一种利用粗糙集和中性关系映射处理不确定性的新模型

Megha Kumar, Swati Aggarwal
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引用次数: 1

摘要

粗糙集理论是研究不确定性知识的一种新的数学方法。使用粗糙集的主要优点是它不需要任何额外的或关于数据的先验信息。本文讨论了粗糙集与关系映射的混合模型,以表示数据集的一致属性集与决策类之间的映射。在7个数据集上对该模型进行了测试,利用粗糙集得到决策属性的重要约简,并利用关系映射将约简映射到决策类上。关系图的两个扩展:模糊关系图和中性关系图在数据集中实现,并展示了通过考虑不确定关系,中性关系图与模糊关系图相比如何提供更好的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel model to handle uncertainity using Rough sets and Neutrosophic relational maps
Rough set theory is a new mathematical approach for uncertain knowledge. The main advantage of using rough sets is that it does not need any additional or prior information about data. This paper discusses about the hybrid model of rough sets with relational maps to represent the mapping between consistent set of attributes of the dataset to decision classes. The proposed model is tested on 7 led dataset where the rough sets are implemented to get the important reducts of the attributes for decision making and relational maps are used to map reducts with the decision classes. The two extensions of relational maps: Fuzzy relational maps and Neutrosophic relational maps are implemented in the dataset and is shown how Neutrosophic relational maps gives better results as compared to Fuzzy relational maps by considering indeterminate relations.
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