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Analyzing synchronous and asynchronous parallel distributed genetic algorithms

机译:分析同步和异步并行分布式遗传算法

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摘要

Parallel genetic algorithms (PGAs) have been traditionally used to extend the power of serial genetic algorithms (GAs), since they often can be tailored to provide a larger efficiency on complex search problems. In a PGA several sub-algorithms cooperate in parallel to solve the problem. This high-level definition has led to a considerable number of different implementations that preclude direct comparisons and knowledge exchange. TO fill this gap we begin by providing a common framework for studying PGAs. We then analyze the importance of the synchronism in the migration step of various parallel distributed GAs. This implementation issue could affect the evaluation effort as well as could provoke some differences in the search time and speedup. We cover in this study a set of popular evolution schemes relating panmictic (steady--state or generational) and structured--population (cellular) GAs for the islands. We aim at extending existing results to structured-population GAs, and also to new problems. The evaluated PGAs demonstrate linear and even super--linear speedup when run in a cluster of workstations. They also show important numerical benefits if compared with their sequential versions. In addition, we always report lower search times for the asynchronous versions.
机译:传统上,并行遗传算法(PGA)已用于扩展串行遗传算法(GA)的功能,因为通常可以对其进行定制,以在复杂的搜索问题上提供更大的效率。在PGA中,几个子算法可以并行解决该问题。这种高级定义导致了很多不同的实现方式,这些实现方式无法进行直接比较和知识交流。为了填补这一空白,我们首先提供一个研究PGA的通用框架。然后,我们分析了各种并行分布式GA迁移步骤中同步的重要性。此实现问题可能会影响评估工作,并且可能会导致搜索时间和速度方面出现一些差异。在这项研究中,我们涵盖了一组有关岛屿的泛滥(稳态,州或世代)和结构化(种群)GA的流行进化方案。我们的目标是将现有结果扩展到结构化种群GA以及新问题。在一组工作站中运行时,经过评估的PGA表现出线性甚至超线性加速。与顺序版本相比,它们还显示出重要的数值优势。此外,我们总是报告异步版本的搜索时间较短。

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