Clustering Scientometrics of Computer Science Journals for Subarea Decomposition

被引:0
|
作者
Kumari, Priti [1 ]
Kumar, Rajeev [1 ]
机构
[1] Jawaharlal Nehru Univ, Sch Comp & Syst Sci, Data Knowledge D2K Lab, New Delhi 110067, India
关键词
Scientometrics; Bibliometrics; Publications; K-means; Clustering; Computer Science; Subarea Indicators; Machine Learning; BIBLIOMETRIC INDICATORS; IMPACT; CITATIONS; METRICS; INDEX;
D O I
10.5530/jscires.12.2.034
中图分类号
G25 [图书馆学、图书馆事业]; G35 [情报学、情报工作];
学科分类号
1205 ; 120501 ;
摘要
Scientometrics indicators vary widely across subareas of the Computer Science (CS) discipline. Most researchers have previously analyzed scientometrics data specific to a particular subfield or a few subfields. More popular subareas lead to high scientometrics, and others have lower values. This work considers seven diversified CS subareas and six commonly used scientometrics indicators. First, we study the varying range of chosen scientometrics indicators of various subareas of the CS discipline. We explore the correlation patterns of these six indicators. Then, we consider a few combinations of these indicators and apply K-means clustering to decompose the pattern space. Correlation findings indicate that though the highly correlated indicators vary for most subfields, no single indicator can be considered equally suitable for all the subareas. The K-means clustering results show distinctive patterns across subfields, which are stable across K. The clustered subfield-specific indicators are quite distinct across subfields. This knowledge can be used as a signature for partitioning the subarea-specific indicators.
引用
收藏
页码:383 / 394
页数:12
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