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Feature-based memory association for group technology

机译:用于组技术的基于功能的内存关联

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This paper presents a new approach for group technology (GT) part family formation and multiple-application set formation using feature-based memory association performed by neural networks. The drawbacks of two GT approaches, production flow analysis (PFA) and coding and classification systems (CCS) are discussed. CCS is useful for similar part retrieval and new part assign- ment but not adequate for forming machine cells. PFA can form part families and machine cells simultaneously; however, routeing sheets are required and PFA does not provide specific methods for part information retrieval. These draw- backs are rooted in the fact that CCS depends on the relationships between parts and features and PFA relies on the relationships between parts and machines.
机译:本文提出了一种新的组技术(GT)零件族形成和使用基于神经网络的基于特征的内存关联的多应用程序集形成的新方法。讨论了两种GT方法的缺点,即生产流程分析(PFA)和编码与分类系统(CCS)。 CCS可用于类似零件检索和新零件分配,但不足以形成机器单元。 PFA可以同时形成零件族和机器单元。但是,需要布线表,并且PFA没有提供零件信息检索的特定方法。这些缺点根源在于CCS依赖于零件和特征之间的关系,而PFA依赖于零件和机器之间的关系。

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