Gpachov at CheckThat! 2023: A Diverse Multi-Approach Ensemble for Subjectivity Detection in News Articles
September 13, 2023 ยท Declared Dead ยท ๐ Conference and Labs of the Evaluation Forum
"No code URL or promise found in abstract"
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Authors
Georgi Pachov, Dimitar Dimitrov, Ivan Koychev, Preslav Nakov
arXiv ID
2309.06844
Category
cs.CL: Computation & Language
Cross-listed
cs.AI,
cs.MM
Citations
7
Venue
Conference and Labs of the Evaluation Forum
Last Checked
5 months ago
Abstract
The wide-spread use of social networks has given rise to subjective, misleading, and even false information on the Internet. Thus, subjectivity detection can play an important role in ensuring the objectiveness and the quality of a piece of information. This paper presents the solution built by the Gpachov team for the CLEF-2023 CheckThat! lab Task~2 on subjectivity detection. Three different research directions are explored. The first one is based on fine-tuning a sentence embeddings encoder model and dimensionality reduction. The second one explores a sample-efficient few-shot learning model. The third one evaluates fine-tuning a multilingual transformer on an altered dataset, using data from multiple languages. Finally, the three approaches are combined in a simple majority voting ensemble, resulting in 0.77 macro F1 on the test set and achieving 2nd place on the English subtask.
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