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TDIFS: Two dimensional intuitionistic fuzzy sets

机译:TDIFS:二维直觉模糊套装

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摘要

Intuitionistic fuzzy sets (IFS) are widely used in multi-attribute decision-making (MADM) because of its strong ability to express uncertainty in terms of membership degree, non-membership degree and hesitancy degree. Additionally, Z-number is a novel two-dimension framework to handle uncertainty problems by introducing the reliability of expert evaluation. However, a simple index in the framework of Z-number is not enough to express the evaluation of experts. In order to integrate the uncertainty and reliability expressions of IFS, inspired by Z-number, we propose a two-dimensional intuitionistic fuzzy set (TDIFS) model in this paper. In TDIFS model, the first dimensionality is the evaluation data from experts with regard to attributes, and the second dimensionality represents the reliability of expert in terms of the first component of TDIFS. Moreover, for each dimensionality, it is expressed as an ordered pair of intuitionistic fuzzy set, which can carry more information than a simple index. Furthermore, a novel combination rule is proposed for fusing TDIFSs. The TDIFS combination rule fully integrates expert evaluation and expert reliability, where it can reduce the uncertainty during combination process, so that more convincing results can be obtained. In addition, a new MADM method is proposed based on TDIFS model and TDIFS combination rule. Through comparing with the existing methods in an application of pattern recognition, it is demonstrated that the proposed MADM method is more effective, which can achieve higher robustness and better recognition results.
机译:直观的模糊集(IFS)被广泛用于多属性决策(MADM),因为它在会员学位,非隶属度和犹豫学位方面表达不确定性的能力很强。另外,Z-Number是一种新的二维框架,通过引入专家评估的可靠性来处理不确定性问题。然而,Z-Number框架中的简单索引是不足以表达对专家的评估。为了整合IFS的不确定性和可靠性表达式,受到Z-Number的启发,我们提出了本文的二维直觉模糊集(TDIFS)模型。在TDIFS模型中,第一维度是来自属性专家的评估数据,第二维度代表了TDIFS的第一个组成部分的专家的可靠性。此外,对于每个维度,它被表示为有序对直觉模糊集合,其可以携带比简单索引更多的信息。此外,提出了一种用于融合TDIFSS的新型组合规则。 TDIFS组合规则完全集成了专家评估和专业可靠性,在这种情况下,可以降低组合过程中的不确定性,从而可以获得更令人信服的结果。此外,基于TDIFS模型和TDIFS组合规则提出了一种新的MADM方法。通过与模式识别的应用中的现有方法进行比较,证明了拟议的MADM方法更有效,这可以实现更高的鲁棒性和更好的识别结果。

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