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Novel Three-Way Decisions Models with Multi-Granulation Rough Intuitionistic Fuzzy Sets

机译:多粒度粗糙直觉模糊集的新型三向决策模型

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The existing construction methods of granularity importance degree only consider the direct influence of single granularity on decision-making; however, they ignore the joint impact from other granularities when carrying out granularity selection. In this regard, we have the following improvements. First of all, we define a more reasonable granularity importance degree calculating method among multiple granularities to deal with the above problem and give a granularity reduction algorithm based on this method. Besides, this paper combines the reduction sets of optimistic and pessimistic multi-granulation rough sets with intuitionistic fuzzy sets, respectively, and their related properties are shown synchronously. Based on this, to further reduce the redundant objects in each granularity of reduction sets, four novel kinds of three-way decisions models with multi-granulation rough intuitionistic fuzzy sets are developed. Moreover, a series of concrete examples can demonstrate that these joint models not only can remove the redundant objects inside each granularity of the reduction sets, but also can generate much suitable granularity selection results using the designed comprehensive score function and comprehensive accuracy function of granularities.
机译:现有的粒度重要性程度构建方法仅考虑单个粒度对决策的直接影响;但是,在进行粒度选择时,他们忽略了其他粒度的联合影响。在这方面,我们有以下改进。首先,针对上述问题,在多种粒度中定义了一种更为合理的粒度重要性度计算方法,并给出了基于该方法的粒度降低算法。此外,本文将乐观和悲观的多粒度粗糙集的约简集与直觉模糊集相结合,并同步显示了它们的相关性质。在此基础上,为进一步减少约简集每个粒度中的冗余对象,开发了四种新型的多粒度粗糙直觉模糊集三通决策模型。此外,一系列具体实例可以证明这些联合模型不仅可以去除约简集每个粒度内的冗余对象,而且可以利用设计的粒度综合得分函数和粒度综合精度函数生成非常合适的粒度选择结果。

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