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首页> 外文期刊>Procedia Computer Science >A Post-Pareto Approach for Multi-Objective Decision Making Using a Non-Uniform Weight Generator Method
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A Post-Pareto Approach for Multi-Objective Decision Making Using a Non-Uniform Weight Generator Method

机译:使用非均匀权重生成器方法的后帕累托多目标决策方法

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摘要

There exist two general approaches to solve multiple objective problems. The first approach involves the aggregation of all the objective functions into a single composite objective function. Mathematical methods such as the weighted sum method, goal programming, or utility functions are methods that pertain to this general approach. The output of this method is a single solution. On the other hand, we have the multiple objective evolutionary algorithms that offer the decision maker a set of trade off solutions usually called non dominated solutions or, Pareto-optimal solutions. This set is usually very large and the decision maker faces the problem of reducing the size of this set to have a manageable number of solutions to analyze. This paper presents a post- Pareto approach to prune the non-dominated set of solutions obtained by multiple objective evolutionary algorithms. The proposed approach uses a non-uniform weight generator method to reduce the size of the Pareto-optimal set. A pair of examples is presented to show the performance of the method.
机译:存在两种解决多个目标问题的通用方法。第一种方法涉及将所有目标函数聚合为单个复合目标函数。诸如加权和法,目标编程或效用函数之类的数学方法就是与该通用方法有关的方法。此方法的输出是单个解决方案。另一方面,我们拥有多目标进化算法,可为决策者提供一系列折衷的解决方案,通常称为非支配解或帕累托最优解。该集合通常非常大,决策者面临缩小该集合大小以使其具有可管理数量的解决方案的问题。本文提出了一种后帕累托方法,以修剪通过多目标进化算法获得的非支配解集。所提出的方法使用非均匀权重生成器方法来减小帕累托最优集的大小。给出了两个例子来说明该方法的性能。

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