Decision making in fuzzy reasoning to solve a backorder economic order quantity model

S. De, G. C. Mahata
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引用次数: 0

Abstract

Fuzzy reasoning is the subject of fuzzy system where the fuzzy set is characterized by the randomization of the variable associated in the fuzzy set itself. It is the first-time application of fuzzy reasoning over the backorder economic order quantity (EOQ) inventory management problem. We first define the fuzzy reasoning membership function through the use of L-fuzzy number and possibility theory on fuzzy numbers. Considering the holding cost, set up cost, backordering cost and demand rate as reasoning based fuzzy number, we have constructed a dual fuzzy mathematical problem. Then this problem has been solved over the dual feasible space which is associated to the aspiration level and the fuzzy approximation constant. Numerical study reveals the superiority of the proposed method with respect to the crisp solution as well as general fuzzy solution. Sensitivity analysis and graphical illustrations have also been done to justify the novelty of this article.
用模糊推理方法求解欠货经济订货数量模型的决策
模糊推理是模糊系统的主题,其中模糊集的特征是模糊集本身中相关变量的随机化。本文首次将模糊推理应用于欠货经济订货量库存管理问题。首先利用l -模糊数和模糊数的可能性理论定义了模糊推理隶属函数。将持有成本、设置成本、滞销成本和需求率作为基于推理的模糊数,构造了一个二元模糊数学问题。然后在与期望水平和模糊逼近常数相关的对偶可行空间上求解了该问题。数值研究表明,该方法相对于清晰解和一般模糊解具有优越性。敏感性分析和图形插图也做了证明这篇文章的新颖性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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