A classification of Antifa Twitter accounts based on social network mapping and linguistic analysis

2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Eoin Lenihan
Author(s):  
Jonathan Mendieta ◽  
Gabriela Baquerizo ◽  
Mónica Villavicencio ◽  
Carmen Vaca

Author(s):  
P. I. Banokin ◽  
◽  
E. E. Luneva ◽  
A. A. Yefremov ◽  
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Keyword(s):  

Author(s):  
Mousumi Bhattacharya ◽  
Christopher Huntley

Recent developments in social network mapping software have opened up new opportunities for human resource management (HRM). In this chapter we discuss how social network mapping information may provide critical inputs to managers for increasing the effectiveness of their HRM programs.


Author(s):  
Yuriy V. Kostyuchenko ◽  
Maxim Yuschenko

Paper aimed to consider of approaches to big data (social network content) utilization for understanding of social behavior in the conflict zones, and analysis of dynamics of illegal armed groups. Analysis directed to identify of underage militants. The probabilistic and stochastic methods of analysis and classification of number, composition and dynamics of illegal armed groups in active conflict areas are proposed. Data of armed conflict – antiterrorist operation in Donbas (Eastern Ukraine in the period 2014-2015) is used for analysis. The numerical distribution of age, gender composition, origin, social status and nationality of child militants among illegal armed groups has been calculated. Conclusions on the applicability of described method in criminological practice, as well as about the possibilities of interpretation of obtaining results in the context of study of terrorism are proposed.


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