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Analysis of the benefit generated by using fuzzy numbers in a TOPSIS model developed for machine tool selection problems

机译:分析针对机床选择问题而开发的TOPSIS模型中使用模糊数产生的收益

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Selection of the appropriate machine tools for a manufacturing company is a very important but at the same time a complex and difficult problem because of the availability of wide-ranging alternatives and similarities among machine tools. In the literature, various machine tool selection procedures are developed. The developed procedures mainly use Multi Criteria Decision Making (MCDM) methods. In the literature, fuzzy MCDM models, in which fuzzy numbers are used instead of crisp values, are proposed to deal with the vagueness and imprecision inherent in the machine tool selection problem. Although, the available studies in the literature developed various fuzzy models, they do not propose any approaches to measure the benefit generated by incorporating fuzziness in their selection models. This paper aims to fill this gap by trying to quantify the level of benefit provided by employing the fuzzy numbers in the MCDM models. Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) is used as the MCDM approach to rank the machine tools in this paper. In the paper, by increasing the fuzziness level steadily in the fuzzy numbers, the obtained machine tool rankings are compared with the ranking obtained with the crisp values. The statistical significance of the differences between the ranks is calculated using Spearman's rank-correlation coefficient. It can be observed from the results that as the vagueness and imprecison increases, fuzzy numbers instead of crisp numbers should be used. On the other hand, in sitiuations where there is a low level of fuzziness or the average value of the fuzzy number can be guessed, using crisp numbers will be more than adequate.
机译:对于制造公司而言,选择合适的机床非常重要,但同时又是一个复杂而困难的问题,因为机床之间存在广泛的替代选择和相似之处。在文献中,开发了各种机床选择程序。开发的过程主要使用多标准决策(MCDM)方法。在文献中,提出了模糊MCDM模型,其中使用模糊数代替清晰的值,以处理机床选择问题中固有的模糊性和不精确性。尽管文献中的可用研究开发了各种模糊模型,但是他们没有提出任何方法来衡量通过将模糊性纳入其选择模型而产生的收益。本文旨在通过尝试量化在MCDM模型中采用模糊数所提供的收益水平来填补这一空白。本文通过类似于理想解决方案的订单偏好技术(TOPSIS)作为MCDM方法对机床进行排名。在本文中,通过稳定地增加模糊数的模糊程度,将获得的机床等级与以清晰值获得的等级进行比较。使用Spearman的等级相关系数计算等级之间差异的统计显着性。从结果可以看出,随着模糊性和不准确性的增加,应使用模糊数而不是清晰数。另一方面,在模糊程度较低或可以猜出模糊数平均值的情况下,使用清晰数将绰绰有余。

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