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Random Walk on B\'ezier Curves for Global Optimization

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Balancing exploration and exploitation remains a central challenge in metaheuristic optimization. To address this issue, this paper proposes B\'ezier Walk Evolution (BWE), a geometry-driven optimization framework that reformulates evolutionary search as adaptive trajectory construction in the decision space. BWE integrates B\'ezier curve modeling with a distance-aware random walk mechanism to generate topology-guided search trajectories. By adaptively varying the curve order during evolution, the proposed method enables a smooth transition from diversified global exploration to refined local exploitation. Higher-order B\'ezier curves leverage multiple population-derived control points to enhance search diversity, while lower-order curves generate near-linear trajectories to improve convergence efficiency. This adaptive geometric search mechanism provides an interpretable alternative to conventional nature-inspired designs. Extensive experiments on 41 benchmark functions from the CEC2017 and CEC2022 suites, spanning dimensions from 10 to 100, show that BWE achieves strong overall performance and favorable scalability compared with 7 classical and 6 state-of-the-art optimizers, including L-SHADE and CMA-ES. Additional evaluations on five constrained engineering design problems further demonstrate the practical applicability and robustness of BWE.

Jinpeng Wang, Xingguo Xu, Yujing Sun, Jiguang Yu, Kaichen Ouyang, Yuansheng Gao• 2026

Related benchmarks

TaskDatasetResultRank
Engineering Design Optimizationthree_bar_truss
Best Feasible Objective Value263.9
16
Global OptimizationCEC C1 2022
Mean Objective Value300
14
Global OptimizationCEC C3 2022
Mean Value600
14
Global OptimizationCEC C5 2022
Mean900
14
Global OptimizationCEC C8 2022
Mean Objective Value2.22e+3
14
Global OptimizationCEC 30D 2017
Mean Value300
14
Global OptimizationCEC C10 2022
Mean Value2.50e+3
14
Global OptimizationCEC C9 2022
Mean Score2.48e+3
14
Global OptimizationCEC C4 2022
Mean Objective Value828
14
Global OptimizationCEC 2022 C7
Mean Value (C7)2.04e+3
14
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