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Authors:
Pritzkau, Albert; Blanc, Olivier; Geierhos, Michaela; Schade, Ulrich 
Document type:
Konferenzbeitrag / Conference Paper 
Title:
NLytics at CheckThat! 2022: Hierarchical multi-class fake news detection of news articles exploiting the topic structure 
Collection editors:
Faggioli, Guglielmo; Ferro, Nicola; Hanbury, Allan; Potthast, Martin 
Title of conference publication:
Proceedings of the Working Notes of CLEF 2022 - Conference and Labs of the Evaluation Forum 
Subtitle of conference publication:
Bologna, Italy, September 5th to 8th, 2022 
Series title:
CEUR Workshop Proceedings 
Series volume:
3180 
Conference title:
Conference and Labs of the Evaluation Forum (13., 2022, Bologna) 
Venue:
Bologna, Italy 
Year of conference:
2022 
Date of conference beginning:
05.09.2022 
Date of conference ending:
08.09.2022 
URL conference paper:
Year:
2022 
Pages from - to:
629-648 
Language:
Englisch 
Keywords:
Sequence Classification ; Deep Learning ; Transformers ; RoBERTa ; Longformer ; Topic modeling 
Abstract:
The following system description presents our approach to the detection of fake news in texts. The given task has been framed as a multi-class classification problem. In a multi-class classification problem, each input chunk is assigned one of several class labels. To dissect content patterns in the training data, we made use of topic modeling. Topic modeling techniques such as Latent Dirichlet Allocation (LDA) are unsupervised algorithms that pick up on patterns and provide an estimate of wha...    »
 
ISBN:
1613-0073 
Department:
Fakultät für Informatik 
Institute:
INF 7 - Institut für Datensicherheit 
Chair:
Geierhos, Michaela 
Research Hub UniBw M:
CODE 
Open Access yes or no?:
Ja / Yes 
Type of OA license:
CC BY 4.0