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The Shewhart attribute chart with alternated charting statistics to monitor bivariate and trivariate mean vectors

机译:Shewhart属性图,带有交替的制图统计信息,以监视双变量和三变量均值向量

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In this article, we combined the Alternated Charting Statistic (ACS) scheme with the traditional attribute np chart to control mean vectors of bivariate and trivariate normal processes. With the bivariate ACS scheme in use (the trivariate scheme is similar), the two quality characteristics (X, Y) are controlled in an alternating fashion. If the current sample point is the number of disapproved items with respect to the X discriminating limits, then the next sample point will be the number of disapproved items with respect to the Y discriminating limits. The strategy of using the X discriminating limits to classify the items of one sample and the Y discriminating limits to classify the items of the next sample instead of using jointly the X and Y discriminating limits to classify the items of all samples might be compensated with the adoption of larger samples. In other words, the proposed bivariate (trivariate) ACS chart might work with samples as large as 2n (3n); n is the sample size of the competing Hotelling and Max D charts. The proposed chart resembles an np chart with alternated charting statistic; because of that, it is called the ACS mp chart. The ACS mp chart always outperforms the Max D chart and, in comparison with the standard T-2 chart and with the combined Max D - T-2 chart, it has a better overall performance. With the ACS scheme, the items are classified as approved or disapproved regarding only one of the two quality characteristic, X or Y; with the Max D chart the complexity increases, once the items are classified into four different categories: approved (disapproved) regarding both, the X and Y discriminating limits, or approved (disapproved) regarding the X discriminate limits and disapproved (approved) regarding the Y discriminate limits. The T-2 chart always requires the measurement of the two quality characteristics. The additional advantage of inspecting only one quality characteristic of the sample items lies in the fact that the XY-correlation doesn't need to be estimated.
机译:在本文中,我们将交替图表统计(ACS)方案与传统的属性np图表相结合,以控制双变量和三变量正态过程的均值向量。使用双变量ACS方案(三变量方案相似),以交替方式控制两个质量特征(X,Y)。如果当前样本点是相对于X区分极限的不获批准的商品数量,则下一个采样点将是相对于Y区分度的不获批准的商品数量。使用X鉴别极限对一个样本的项目进行分类而使用Y鉴别极限对下一个样本的项目进行分类而不是同时使用X和Y鉴别极限对所有样本的项目进行分类的策略可能会得到补偿。通过更大的样本。换句话说,建议的双变量(三变量)ACS图可能适用于最大为2n(3n)的样本。 n是竞争的Hotelling和Max D图表的样本大小。拟议的图表类似于带有交替图表统计的np图表;因此,它称为ACS mp图表。 ACS mp图表始终优于Max D图表,并且与标准T-2图表和组合的Max D-T-2图表相比,它具有更好的总体性能。对于ACS方案,仅根据两个质量特征(X或Y)之一将项目分类为已批准或未批准。使用Max D图表,一旦将项目分为四个不同的类别,复杂性就会增加:关于X和Y区分极限的批准(不批准),或者关于X区分极限的批准(不批准)和关于X和Y区分极限的批准(不批准)。 Y区分界限。 T-2图表始终需要测量两个质量特征。仅检查样本项目的一个质量特征的另一个优势在于,无需估计XY相关性。

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