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首页> 外文期刊>Journal of Classification >The Academic Journal Ranking Problem: A Fuzzy-Clustering Approach
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The Academic Journal Ranking Problem: A Fuzzy-Clustering Approach

机译:学术期刊排名问题:一种模糊聚类方法

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摘要

The Academic Journal Ranking Problem consists in formulating a formal assessment of scientific journals. An outcome variable must be constructed that allows valid journal comparison, either as a set of tiers (ordered classes) or as a numerical index. But part of the problem is also to devise a procedure to get this outcome, that is, how to get and use relevant data coming from expert opinions or from citations database. We propose a novel approach to the problem that applies fuzzy cluster analysis to peer reviews and opinion surveys. The procedure is composed of two steps: the first is to collect the most relevant qualitative assessments from international organizations (for example, the ones available in the Harzing database) and, as inductive analysis, to apply fuzzy clustering to determine homogeneous journal classes; the second deductive step is to determine the hidden logical rules that underlies the classification, using a classification tree to reproduce the same patterns of the first step.
机译:学术期刊排名问题在于制定对科学期刊的正式评估。必须构造一个结果变量,以允许进行有效的日记帐比较,可以作为一组层(有序类)或作为数字索引。但是,问题的一部分还在于设计一种程序来获得此结果,即如何获取和使用来自专家意见或引文数据库的相关数据。我们提出了一种解决该问题的新颖方法,将模糊聚类分析应用于同行评议和意见调查。该程序包括两个步骤:第一步是从国际组织收集最相关的定性评估(例如,Harzing数据库中可用的评估),并且作为归纳分析,应用模糊聚类确定同类期刊类别。第二个演绎步骤是使用分类树来复制与第一步相同的模式,从而确定构成分类基础的隐藏逻辑规则。

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