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Performance Evaluation Using Multivariate Non-Normal Process Capability

机译:使用多变量非正常过程能力进行性能评估

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摘要

Process capability indices (PCIs) have always been used to improve the quality of products and services. Traditional PCIs are based on the assumption that the data obtained from the quality characteristic (QC) under consideration are normally distributed. However, most data on manufacturing processes violate this assumption. Furthermore, the products and services of the manufacturing industry usually have more than one QC; these QCs are functionally correlated and, thus, should be evaluated together to evaluate the overall quality of a product. This study investigates and extends the existing multivariate non-normal PCIs. First, a multivariate non-normal PCI model from the literature is modeled and validated. An algorithm to generate non-normal multivariate data with the desired correlations is also modeled. Then, this model is extended using two different approaches that depend on the well-known Box−Cox and Johnson transformations. The skewness reduction is further improved by applying heuristics algorithms. These two approaches outperform the investigated model from the literature because they can provide more precise results regardless of the skewness type. The comparison is made based on the generated data and a case study from the literature.
机译:流程能力指数(PCIS)一直被用来提高产品和服务的质量。传统的PCI基于假设从考虑所考虑的质量特征(QC)获得的数据通常是分布式。但是,大多数关于制造过程的数据违反了这一假设。此外,制造业的产品和服务通常具有多个QC;这些QCS在功能上相关,因此,应该一起评估以评估产品的整体质量。本研究调查并扩展了现有的多变量非正常PCI。首先,建模和验证来自文献的多变量非正常PCI模型。还建模了一种生成具有所需相关性的非正常多变量数据的算法。然后,使用两种不同的方法来扩展该模型,该方法依赖于众所周知的Box-Cox和Johnson转换。通过应用启发式算法进一步改善了偏斜减少。这两种方法优于来自文献的调查模型,因为无论偏斜型如何,它们都可以提供更精确的结果。基于所生成的数据和文献中的案例研究来进行比较。

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