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A comparison of the Web of Science and publication-level classification systems of science

机译:Web of Science与出版物级别的科学分类系统的比较

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In this paper, we propose a new criterion for choosing between a pair of classification systems of science that assign publications (or journals) to a set of clusters. Consider the standard target (cited-side) normalization procedure in which cluster mean citations are used as normalization factors. We recommend system A over system B whenever the standard normalization procedure based on system A performs better than the standard normalization procedure based on system B. Performance is assessed in terms of two double tests- one graphical, and one numerical- that use both classification systems for evaluation purposes. In addition, a pair of classification systems is compared using a third, independent classification system for evaluation purposes. We illustrate this strategy by comparing a Web of Science journal-level classification system, consisting of 236 journal subject categories, with two publication-level algorithmically constructed classification systems consisting of 1363 and 5119 clusters. There are two main findings. Firstly, the second publication-level system is found to dominate the first. Secondly, the publication-level system at the highest granularity level and the Web of Science journal-level system are found to be non-comparable. Nevertheless, we find reasons to recommend the publication-level option. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在本文中,我们提出了一种新的标准,用于在将出版物(或期刊)分配给一组聚类的科学分类系统之间进行选择。考虑标准目标(引用方)归一化程序,其中将聚类平均引用用作归一化因子。每当基于系统A的标准归一化程序比基于系统B的标准归一化程序执行得更好时,我们都建议在系统B之上使用系统A。通过两种双重测试(一种图形方法和一种数值方法)对两种分类系统进行评估来评估性能用于评估目的。另外,出于评估目的,使用第三独立分类系统对一对分类系统进行了比较。我们通过比较由236种期刊主题类别组成的Web of Science期刊级分类系统与由1363个和5119个聚类组成的两个出版级算法构建的分类系统,来说明这种策略。有两个主要发现。首先,发现第二个出版物级系统主导了第一个。其次,发现最高粒度级别的发布级别系统和Web of Science期刊级别系统是不可比的。但是,我们发现了推荐发布级别选项的理由。 (C)2016 Elsevier Ltd.保留所有权利。

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