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Linear programming embedded genetic algorithm for product family design optimization with maximizing imprecise part-worth utility function

机译:线性规划嵌入式遗传算法,用于最大化不精确部分价值效用函数的产品系列设计优化

摘要

Product family design optimization is an important decision task in the early stages of product development. The extant optimization models for product family design assume that the known information for modeling can be determined precisely. However, many collected information for product design are prone to be imprecise due to the inherent uncertainty of human knowledge and expression. For example, when human experts estimate market demand of a product, imprecise information may be involved and influence the results of optimization. In this research, an optimization model with maximizing imprecise part-worth utility function is established for product family design problem. A linear programming embedded genetic algorithm is proposed to solve the proposed fuzzy optimization model. An industrial case of printing calculator product is used to illustrate the proposed approach. Experiments and sensitivity analysis based on the case study are also performed to analyze the relationship among the parameters and to explore the characteristics of the optimization model.
机译:产品系列设计优化是产品开​​发早期阶段的重要决策任务。产品系列设计的现有优化模型假定可以精确确定已知的建模信息。但是,由于人类知识和表达的内在不确定性,许多用于产品设计的收集信息往往不准确。例如,当人类专家估计产品的市场需求时,可能会涉及不精确的信息并影响优化结果。在这项研究中,针对产品系列设计问题,建立了最大化不精确零件价值效用函数的优化模型。提出了一种线性规划的嵌入式遗传算法来求解所提出的模糊优化模型。以印刷计算器产品的工业案例来说明所提出的方法。还基于案例研究进行了实验和敏感性分析,以分析参数之间的关系并探索优化模型的特征。

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