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Optimization Problems and Methods in Quality Control and Improvement

机译:质量控制和改进中的优化问题和方法

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The connection between optimization methods and statistics dates back at least to the early part of the 19th century and encompasses many aspects of applied and theoretical statistics, including hypothesis testing, parameter estimation, model selection, design of experiments, and process control. This paper is an overview of some of the more frequently encountered optimization problems in statistics, with a focus on quality control and improvement. Descriptions of a variety of optimization procedures are given, including direct search methods, mathematical programming algorithms such as the generalized reduced gradient method, and heuristic approaches such as simulated annealing and genetic algorithms. We hope both to stimulate more interaction between the statistics and optimization methodology communities and to create more awareness of the important role that optimization methods play in quality control and improvement.
机译:优化方法与统计数据之间的联系至少可以追溯到19世纪初期,涉及应用统计和理论统计的许多方面,包括假设检验,参数估计,模型选择,实验设计和过程控制。本文概述了统计中一些最常遇到的优化问题,重点是质量控制和改进。给出了各种优化程序的说明,包括直接搜索方法,数学编程算法(例如广义归一化梯度法)以及启发式方法(例如模拟退火和遗传算法)。我们希望既能激发统计和优化方法学界之间的更多互动,又能使人们进一步意识到优化方法在质量控制和改进中的重要作用。

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