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Lean production and business efficiency: An artificial neural network analysis in auto parts companies

机译:精益生产和业务效率:汽车零部件公司的人工神经网络分析

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The aim of this work is to determine if it is possible or not to identify significant differences in performance, in several and simultaneous dimensions, among players applying lean production techniques, inside the Spanish and Portuguese auto parts industry. The automotive industry is a pioneer and outstanding group in the application of the lean production techniques. In this case the techniques were associated to five Lean Dimensions: (1) Manufacturing Flow (2) Process Control (3) Inbound Logistic (4) Organizational Design and Culture, and finally (5) The Lean Metrics. An artificial neural network (ANN) was used due to its flexibility and absence of “a priori” scenarios. With the purpose of knowing and measuring the application degree of the different techniques of the Lean Production System in the auto parts industry, a survey was carried out through Internet with first tier suppliers of automobile components. The questionnaire used has four parts, the last of which made reference to each one of the five dimensions of the model of lean production. It was answered by 49 companies, although it was necessary to eliminate some of them because they were not completed. In particular the final analysis was made with only 31 complete (valid) answers. The most interesting part of our analysis is the ascertainment of the main hypothesis about the link between techniques and the best results. The finding is that only by the application of a set of techniques, you will not have a success guaranteed. To obtain a good result, you not only must be lean, you must be something else. In any case our analysis has revealed, at least for those players that don''t apply the lean approach, or that not apply it consistently; that is very difficult to obtain over average outcomes.
机译:这项工作的目的是确定在西班牙和葡萄牙汽车零部件行业内部,在应用精益生产技术的企业中,在几个同时发生的方面,在性能上是否存在重大差异。汽车行业是应用精益生产技术的先锋和杰出团队。在这种情况下,这些技术与五个精益维度相关联:(1)制造流程(2)过程控制(3)入站物流(4)组织设计和文化,最后(5)精益度量。由于其灵活性和缺少“先验”场景,因此使用了人工神经网络(ANN)。为了了解和衡量精益生产系统的不同技术在汽车零部件行业中的应用程度,通过互联网与汽车零部件的一级供应商进行了调查。使用的问卷分为四个部分,最后一部分参考了精益生产模型的五个维度中的每个维度。有49家公司回答了这一问题,尽管由于它们尚未完成,有必要将其中的一些淘汰掉。特别是,最终分析仅包含31个完整(有效)答案。我们分析中最有趣的部分是确定有关技术与最佳结果之间联系的主要假设。发现是,仅通过应用一系列技术,您就无法保证成功。要获得良好的结果,您不仅必须保持苗条,还必须拥有其他素质。无论如何,我们的分析表明,至少对于那些不采用精益方法或不一致地采用精益方法的公司而言;这很难获得超过平均水平的结果。

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