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Aerodynamic optimization using a parallel asynchronous evolutionary algorithm controlled by strongly interacting demes

机译:使用由强相互作用场控制的并行异步进化算法进行空气动力学优化

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摘要

A parallel asynchronous evolutionary algorithm controlled by strongly interacting demes for single- and multi-objective optimization problems is proposed. It is suitable even for non-homogeneous, multiprocessor systems, ensuring maximum exploitation of the available processors. The search algorithm utilizes a structured topology of evaluation agents organized in a number of inter-communicating demes arranged on a 2D supporting mesh. Once an evaluation terminates and a processor becomes idle, a series of intraand inter-deme processes determines the next agent to undergo evaluation on this specific processor. Real coding and differential evolution operators are used. Mathematical and aerodynamic-turbomachinery optimization problems are presented to assess the proposed method in terms of CPU cost, parallel efficiency and quality of solutions obtained within a predefined number of evaluations. Comparisons with conventional evolutionary algorithms, parallelized based on the master-slave model on the same computational platform, are presented.
机译:针对单目标和多目标优化问题,提出了一种由强相互作用场控制的并行异步进化算法。它甚至适用于非同类的多处理器系统,从而确保最大程度地利用可用的处理器。该搜索算法利用评估代理的结构化拓扑,该拓扑以组织在2D支持网格上的多个相互通信的deme中进行组织。一旦评估终止并且处理器变得空闲,一系列的内部和内部事务处理将确定下一个要在此特定处理器上进行评估的代理。使用实数编码和差分进化算子。提出了数学和空气动力学涡轮机械优化问题,以根据CPU成本,并行效率和在预定义数量的评估中获得的解决方案质量评估提出的方法。提出了与在相同计算平台上基于主从模型并行化的常规进化算法的比较。

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