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An integrated multidisciplinary particle swarm optimization approach to conceptual ship design

机译:集成多学科粒子群优化方法在概念船设计中的应用

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A particle swarm optimization (PSO) solver is developed based on theoretical information available from the literature. The implementation is validated by utilizing the PSO optimizer as a driver for a single discipline optimization and for a multicriterion optimization and comparing the results to a commercially available gradient based optimization algorithm, previously published results, and a simple sequential Monte Carlo model. A typical conceptual ship design statement from the literature is employed for developing the single discipline and the multicriterion benchmark optimization statements. In the main new effort presented in this paper, an approach is developed for integrating the PSO algorithm as a driver at both the top and the discipline levels of a multidisciplinary design optimization (MDO) framework which is based on the Target Cascading (TC) method. The integrated MDO/PSO algorithm is employed for analyzing a multidiscipline optimization statement reflecting the conceptual ship design problem from the literature. Results are compared to MDO analyses performed when a gradient based optimizer comprised the optimization driver at all levels. The results, the strengths, and the weaknesses of the integrated MDO/PSO algorithm are discussed as related to conceptual ship design.
机译:基于可从文献中获得的理论信息,开发了粒子群优化(PSO)求解器。通过将PSO优化器用作单一学科优化和多准则优化的驱动程序,并将结果与​​市售的基于梯度的优化算法,先前发布的结果以及简单的顺序蒙特卡洛模型进行比较,来验证实现。根据文献中的典型概念性船舶设计说明,可用于开发单一学科和多标准基准优化说明。在本文提出的主要新工作中,开发了一种方法,用于将PSO算法作为驱动程序集成在基于目标级联(TC)方法的多学科设计优化(MDO)框架的高层和学科层上。集成的MDO / PSO算法用于分析多学科的优化陈述,以反映文献中概念性的船舶设计问题。将结果与基于梯度的优化器包括所有级别的优化驱动程序时执行的MDO分析进行比较。讨论了集成的MDO / PSO算法的结果,优点和缺点,这些与概念船的设计有关。

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