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Credible interval estimation for fraction nonconforming: Analytical and numerical solutions

机译:分数不合格品的可信区间估计:解析和数值解

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This paper proposes a Bayesian statistics-based analytical solution and a Markov Chain Monte Carlo (MCMC) method-based numerical solution to estimate the credible interval for fraction nonconforming. Both solutions provide a more accurate, reliable, and interpretable estimation of sampling uncertainty and can be used to improve the functionality of automated, nonconforming quality management systems. To reveal how the inherent mathematical mechanism functions for an analytical solution, a step-by-step proof with a calculation example is provided. For the numerical solution, a specialized Metropolis-Hastings algorithm and an illustrative simulation example are provided to elaborate the stochastic processes of the method. An industrial case study, from a pipe fabrication company in Alberta, Canada, is presented to demonstrate the feasibility and applicability of the proposed credible interval estimation methods. Results of the case study indicate that both solutions can accurately and reliably serve the nonconforming quality inference purpose. This research can be implemented as a decision-making tool for credible interval estimation and will provide valuable support for understanding and improving quality performance of automated, nonconforming quality control processes.
机译:本文提出了一种基于贝叶斯统计的解析解和一种基于马尔可夫链蒙特卡洛(MCMC)方法的数值解来估计分数不符合项的可信区间。两种解决方案都可提供对采样不确定度的更准确,可靠和可解释的估计,并可用于改进自动化,不合格的质量管理系统的功能。为了揭示固有的数学机制如何作用于解析解决方案,提供了带有计算示例的逐步证明。对于数值解,提供了专门的Metropolis-Hastings算法和一个说明性的仿真示例,以详细说明该方法的随机过程。来自加拿大艾伯塔省的一家管道制造公司的工业案例研究被展示出来,以证明所提出的可信区间估计方法的可行性和适用性。案例研究的结果表明,这两种解决方案都可以准确,可靠地满足不合格质量推断的目的。这项研究可以作为可靠的区间估计的决策工具来实施,并且将为理解和改进自动化,不合格品质量控制流程的质量性能提供宝贵的支持。

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