数据分析在橱柜制造工厂不合格报告中的应用

Osama M. Mohsen, Y. Mohamed, M. Al-Hussein
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摘要

通过非现场施工和模块化实现建筑施工产业化是提高建筑工程绩效的有效途径。在模块化施工方法中,建筑组件是在控制良好的工厂环境中生产的。然后,组件按顺序交付到现场,由现场工作人员进行安装。减少建筑垃圾,提高产品质量,减少现场安全事故。随着市场条件的快速变化,对更多定制和独特产品的需求正在增加。客户越来越多地要求定制住宅,以反映他们的文化品味和个人喜好。房屋、厨房或其他地方的橱柜是建筑组件,构成了客户感兴趣的可见定制的很大一部分。本文主要分析了加拿大阿尔伯塔省一家橱柜制造工厂的不合格报告记录。NCR记录表示任何产品存在需要修理或返工的缺陷;它捕获有缺陷部件的几个属性,如工作编号、木材种类、污渍、创建记录的日期和时间等。本研究中提出的系统方法采用数据分析来收集、清理和分析NCR数据集。首先根据现有操作分析数据集。然后应用各种数据预处理技术,包括属性和实例选择和转换,来清理数据集。结果表明,大多数“返工”是由于管理或产品处理错误造成的,而大多数“维修”是由于产品加工错误造成的。讨论了修复缺陷部件的影响,并提出了减少缺陷部件数量从而提高操作性能的建议。
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Data Analytics Application for Non-Conformance Reports in a Cabinet Manufacturing Facility
Industrialization of building construction through offsite construction and modularization is an effective approach for improving performance of construction projects. In a modular construction approach, building components are produced in a well-controlled factory environment. The components are then delivered to site, in sequence, for installation by site crews. This process reduces construction waste, improves product quality, and minimizes onsite safety incidents. As the market conditions are rapidly changing, the demand for more customized and unique products is increasing. Customers increasingly demand customized dwellings to reflect their cultural tastes and personal preferences. Cabinets in the house, kitchen or otherwise, are building components that constitute a large portion of the visible customization that customers are interested in. This paper focuses on the analysis of records in Non-Conformance Reports (NCRs) at a cabinet manufacturing facility in Alberta, Canada. An NCR record represents a defect in any product that needs a repair or rework; it captures several attributes of the defective part, such as the job number, wood species, stain, the date and time when the record is created, etc. The systematic approach presented in this study employs data analytics to the collection, cleaning, and analysis of the NCR dataset. The dataset is first analyzed as per existing operations. Various data pre-processing techniques, including attribute and instance selection and transformation, are then applied to clean the dataset. The results show that most of the “Rework” results from administrative or product handling errors, while the majority of “Repairs” result from product finishing errors. The impact of repairing the defective parts is discussed, and recommendations to reduce the number of NCRs and thereby enhance the performance of operations are presented.
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