UTMN at SemEval-2020 Task 11: A Kitchen Solution to Automatic Propaganda Detection

August 22, 2020 ยท Declared Dead ยท ๐Ÿ› International Workshop on Semantic Evaluation

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Authors Elena Mikhalkova, Nadezhda Ganzherli, Anna Glazkova, Yuliya Bidulya arXiv ID 2008.09869 Category cs.CL: Computation & Language Cross-listed cs.LG Citations 5 Venue International Workshop on Semantic Evaluation Last Checked 5 months ago
Abstract
The article describes a fast solution to propaganda detection at SemEval-2020 Task 11, based onfeature adjustment. We use per-token vectorization of features and a simple Logistic Regressionclassifier to quickly test different hypotheses about our data. We come up with what seems to usthe best solution, however, we are unable to align it with the result of the metric suggested by theorganizers of the task. We test how our system handles class and feature imbalance by varying thenumber of samples of two classes (Propaganda and None) in the training set, the size of a contextwindow in which a token is vectorized and combination of vectorization means. The result of oursystem at SemEval2020 Task 11 is F-score=0.37.
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