

Purpose of the Study:

  • To develop an improved optimization algorithm, the Multi-Strategy Enhanced Information Acquisition Optimizer (MEIAO), for complex UAV path planning.
  • To address the limitations of existing algorithms in exploration, diversity, and boundary handling within high-dimensional search spaces.

Main Methods:

  • Incorporation of a Levy Flight-based strategy for enhanced global exploration.
  • Integration of an adaptive differential evolution operator to balance exploration and exploitation dynamically.
  • Implementation of a globally guided boundary handling strategy to ensure feasible path generation.
  • Performance evaluation on CEC2017 and CEC2022 benchmark suites against eight other algorithms.

Main Results:

  • MEIAO demonstrated superior performance in local exploitation, global exploration, and complex adaptation on benchmark functions.
  • The algorithm exhibited enhanced robustness and maintained population diversity.
  • Applied to 3D mountainous UAV path planning, MEIAO achieved a 25.7% reduction in average path cost compared to IAO.
  • Generated paths were smoother, collision-free, and converged faster.

Conclusions:

  • MEIAO provides a more efficient and reliable solution for unmanned aerial vehicle operations in complex 3D environments.
  • The proposed algorithm effectively overcomes the limitations of existing methods in UAV path planning.
  • MEIAO offers significant improvements in path cost, smoothness, and convergence speed.