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An interactive fuzzy satisficing method based on fractile criterion optimization for multiobjective stochastic integer programming problems

机译:基于分数准则优化的交互式模糊满足多目标随机整数规划方法

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In this paper, we focus on multiobjective integer programming problems involving random variable coefficients in objective functions and constraints. Using the concept of chance constrained conditions, such multiobjective stochastic integer programming problems are transformed into deterministic ones based on the fractile criterion optimization model. As a fusion of stochastic programming and fuzzy one, we introduce fuzzy goals representing the ambiguity of the decision maker's judgments into them and define M-0-efficiency, a new concept of efficient solution, as a fusion of stochastic approaches and fuzzy ones. Then, we construct an interactive fuzzy satisficing method using genetic algorithms to derive a satisficing solution for the decision maker which is guaranteed to be M-0-efficient by updating the reference membership levels. Finally, the efficiency of the proposed method is demonstrated through numerical experiments.
机译:在本文中,我们关注于目标函数和约束中涉及随机变量系数的多目标整数规划问题。利用机会约束条件的概念,基于分形准则优化模型,将这种多目标随​​机整数规划问题转化为确定性问题。作为随机规划和模糊规划的融合,我们将代表决策者判断模糊性的模糊目标引入其中,并定义M-0效率(一种有效解决方案的新概念),作为随机规划和模糊规划的融合。然后,我们使用遗传算法构造了一种交互式模糊满足方法,以为决策者提供满足要求的解决方案,该解决方案可以通过更新参考成员级别来保证M-0效率。最后,通过数值实验证明了该方法的有效性。

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