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A New Hybrid Firefly Algorithm for Complex and Nonlinear Problem

机译:一种新的复杂和非线性问题的混合萤火虫算法

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Global optimization methods play an important role to solve many real-world problems. However, the implementation of single methods is excessively preventive for high dimensionality and nonlinear problems, especially in term of the accuracy of finding best solutions and convergence speed performance. In recent years, hybrid optimization methods have shown potential achievements to overcome such challenges. In this paper, a new hybrid optimization method called Hybrid Evolutionary Firefly Algorithm (HEFA) is proposed. The method combines the standard Firefly Algorithm (FA) with the evolutionary operations of Differential Evolution (DE) method to improve the searching accuracy and information sharing among the fireflies. The HEFA method is used to estimate the parameters in a complex and nonlinear biological model to address its effectiveness in high dimensional and nonlinear problem. Experimental results showed that the accuracy of finding the best solution and convergence speed performance of the proposed method is significantly better compared to those achieved by the existing methods.
机译:全球优化方法发挥着解决许多真实问题的重要作用。然而,单一方法的实施是对高维度和非线性问题的过度预防性,特别是在找到最佳解决方案和收敛速度性能的准确性期间。近年来,混合优化方法表明克服这些挑战的潜在成就。本文提出了一种新的混合优化方法,称为混合进化萤火虫算法(HEFA)。该方法将标准Firefly算法(FA)与差分演进(DE)方法的进化操作相结合,以改善萤火虫中的搜索精度和信息共享。 HEFA方法用于估计复杂和非线性生物模型中的参数,以解决其在高维和非线性问题中的有效性。实验结果表明,与现有方法实现的那些相比,找到所提出的方法的最佳解决方案和收敛速度性能的准确性明显更好。

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