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An affine invariant signed-rank multivariate exponentially weighted moving average control chart for process location monitoring.

机译:仿射不变的带符号秩的多元指数加权移动平均控制图,用于过程位置监视。

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摘要

Multivariate statistical process control (SPC) charts for detecting possible shifts in mean vectors assume that data observation vectors follow a multivariate normal distribution. This assumption is ideal and seldom met. Nonparametric SPC charts have increasingly become viable alternatives to parametric counterparts in detecting process shifts when the underlying process output distribution is unknown, specifically when the process measurement is multivariate. This study examined a new nonparametric signed-rank multivariate exponentially weighted moving average type (SRMEWMA) control chart for monitoring location parameters. The control chart was based on adapting a multivariate spatial signed-rank test. The test was affine-invariant and the weighted version of this test was used to formulate the charting statistic by incorporating the exponentially weighted moving average (EWMA) scheme. The test's in-control (IC) run length distribution was examined and the IC control limits were established for different multivariate distributions, both elliptically symmetrical and skewed. The average run length (ARL) performance of the scheme was computed using Monte Carlo simulation for select combinations of smoothing parameter, shift, and number of p-variate quality characteristics. The ARL performance was compared to the performance of the multivariate exponentially weighted moving average (MEWMA) and Hotelling T2. The control charts for observation vectors sampled the multivariate normal, multivariate t, and multivariate gamma distributions. The SRMEWMA control chart was applied to a real dataset example from aluminum smelter manufacturing that showed the SRMEWMA performed well. The newly investigated nonparametric multivariate SPC control chart for monitoring location parameters---the Signed-Rank Multivariate Exponentially Weighted Moving Average (SRMEWMA)---is a viable alternative control chart to the parametric MEWMA control chart and is sensitive to small shifts in the process location parameter. The signed-rank multivariate exponentially weighted moving average performance for data from elliptically symmetrical distributions is similar to that of the MEWMA parametric chart; however, SRMEWMA's performance is superior to the performance of the MEWMA and Hotelling's T2 control charts for data from skewed distributions.
机译:用于检测均值向量中可能偏移的多元统计过程控制(SPC)图假定数据观察向量遵循多元正态分布。这个假设是理想的,很少满足。当基础过程输出的分布未知时,特别是当过程度量是多变量时,在检测过程偏移时,非参数SPC图表已逐渐成为替代参数对应图表的可行选择。这项研究检查了一种新的非参数有符号秩的多元指数加权移动平均类型(SRMEWMA)控制图,用于监控位置参数。控制图基于改编的多元空间符号秩检验。该测试是仿射不变的,并且该测试的加权版本通过结合指数加权移动平均值(EWMA)方案来制定图表统计信息。检查了测试的控制内(IC)运行长度分布,并为椭圆对称和偏斜的不同多元分布确定了IC控制极限。该方案的平均运行长度(ARL)性能是使用Monte Carlo仿真计算的,用于选择平滑参数,移位和p变量质量特征数量的组合。将ARL性能与多元指数加权移动平均值(MEWMA)和Hotelling T2的性能进行了比较。观察向量的控制图采样了多元正态,多元t和多元伽马分布。将SRMEWMA控制图应用于铝冶炼厂制造的真实数据集示例,结果表明SRMEWMA表现良好。新近研究的用于监视位置参数的非参数多元SPC控制图-带符号秩的多元指数加权移动平均值(SRMEWMA)-是参数MEWMA控制图的可行替代控制图,并且对参数的细微变化敏感流程位置参数。椭圆对称分布数据的有符号秩多元指数加权移动平均性能与MEWMA参数图相似。但是,对于偏斜分布中的数据,SRMEWMA的性能优于MEWMA和Hotelling的T2控制图。

著录项

  • 作者

    Zeinab, Jamil H.;

  • 作者单位

    University of Northern Colorado.;

  • 授予单位 University of Northern Colorado.;
  • 学科 Statistics.;Engineering General.;Applied Mathematics.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 319 p.
  • 总页数 319
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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