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首页> 外文期刊>Computers & Industrial Engineering >Big data oriented root cause identification approach based on Axiomatic domain mapping and weighted association rule mining for product infant failure
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Big data oriented root cause identification approach based on Axiomatic domain mapping and weighted association rule mining for product infant failure

机译:基于公理域映射和加权关联规则挖掘的面向产品大数据的根本原因识别方法

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摘要

Product infant failure formation mechanism is a maze that remains unclear to most manufacturers. Root cause analysis is an important and challenging task in exploring this mechanism in the era of quality and big data. Therefore, a novel big data oriented root cause identification approach based on weighted association rule mining (WARM) is proposed in this paper. First, the mechanism is expounded based on big data in the product lifecycle, and the requirements of root cause identification are determined simultaneously. Second, in view of domain mapping theory in Axiomatic design, the associated tree is proposed to provide a framework for the root cause search and identification. Then, the big data of root causes is defined based on the proposed associated tree. Third, a root cause mining technique using the WARM is presented, and the weight computation approach for the node on the associated tree based on the weight confidence is provided. Finally, the validity of the proposed method is verified by a case study on mining root causes for severe infant failure of an automatic washing machine. The final result shows that the proposed approach is conducive to heuristically identify the root causes of the complicated product infant failure from the big data of product lifecycle.
机译:产品婴儿故障形成机理是迷宫,大多数制造商对此尚不清楚。在质量和大数据时代,根本原因分析是探索此机制的一项重要且具有挑战性的任务。因此,本文提出了一种基于加权关联规则挖掘(WARM)的面向大数据的根本原因识别方法。首先,基于产品生命周期中的大数据阐述该机制,并同时确定根本原因识别的要求。其次,根据公理化设计中的域映射理论,提出了相关树,为根本原因的查找和识别提供了框架。然后,基于提出的关联树定义根本原因的大数据。第三,提出了一种使用WARM的根本原因挖掘技术,并提供了基于权重置信度的关联树上节点的权重计算方法。最后,以挖掘自动洗衣机严重婴儿故障的根本原因为例,验证了该方法的有效性。最终结果表明,所提出的方法有助于从产品生命周期的大数据中启发式地确定复杂产品婴儿故障的根本原因。

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