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Authors:
Blanc, Olivier; Pritzkau, Albert; Schade, Ulrich; Geierhos, Michaela 
Document type:
Konferenzbeitrag / Conference Paper 
Title:
CODE at CheckThat! 2022: Multi-class fake news detection of news articles with BERT 
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:
444-455 
Language:
Englisch 
Keywords:
Sequence Classification ; Deep Learning ; Transformers ; BERT 
Abstract:
The following system description presents our approach for detecting fake news in texts. The given task was formulated as a multi-class classification problem. Our approach is based on the combination of two BERT-based classification models: One model determines whether the textual content is relevant to the task; the second model assigns it a truth value. Starting from a pre-trained model for language representation, we fine-tuned these models on the given classification task in supervised tra...    »
 
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