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The Parameter Reduction of the Interval-Valued Fuzzy Soft Sets and Its Related Algorithms

机译:区间值模糊软集的参数约简及其相关算法

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摘要

There has been a rapid growth of interest in developing approaches that are capable of dealing with imprecision and uncertainty. To this end, an interval-valued fuzzy soft set (IVFSS) that combines soft set theory with interval-valued fuzzy set theory has been proposed to handle imprecision and uncertainty in applications such as decision-making problems. However, there has been little focus on parameter reduction of the interval-valued fuzzy soft sets, which is significant in decision-making problems. In this paper, we introduce four different definitions of parameter reduction in interval-valued fuzzy soft sets to satisfy different the needs of decision makers. We propose four heuristic algorithms of parameter reduction. Finally, the algorithms are compared and summarized from the aspects of easy degree of finding reduction, applicability, reduction result, exact level for reduction, multiusability, applied situation, and computational complexity. The results of the experiment show that the methods reduce the redundant parameters while preserving certain decision abilities.
机译:对能够处理不精确性和不确定性的方法的兴趣迅速增长。为此,已经提出了一种结合了软集理论和区间值模糊集理论的区间值模糊软集(IVFSS),以处理诸如决策问题之类的应用中的不精确性和不确定性。但是,很少关注区间值模糊软集的参数减少,这在决策问题中很重要。在本文中,我们介绍了区间值模糊软集合中参数约简的四种不同定义,以满足决策者的不同需求。我们提出了四种参数约简的启发式算法。最后,从容易发现约简程度,适用性,约简结果,约简的精确度,可复用性,应用情况和计算复杂性等方面对算法进行了比较和总结。实验结果表明,该方法减少了冗余参数,同时保留了一定的决策能力。

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