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Semantic-driven bibliometric techniques co-citation analysis

机译:语义驱动的伯格计量技术共同分析

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Co-citation analysis can be exploited as a bibliometric technique used for mining information on the relationships between scientific papers. Proposed methods rely, however, on co-citation counting techniques that slightly take the semantic aspect into consideration. The present study proposes a semantic driven bibliometric techniques for co-citation analysis through measuring the semantic similarity (SS) between the titles of co-cited papers. Several computational measures rely on knowledge resources to quantify the semantic similarity, such as the WordNet “is a” taxonomy. Our proposal analyzes the SS between the titles of co-cited papers using word-based SS measures. Two major analytical experiments are performed: the first includes the benchmarks designed for testing word-based SS measures through the correlation coefficients for expressing the measures efficiency; the second exploits the dataset DBLP 1 citation network. As a result, the semantic similarity measures shows good performance in relation with the human judgements compared to automatic provided estimated similarities. Therefore, the lexical similarity can be consequently used for the automatic assessment of similarity between co-cited papers. The analysis of highly repeated co-citations demonstrates that the different SS measures display almost similar behaviours, with slight differences due to the distribution of the provided SS values. Furthermore, we note a low percentage of similar referred papers into the co-citations.
机译:共引用分析可以被利用为用于采矿信息的生物计量技术,用于挖掘科学论文之间的关系。然而,所提出的方法依赖于协助计数技术略微考虑语义方面。本研究提出了一种通过测量共同纸张标题之间的语义相似性(SS)来协助分析的语义驱动的生物毛管测量技术。几种计算措施依赖知识资源来量化语义相似性,例如Wordnet“是”分类法“。我们的提案利用基于文字的SS措施分析了共同纸张标题之间的SS。进行了两个主要的分析实验:第一个包括用于通过相关系数测试基于词的SS测量的基准,以表达措施效率;第二个利用DataSet DBLP 1引文网络。结果,与自动提供的估计相似度相比,语义相似度测量与人类判断有关的良好性能。因此,引用相似性可以用于自动评估共同纸之间的相似性。对高度重复的CI-CITATIONS的分析表明,不同的SS测量措施几乎类似的行为,由于提供的SS值的分布,由于提供的SS值的分布而有轻微的差异。此外,我们注意到与共同引用相似的类似文件的百分比。

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