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首页> 外文期刊>IEEE Transactions on Reliability >Optimal Defects-Per-Unit Acceptance Sampling Plans Using Truncated Prior Distributions
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Optimal Defects-Per-Unit Acceptance Sampling Plans Using Truncated Prior Distributions

机译:使用截断的先验分布的每单位最佳缺陷验收计划

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Optimal sampling inspection plans for defects per unit with fixed acceptance numbers and limiting quality levels are developed to provide the appropriate protection to customers when the number of nonconformities per sampled item follows a Poisson distribution. The best inspection scheme assures the customer, who has to judge the quality of the submitted material, that a supplier's lot is released only when there is conclusive evidence that it is satisfactory. The underlying integer nonlinear programming problem is formulated and solved in the frequentist setting, and a practically exact approximation to the minimum sample size is presented. Because there is often no reason to assume that the process average is constant, the classical perspective is then extended to those situations in which there is substantial prior information on the supplier's process. A family of generalized truncated gamma models and several restricted maximum entropy distributions satisfying typical constraints are adopted to describe the stochastic fluctuations in the process average. Optimal defects-per-unit acceptance plans are determined by solving the corresponding constrained minimization problems. Lower and upper bounds on the required sample size are deduced in closed-forms. A general procedure based on Taylor series expansions of the operating characteristic function around the mean quality level of the rejectable lots is proposed to derive an explicit, accurate, easily computable approximation to the smallest sample size that provides the required average customer protection. This procedure greatly simplifies the determination of optimal plans from defect or failure count data and prior knowledge, and also requires little prior information, namely the prior mean and variance of the quality level of the rejectable lots, which could be estimated from past data and expert opinions. The suggested methodology is applied to the manufacturing of paper and glass for illustrative purposes- Our approach allows the practitioners to incorporate into the quality analysis a reduced parameter space for the process average. Furthermore, the proposed sampling plans are reasonably insensitive to small disturbances in the prior knowledge on the process average, and the effective use of the available information on the supplier's process provides a more realistic assessment of the actual customer protection, as well as considerable savings in testing time and sample size.
机译:制定了具有固定接受数量和限定质量水平的单位缺陷的最佳抽样检查计划,以在每个抽样项目的不合格品数量遵循泊松分布时为客户提供适当的保护。最佳检查方案可确保必须判断所提交材料质量的客户只有在有确凿证据表明满意时才放开供应商的批次。潜在的整数非线性规划问题是在常识性环境中制定和解决的,并提出了实际的最小样本量近似值。因为通常没有理由假定过程平均数是恒定的,所以将经典的观点扩展到了有关供应商过程的大量先验信息的情况。采用一类广义的截断伽马模型和几个满足典型约束的受限最大熵分布来描述过程平均值中的随机波动。通过解决相应的约束最小化问题,确定最佳的单位缺陷缺陷接收计划。所需样本量的上下限以封闭形式推导。提出了一种基于操作特征函数的泰勒级数展开的通用程序,该运算函数围绕拒收批次的平均质量水平进行推导,以得出对最小样本量的明确,准确,易于计算的近似值,从而提供所需的平均客户保护。该程序极大地简化了根据缺陷或故障计数数据和先验知识确定最佳计划的过程,并且几乎不需要先验信息,即可以根据过去的数据和专家估算出的不合格批次的质量水平的先验平均值和方差。意见。建议的方法应用于纸和玻璃的制造,以作说明之用-我们的方法允许从业人员在质量分析中纳入过程平均值的减少参数空间。此外,拟议的采样计划对过程平均先验知识中的细微扰动相当不敏感,并且有效利用供应商过程中的可用信息可以对实际的客户保护进行更现实的评估,并且可以节省大量成本。测试时间和样本量。

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