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Fuzzy nonlinear programming approach to the evaluation of manufacturing processes

机译:模糊非线性规划方法在制造过程评估中的应用

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The quality of a product produced by a manufacturing process should be able to lie within an acceptable variability around its target value. The signal-to-noise (S/N) ratio, served as the objective function for optimization in Taguchi methods, is a useful tool for the evaluation of manufacturing processes. Most studies and applications focus on the calculation of S/N ratios with deterministic observations, and the literature receives little attention to the consideration of S/N ratio with fuzzy observations. This paper develops a fuzzy nonlinear programming model to calculate the fuzzy S/N ratio for the assessment of the manufacturing processes with fuzzy observations. A pair of nonlinear fractional programs is formulated to calculate the lower and upper bounds of the fuzzy S/N ratio. By model reduction and variable substitutions, this pair of nonlinear fractional programs is transformed into quadratic programs. Solving the transformed quadratic programs, we obtain the optimum solutions of the lower bound and upper bound fuzzy S/N ratio. By deriving the ranking indices of the fuzzy S/N ratios of manufacturing process alternatives, the evaluation result of the alternatives is obtained.
机译:通过制造过程生产的产品的质量应能够在其目标值附近的可接受的范围内。信噪比(S / N)是Taguchi方法中用于优化的目标函数,是评估制造过程的有用工具。大多数研究和应用程序都专注于使用确定性观测值计算信噪比,而文献很少关注使用模糊观测值来考虑信噪比。本文建立了一个模糊的非线性规划模型来计算模糊的信噪比,以利用模糊的观察评估制造过程。制定了一对非线性分数程序,以计算模糊信噪比的上下限。通过模型简化和变量替换,这对非线性分数程序被转换为二次程序。求解变换后的二次程序,我们获得了上下界模糊信噪比的最佳解。通过推导制造工艺替代品的模糊信噪比的等级指数,获得替代品的评估结果。

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