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An Improved Fireworks Algorithm Based on Grouping Strategy of the Shuffled Frog Leaping Algorithm to Solve Function Optimization Problems

机译:一种基于改组蛙跳算法分组策略的改进烟花算法,以解决函数优化问题

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The fireworks algorithm (FA) is a new parallel diffuse optimization algorithm to simulate the fireworks explosion phenomenon, which realizes the balance between global exploration and local searching by means of adjusting the explosion mode of fireworks bombs. By introducing the grouping strategy of the shuffled frog leaping algorithm (SFLA), an improved FA-SFLA hybrid algorithm is put forward, which can effectively make the FA jump out of the local optimum and accelerate the global search ability. The simulation results show that the hybrid algorithm greatly improves the accuracy and convergence velocity for solving the function optimization problems.
机译:烟花算法(FA)是一种新的并行扩散优化算法,用于模拟烟花爆炸现象,它通过调整烟花炸弹的爆炸方式来实现全局探索与局部搜索之间的平衡。通过引入改组蛙跳算法(SFLA)的分组策略,提出了一种改进的FA-SFLA混合算法,可以有效地使FA跳出局部最优,并加快全局搜索能力。仿真结果表明,该混合算法大大提高了求解函数优化问题的准确性和收敛速度。

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