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Influence of co-authorship networks in the research impact: Ego network analyses from Microsoft Academic Search

机译:共同作者网络在研究影响中的影响:来自Microsoft Academic Search的自我网络分析

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摘要

The main objective of this study is to analyze the relationship between research impact and the structural properties of co-author networks. A new bibliographic source, Microsoft Academic Search, is introduced to test its suitability for bibliometric analyses. Citation counts and 500 one-step ego networks were extracted from this engine. Results show that tiny and sparse networks - characterized by a high Betweenness centrality and a high Average path length - achieved more citations per document than dense and compact networks -described by a high Clustering coefficient and a high Average degree. According to disciplinary differences, Mathematics, Social Sciences and Economics & Business are the disciplines with more sparse and tiny networks; while Physics, Engineering and Geosciences are characterized by dense and crowded networks. This suggests that in sparse ego networks, the central author have more control on their collaborators being more selective in their recruitment and concluding that this behaviour has positive implications in the research impact.
机译:本研究的主要目的是分析研究影响与合著者网络的结构性质之间的关系。引入了新的书目来源Microsoft Academic Search,以测试其对书目分析的适用性。从该引擎中提取了引文计数和500个单步自我网络。结果表明,具有较高的“中间性”中心性和较高的“平均路径长度”的小型且稀疏的网络,与具有密集度和较高的“聚类系数”的密集型和紧凑型网络相比,每个文档的引用率更高。根据学科差异,数学,社会科学和经济与商业是学科,网络稀疏且规模较小。物理,工程和地球科学的特点是网络密集且拥挤。这表明在稀疏的自我网络中,中心作者可以更好地控制他们的合作者在招募中的选择性,并认为这种行为对研究产生了积极的影响。

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