Recursive Style Breach Detection with Multifaceted Ensemble Learning

June 17, 2019 ยท Declared Dead ยท ๐Ÿ› Artificial Intelligence: Methodology, Systems, Applications

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Authors Daniel Kopev, Dimitrina Zlatkova, Kristiyan Mitov, Atanas Atanasov, Momchil Hardalov, Ivan Koychev, Preslav Nakov arXiv ID 1906.06917 Category cs.CL: Computation & Language Cross-listed cs.LG Citations 7 Venue Artificial Intelligence: Methodology, Systems, Applications Last Checked 5 months ago
Abstract
We present a supervised approach for style change detection, which aims at predicting whether there are changes in the style in a given text document, as well as at finding the exact positions where such changes occur. In particular, we combine a TF.IDF representation of the document with features specifically engineered for the task, and we make predictions via an ensemble of diverse classifiers including SVM, Random Forest, AdaBoost, MLP, and LightGBM. Whenever the model detects that style change is present, we apply it recursively, looking to find the specific positions of the change. Our approach powered the winning system for the PAN@CLEF 2018 task on Style Change Detection.
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