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On the Adaptivity and Complexity Embedded into Differential Evolution

机译:嵌入差分演化中的适应性和复杂性

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This research deals with the comparison of the two modern approaches for evolutionary algorithms, which are the adaptivity and complex chaotic dynamics. This paper aims on the investigations on the chaos-driven Differential Evolution (DE) concept. This paper is aimed at the embedding of discrete dissipative chaotic systems in the form of chaotic pseudo random number generators for the DE and comparing the influence to the performance with the state of the art adaptive representative jDE. This research is focused mainly on the possible disadvantages and advantages of both compared approaches. Repeated simulations for Lozi map driving chaotic systems were performed on the simple benchmark functions set, which are more close to the real optimization problems. Obtained results are compared with the canonical not-chaotic and not adaptive DE. Results show that with used simple test functions, the performance of ChaosDE is better in the most cases than jDE and Canonical DE, furthermore due to the unique sequencing in CPRNG given by the hidden chaotic dynamics, thus better and faster selection of unique individuals from population, ChaosDE is faster.
机译:该研究涉及对进化算法的两种现代方法的比较,这是适应性和复杂的混乱动态。本文旨在调查混沌驱动的差分进化(DE)概念。本文旨在以混沌伪随机数发生器形式的离散耗散混沌系统嵌入DE,并将影响与艺术适应性代表JDE的状态进行比较。该研究主要集中在两种比较方法的可能缺点和优势。对Lozi Map Triping Chaotic Systems的重复模拟是在简单的基准函数集上进行的,这更接近真实优化问题。将得到的结果与规范不混沌而不是自适应的结果进行比较。结果表明,随着使用的简单测试功能,在大多数情况下,Chaosde的性能比JDE和Canonical de更好,此外由于隐藏的混沌动态的CPRNG中的独特测序,从而更好地选择了人口的独特个体,Chaosde更快。

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