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A Distance-Based Method for Preference Information Retrieval in Paired Comparisons

机译:基于距离信息检索的基于距离的比较方法

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The pairwise comparison method is an interesting technique for assessing priority weights for a finite set of objects. In fact, some web search engines use this inference tool to quantify the importance of a set of web sites. In this paper we deal with the problem of incomplete paired comparisons. Specifically, we focus on the problem of retrieving preference information (as priority weights) from incomplete pairwise comparison matrices generated during a group decision-making process. The proposed methodology solves two problems simultaneously: the problem of deriving preference weights when not all data are available and the implicit consensus problem. We consider an approximation methodology within a flexible and general distance framework for this purpose.
机译:成对比较方法是用于评估有限组对象的优先级权重的有趣技术。实际上,某些网络搜索引擎使用此推理工具来量化一组网站的重要性。在本文中,我们处理了不完整的配对比较问题。具体地,我们专注于从组决策过程期间生成的不完整成对比较矩阵检索偏好信息(作为优先级权重)的问题。该提出的方法同时解决了两个问题:当并非所有数据都有时导出偏好权重的问题以及隐性共识问题。我们考虑为此目的灵活和一般距离框架内的近似方法。

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