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OBJECT-PARAMETER APPROACHES TO PREDICTING UNKNOWN DATA IN AN INCOMPLETE FUZZY SOFT SET

机译:在不完整的模糊软件集中预测未知数据的对象参数方法

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The research on incomplete fuzzy soft sets is an integral part of the research on fuzzy soft sets and has been initiated recently. In this work, we first point out that an existing approach to predicting unknown data in an incomplete fuzzy soft set suffers from some limitations and then we propose an improved method. The hidden information between both objects and parameters revealed in our approach is more comprehensive. Furthermore, based on the similarity measures of fuzzy sets, a new adjustable object-parameter approach is proposed to predict unknown data in incomplete fuzzy soft sets. Data predicting converts an incomplete fuzzy soft set into a complete one, which makes the fuzzy soft set applicable not only to decision making but also to other areas. The compared results elaborated through rate exchange data sets illustrate that both our improved approach and the new adjustable object-parameter one outperform the existing method with respect to forecasting accuracy.
机译:不完全模糊软集的研究是模糊软集研究不可或缺的一部分,并且已于近期启动。在这项工作中,我们首先指出,在不完整的模糊软集中预测未知数据的现有方法存在一些局限性,然后提出了一种改进的方法。我们的方法揭示的对象和参数之间的隐藏信息更加全面。此外,基于模糊集的相似性度量,提出了一种新的可调整对象参数方法来预测不完整模糊软集中的未知数据。数据预测将不完整的模糊软件集转换为完整的模糊软件集,这使得模糊软件集不仅适用于决策制定,而且适用于其他领域。通过速率交换数据集详细阐述的比较结果表明,在预测准确性方面,我们的改进方法和新的可调整对象参数均优于现有方法。

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