关联规则在编织丝网缺陷分析中的应用

Kritsada Wongwan, W. Laosiritaworn
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引用次数: 4

摘要

本文将数据挖掘技术中的关联规则算法应用于制造缺陷类型之间的关系分析。关联规则技术是一种揭示数据变量之间关系的技术,已应用于制造业和服务业的各种问题。本文将FP-Growth (frequency -pattern growth)算法应用于泰国一家大型不锈钢丝网生产企业。该公司正在经历一个缺陷问题,原因尚不清楚。缺陷数据是可用的,但还没有得到适当的分析。总共有19种缺陷。收集了2281条0.8mm栅格316产品缺陷数据记录,用于关联规则挖掘。结果表明,HP(硬翘曲)缺陷、OM(开孔)缺陷和of(开孔满孔)缺陷三种主要缺陷类型之间存在一定的相关性,且置信度存在差异。此外,如果HP缺陷发生,OM缺陷也有可能以96.3%的置信度发生。另一方面,如果OM缺陷发生,HP缺陷也有可能达到99.9%的置信度。这些结果可用于制定生产过程中缺陷的监控、缺陷根源的解决、缺陷的检测方法和判断标准。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of association rules in woven wire mesh defects analysis
In this study, association rule algorithm, one of data mining techniques, was applied to analyze the relationship between manufacturing defect types. Association rules technique is a technique to uncover relationships between data variables which have been applied to various problems both in manufacturing industry and services. In this paper, FP-Growth (frequent-pattern growth) algorithm has been applied to a large manufacturer of stainless steel wire mesh in Thailand. The company is experiencing a defects problem that the cause remains unknown. Defect data are available but there has not been analyzed properly. There are in total 19 types of defects. 2,281 records of defect data on mesh 0.8mm grade 316 products were collected and used for association rule mining. The result showed some relationship between three main types of defects which are HP (hard warp) defect, OM (open mesh) defect and OF (open mesh full) defect with difference confidence level. Moreover, if HP defect occur it is possible that OM defect will also occur at 96.3 percent confidence. On the other hand if OM defect occur it is possible that HP defect will also at 99.9 percent confidence. These results can be used to develop the production processes to monitoring of defects, solving a root cause of defects, defects inspection method and judgment criterion in future.
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