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An improved Crow Search Algorithm for high-dimensional problems

机译:一种改进的高维问题乌鸦搜索算法

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摘要

Crow search algorithm (CSA) is a recently proposed metaheuristic optimizer inspired by the intelligent behaviour of crows with attributes like simplicity and ease of implementation. CSA is claimed superior and more effective in optimizing a variety of constrained engineering design problems in comparison to other state-of-art algorithms. In the present work, CSA is applied to high dimensional optimization problems and it is found that CSA suffers from premature convergence which leads to lower precision and less accuracy in optimization or sometimes failure. Therefore an improvement in CSA (ICSA) is suggested to solve high-dimensional global optimization problems efficiently. The balance between exploitation and exploration capabilities of CSA is improved by introducing experience factor, adaptive adjustment operator and Levy flight distribution in position updating mechanism of crows. Levy flight distribution promotes continuous exploration of search space and prevents premature convergence by escaping from local optimum at any stage. The performance of ICSA is validated on high-dimensional nonlinear scalable benchmark test functions. The proposed improvement in CSA makes it highly competitive and less sensitive to function dimensions. ICSA is also found superior to other well established optimizers.
机译:乌鸦搜索算法(CSA)是最近提出的,由乌鸦的智能行为引发,具有简单性和易于实现的属性的智能行为。与其他最先进的算法相比,CSA索赔优于优化各种约束的工程设计问题。在目前的工作中,CSA适用于高维优化问题,发现CSA遭受过早的收敛,这导致优化或有时在优化中的精度和更低的准确性。因此,建议有效地解决CSA(ICSA)的改进,以有效地解决高维全局优化问题。通过在乌鸦的位置更新机制中引入经验因素,自适应调整运营商和征收飞行分布,改善了CSA的开发和勘探能力之间的平衡。征收飞行分配促进了搜索空间的持续探索,并通过在任何阶段的局部最优逃避局部最佳的早熟收敛。 ICSA的性能在高维非线性可扩展基准测试功能上验证。 CSA的提议改进使其对功能尺寸具有竞争力和敏感性。 ICSA也优于其他精良的优化器。

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