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The Research Base on Memetic Meta-heuristic Shuffled Frog-leaping Algorithm

机译:麦克梅式启发式跨越青蛙跨越算法研究基础

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Shuffled Frog-Leaping Algorithm (SFLA) is a new meta-heuristic population evolutionary algorithm. Shuffled Frog-Leaping algorithm has fast and excellent global exploration capability. Firstly, the paper introduces the principle of SFLA. Then, the paper analyses the parameters of SFLA. By the examination, the paper validates the effect of parameters to SFLA. The paper compares SFLA with genetic algorithm (GA) and particle swarm optimization (PSO) by the testing function. we can find SFLA is better than GA and PSO in astringency and the global search capability.
机译:Shuffled Frog-Leg-e算法(SFLA)是一种新的元启发式人口进化算法。随机交叉的青蛙跳跃算法具有快速且出色的全球勘探能力。首先,本文介绍了SFLA的原理。然后,本文分析了SFLA的参数。通过考试,纸张验证参数对SFLA的影响。本文通过测试功能将SFLA与遗传算法(GA)和粒子群优化(PSO)进行比较。我们可以发现SFLA比GA和PSO在涩味和全球搜索能力中。

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