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A CUSUM Chart for Monitoring a Proportion with Autocorrelated Binary Observations

机译:使用自相关二元观测值监控比例的CUSUM图表

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When traditional control charts are used to monitor a proportion p, it is assumed that the binary obser?vations are independent. This paper investigates the problem of monitoring p when there is a continuous stream of autocorrelated binary observations that follow a two state Markov chain model with first order dependence. It is shown that both the Shewhart p chart and the most efficient chart for independent ob?servations, the Bernoulli CUSUM chart, are not robust to autocorrelation, and that adjusting the control limits of these traditional charts to account for the autocorrelation is not an efficient approach. Here we construct a Markov binary CUSUM (MBCUSUM) chart based on a log likelihood ratio statistic and show that this chart can be well approximated by using a Markov chain model, for which exact properties are calculable. Numerical results show that the MBCUSUM chart will detect most increases in p faster than competing charts. The effect of the size of the Phase I data set used in setting up the MBCUSUM chart is also investigated.
机译:当使用传统的控制图监视比例p时,假定二进制观测值是独立的。本文研究了当存在连续的自相关二元观测流遵循遵循一阶依赖性的两个状态马尔可夫链模型时监测p的问题。结果表明,无论是Shewhart p图还是用于独立观测的最有效图,Bernoulli CUSUM图对自相关均不稳健,并且调整这些传统图的控制范围以解决自相关并不是有效的方法。方法。在这里,我们基于对数似然比统计量构建了马尔可夫二元CUSUM(MBCUSUM)图,并表明可以使用马尔可夫链模型很好地近似此图,对于该模型,可以精确计算其属性。数值结果表明,MBCUSUM图表将比竞争图表更快地检测到p的大部分增加。还研究了用于设置MBCUSUM图表的第一阶段数据集大小的影响。

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