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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >A heuristic threshold policy for fault detection and diagnosis in multivariate statistical quality control environments
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A heuristic threshold policy for fault detection and diagnosis in multivariate statistical quality control environments

机译:多元统计质量控制环境中用于故障检测和诊断的启发式阈值策略

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摘要

In this paper, a heuristic threshold policy is developed to detect and classify the states of a multivariate quality control system. In this approach, a probability measure called belief is first assigned to the quality characteristics and then the posterior belief of out-of-control characteristics is updated by taking new observations and using a Bayesian rule. If the posterior belief is more than a decision threshold, called minimum acceptable belief determined using a heuristic threshold policy, then the corresponding quality characteristic is classified out-of-control. Besides using a different approach, the main difference between the current research and previous works is that the current work develops a novel heuristic threshold policy, in which in order to save sampling cost and time or when these factors are constrained, the number of the data gathering stages is assumed limited. A numerical example along with some simulation experiments is given at the end to demonstrate the application of the proposed methodology and to evaluate its performances in different scenarios of mean shifts.
机译:在本文中,开发了一种启发式阈值策略来检测和分类多元质量控制系统的状态。在这种方法中,首先将一种称为置信度的概率度量分配给质量特征,然后通过采用新的观测值并使用贝叶斯规则来更新失控特征的后置置信度。如果后验信念大于决策阈值(使用启发式阈值策略确定的称为最小可接受信念),则将相应的质量特征归类为失控。除了使用不同的方法外,当前研究与以前的工作之间的主要区别在于,当前工作开发了一种新颖的启发式阈值策略,其中为了节省采样成本和时间,或者在这些因素受到约束时,数据数量收集阶段被认为是有限的。最后给出了一个数值示例以及一些仿真实验,以演示所提出方法的应用并评估其在均值漂移不同场景下的性能。

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