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Optimal solution of multi-objective linear programming with inf-→ fuzzy relation equations constraint

机译:带inf→模糊关系方程约束的多目标线性规划的最优解

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摘要

This paper aims to solve the problem of multiple-objective linear optimization model subject to a system of inf-→ composition fuzzy relation equations, where → is R-, S- or QL-implications generated by continuous Archimedean t-norm (s-norm). Since the feasible domain of inf-→ relation equations constraint is nonconvex, these traditional mathematical programming techniques may have difficulty in computing efficient solutions for this problem. Therefore, we firstly investigate the solution sets of a system of inf-→ composition fuzzy relation equations in order to characterize the feasible domain of this problem. And then employing the smallest solution of constraint equation, we yield the optimal values of linear objective functions subject to a system of inf-→ composition fuzzy relation equations. Secondly, the two-phase approach is applied to generate an efficient solution for the problem of multiple-objective linear optimization model subject to a system of inf-→composition fuzzy relation equations. Finally, a procedure is represented to compute the optimal solution of multiple-objective linear programming with inf-→ composition fuzzy relation equations constraint. In addition, three numerical examples are provided to illustrate the proposed procedure.
机译:本文旨在解决基于inf-→成分模糊关系方程组的多目标线性优化模型的问题,其中→是连续阿基米德t范数(s-norm)生成的R-,S-或QL蕴涵)。由于inf-→关系方程约束的可行域是非凸的,因此这些传统的数学编程技术可能难以计算出该问题的有效解。因此,我们首先研究一个inf-→成分模糊关系方程组的解集,以刻画该问题的可行域。然后采用约束方程的最小解,得到线性目标函数的最优值,该线性目标函数服从inf-→成分模糊关系方程组。其次,采用两阶段方法,针对由f→组合模糊关系方程组组成的多目标线性优化模型问题产生有效的解决方案。最后,给出了一种计算具有inf-→成分模糊关系方程约束的多目标线性规划最优解的过程。此外,提供了三个数值示例来说明建议的过程。

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