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A weighted rough set based fuzzy axiomatic design approach for the selection of AM processes

机译:基于加权粗糙集的模糊公理设计方法选择am过程

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摘要

Additive manufacturing (AM) or 3D printing, as an enabling technology for mass customization or personalization, has been developed rapidly in recent years. Various design tools, materials, machines and service bureaus can be found in the market. Clearly, the choices are abundant, but users can be easily confused as to which AM process they should use. This paper first reviews the existing multi-attribute decision-making methods for AM process selection and assesses their suitability with regard to two aspects, preference rating flexibility and performance evaluation objectivity. We propose that an approach that is capable of handling incomplete attribute information and objective assessment within inherent data has advantages over other approaches. Based on this proposition, this paper proposes a weighted preference graph method for personalized preference evaluation and a rough set based fuzzy axiomatic design approach for performance evaluation and the selection of appropriate AM processes. An example based on the previous research work of AM machine selection is given to validate its robustness for the priori articulation of AM process selection decision support.
机译:增材制造(AM)或3D打印作为大规模定制或个性化的一项使能技术,近年来已得到快速发展。市场上可以找到各种设计工具,材料,机器和服务机构。显然,选择是丰富的,但用户很容易就应该使用哪种AM流程感到困惑。本文首先回顾了现有的用于AM流程选择的多属性决策方法,并从偏好评分灵活性和绩效评估客观性两个方面评估了它们的适用性。我们建议一种能够处理固有数据中不完整的属性信息和客观评估的方法比其他方法具有优势。基于这一命题,本文提出了一种用于个性化偏好评估的加权偏好图方法,以及一种基于粗糙集的模糊公理设计方法,用于绩效评估和适当的增材制造工艺的选择。给出了一个基于AM机器选择的先前研究工作的示例,以验证其对AM过程选择决策支持的先验表达的鲁棒性。

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