基于正态概率分布的能力指标一致性

J. A. S. Sediyama, Daibou Alassane, Raphael Henrique Teixeira da Silva, J. I. Ribeiro Júnior
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摘要

摘要:能力分析旨在估计一个过程产生符合要求的产品的概率。能力指标是衡量过程满足规格的程度的无量纲参数。在文献中,我们列出了8个能力指标,其中考虑一个在统计控制下的稳定过程,基于正态概率分布,定义为:Cp、Pp、Cpk、Ppk、Cpm、Ppm、Cpmk、Ppmk。基本上,指数公式的不同之处在于计算内部变异性和总体变异性,以及相对于标称值和最接近的规格限制的平均值的偏移。本文的目的是比较这些容量指标,为此,选择最一致的估计器,即随着观测数量的增加而提高准确性和效率的估计器。因此,模拟了一个正态随机变量的3万个值,平均值等于零,标准差等于1。这使得使用5、10、15、20、25和30个具有单个观察值或样本元素的合理子组对该过程进行1,000次采样成为可能。随后,引发了20次平均位移,其值从0.1到2不等,变化0.1个单位。结果表明,无论相对于标称值的平均位移大小如何,Cpk和Ppk指数在至少15个合理子组或样本元素上表现出较高的准确性和效率,是最一致的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Consistencies of the capability indices based on the normal probability distribution
Abstract: Capability analysis seeks to estimate the probability that a process will produce compliant products. The capability indices are dimensionless parameters that measure how well the process can meet specifications. In the literature, eight capability indices are listed, among others, considering a stable process under statistical control and based on the normal probability distribution, defined by: Cp, Pp, Cpk, Ppk, Cpm, Ppm, Cpmk, and Ppmk. Basically, the index formulas differ in the calculations of the variability within and total, and of the shifts of the mean in relation to the nominal value and the nearest specification limit. The objective of this article was to compare these capacity indexes, and for that, it was chosen the most consistent estimator, that is, the one that improved the accuracy and efficiency as the number of observations increased. Thus, a simulation of 30,000 values of a normal random variable with a mean equal to zero and a standard deviation equal to one was performed. This made it possible to sample this process 1,000 times using 5, 10, 15, 20, 25, and 30 rational subgroups with individual observations or sample elements. Subsequently, 20 mean shifts were provoked, with values ranging from 0.1 to 2 and varying by 0.1 unit. According to the results, it was concluded that the indexes Cpk and Ppk were the most consistent in presenting higher accuracy and efficiency for at least 15 rational subgroups or sample elements, regardless of the magnitude of the mean displacement in relation to the nominal value.
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