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A Novel Intelligent Technique for Product Acceptance Process Optimization on the Basis of Misclassification Probability in the Case of Log-Location-Scale Distributions

机译:对数-位置-比例分布情况下基于错误分类概率的产品接受过程优化的智能技术

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In this paper, to determine the optimal parameters of the product acceptance process under parametric uncertainty of underlying models, a new intelligent technique for optimization of product acceptance process on the basis of misclassification probability is proposed. It allows one to take into account all possible situations that may occur when it is necessary to optimize the product acceptance process. The technique is based on the pivotal quantity averaging approach (PQAA) which allows one to eliminate the unknown parameters from the problem and to use available statistical information as completely as possible. It is conceptually simple and easy to use. One of the most important features of the proposed new intelligent technique for optimization of product acceptance process on the basis of misclassification probability is its great generality, enabling one to optimize diverse problems within one unified framework. To illustrate the proposed technique, the case of log-location-scale distributions is considered under parametric uncertainty.
机译:为了确定潜在模型参数不确定性下的产品验收过程的最优参数,提出了一种基于分类错误概率的智能化产品验收过程智能化新技术。它使人们可以考虑到有必要在优化产品验收过程时发生的所有可能情况。该技术基于关键数量平均方法(PQAA),该方法允许从问题中消除未知参数,并尽可能完全地使用可用的统计信息。它在概念上简单易用。所提出的用于基于错误分类概率优化产品验收过程的新智能技术的最重要特征之一是它的广泛通用性,使人们能够在一个统一的框架内优化各种问题。为了说明所提出的技术,在参数不确定性下考虑了对数定位规模分布的情况。

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