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An approach to multi-criteria assembly sequence planning using genetic algorithms

机译:一种使用遗传算法进行多准则装配序列规划的方法

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摘要

This paper focuses on multi-criteria assembly sequence planning (ASP) known as a large-scale, time-consuming combinatorial problem. Although the ASP problem has been tackled via a variety of optimization techniques, these techniques are often inefficient when applied to larger-scale problems. Genetic algorithm (GA) is the most widely known type of evolutionary computation method, incorporating biological concepts into analytical studies of systems. In this research, an approach is proposed to optimize multi-criteria ASP based on GA. A precedence matrix is proposed to determine feasible assembly sequences that satisfy precedence constraints. A numerical example is presented to demonstrate the performance of the proposed algorithm. The results of comparison in the provided experiment show that the developed algorithm is an efficient approach to solve the ASP problem and can be suitably applied to any kind of ASP with large numbers of components and multi-objective functions.
机译:本文着重于被称为大规模,耗时的组合问题的多标准组装顺序计划(ASP)。尽管已通过多种优化技术解决了ASP问题,但将这些技术应用于大规模问题时通常效率不高。遗传算法(GA)是最广为人知的进化计算方法,它将生物学概念纳入系统的分析研究中。在这项研究中,提出了一种基于遗传算法优化多标准ASP的方法。提出了一个优先矩阵来确定满足优先约束的可行装配序列。数值例子说明了所提算法的性能。所提供实验的比较结果表明,所开发的算法是解决ASP问题的一种有效方法,可以适用于任何具有大量组件和多目标功能的ASP。

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