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Noise Analysis Compact Genetic Algorithm

机译:噪声分析紧凑型遗传算法

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摘要

This paper proposes the Noise Analysis compact Genetic Algorithm (NAcGA). This algorithm integrates a noise analysis component within a compact structure. This fact makes the proposed algorithm appealing for those real-world applications characterized by the necessity of a high performance optimizer despite severe hardware limitations. The noise analysis component adaptively assigns the amount of fitness evaluations to be performed in order to distinguish two candidate solutions. In this way, it is assured that computational resources are not wasted and the selection of the most promising solution is correctly performed. The noise analysis employed in this algorithm spouses very well the pair-wise comparison logic typical of compact evolutionary algorithms. Numerical results show that the proposed algorithm significantly improves upon the performance, in noisy environments, of the standard compact genetic algorithm. Two implementation variants based on the elitist strategy have been tested in this studies. It is shown that the nonpersistent strategy is more robust to the noise than the persistent one and therefore its implementation seems to be advisable in noisy environments.
机译:本文提出了噪声分析紧凑型遗传算法(Nacga)。该算法在紧凑结构内集成了噪声分析组件。这一事实使得所提出的算法吸引这些现实世界的应用,这是由于硬件限制严重的硬件限制,所以具有高性能优化器的必要性。噪声分析组件自适应地分配要执行的健身评估量以区分两个候选解决方案。通过这种方式,保证不浪费计算资源,并正确执行最有前景的解决方案。本算法中采用的噪声分析配偶非常好,典型的紧凑型进化算法的一对比较逻辑。数值结果表明,该算法显着提高了标准紧凑遗传算法的性能,在嘈杂环境中的性能。在本研究中已经测试了基于Elitist战略的两种实施变体。结果表明,非球面策略比持久性噪声更强大,因此它的实现似乎是在嘈杂的环境中建议的。

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