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Robust Consensus: A New Measure for Multicriteria Robust Group Decision Making Problems Using Evolutionary Approach

机译:强大的共识:使用进化方法的多轨道鲁棒组决策的新措施

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In fuzzy group decision making problems, we often use multiobjective evolutionary optimization. The optimizers search through the whole search space and provide a set of nondominated solutions. But, sometimes the decision makers express their prior preferences using fuzzy numbers. In this case, the optimizers search in the preferred soft region and provide solutions with higher consensus. If perturbation in the decision variable space is unavoidable, we also need to search for robust solutions. Again, this perturbation affects the degree of consensus of the solutions. This leads to search for solutions those are robust to their degree of consensus. In this work, we address these issues by redefining consensus and proposing a new measure called robust consensus. We also provide a reformulation mechanism for multiobjective optimization problems. Our experimental results show that the proposed method is capable of finding robust solutions having robust consensus in the specified soft region.
机译:在模糊组决策中存在问题,我们经常使用多目标进化优化。优化器通过整个搜索空间搜索并提供一组非目标解决方案。但是,有时决策者使用模糊数表示先前的偏好。在这种情况下,优化器在优选的软区域中搜索并提供具有更高共识的解决方案。如果判定变量空间中的扰动是不可避免的,我们还需要搜索强大的解决方案。同样,这种扰动会影响解决方案的共识程度。这导致寻找解决方案对其共识的稳健性的解决方案。在这项工作中,我们通过重新定义共识并提出一种名为强大共识的新措施来解决这些问题。我们还为多目标优化问题提供了一种重新制定机制。我们的实验结果表明,该方法能够在特定软区域中寻找具有稳健共识的强大解决方案。

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