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Ranking Right-Wing Extremist Social Media Profiles by Similarity to Democratic and Extremist Groups
Hartung, Matthias; Klinger, Roman; Schmidtke, Franziska; u. a. (2017): Ranking Right-Wing Extremist Social Media Profiles by Similarity to Democratic and Extremist Groups, in: Alexandra Balahur, Saif M. Mohammad, Erik van der Goot, u. a. (Hrsg.), Proceedings of the 8th Workshop on Computational Approaches to Subjectivity, Sentiment and Social Media Analysis, Association for Computational Linguistics, S. 24–33, doi: 10.18653/v1/W17-5204.
Faculty/Chair:
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Title of the compilation:
Proceedings of the 8th Workshop on Computational Approaches to Subjectivity, Sentiment and Social Media Analysis
Editors:
Conference:
8th Workshop on Computational Approaches to Subjectivity, Sentiment and Social Media Analysis ; Copenhagen, Denmark
Publisher Information:
Year of publication:
2017
Pages:
Language:
English
DOI:
Abstract:
Social media are used by an increasing number of political actors. A small subset of these is interested in pursuing extremist motives such as mobilization, recruiting or radicalization activities. In order to counteract these trends, online providers and state institutions reinforce their monitoring efforts, mostly relying on manual workflows. We propose a machine learning approach to support manual attempts towards identifying right-wing extremist content in German Twitter profiles. Based on a fine-grained conceptualization of right-wing extremism, we frame the task as ranking each individual profile on a continuum spanning different degrees of right-wing extremism, based on a nearest neighbour approach. A quantitative evaluation reveals that our ranking model yields robust performance (up to 0.81 F1 score) when being used for predicting discrete class labels. At the same time, the model provides plausible continuous ranking scores for a small sample of borderline cases at the division of right-wing extremism and New Right political movements.
GND Keywords: ;
Social Media
Maschinelles Lernen
Keywords:
Social Media Profiles
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Peer Reviewed:
Yes:
International Distribution:
Yes:
Open Access Journal:
Yes:
Type:
Conferenceobject
Activation date:
March 13, 2024
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https://fis.uni-bamberg.de/handle/uniba/93975