Papers › Rethinking the Authorship Verification Experimental Setups

Rethinking the Authorship Verification Experimental Setups

9 Dec 2021arXiv:2112.05125archive 2025-07-28

Florin Brad, Andrei Manolache, Elena Burceanu, Antonio Barbalau, Radu Ionescu, Marius Popescu

One of the main drivers of the recent advances in authorship verification is the PAN large-scale authorship dataset. Despite generating significant progress in the field, inconsistent performance differences between the closed and open test sets have been reported. To this end, we improve the experimental setup by proposing five new public splits over the PAN dataset, specifically designed to isolate and identify biases related to the text topic and to the author's writing style. We evaluate several BERT-like baselines on these splits, showing that such models are competitive with authorship verification state-of-the-art methods. Furthermore, using explainable AI, we find that these baselines are biased towards named entities. We show that models trained without the named entities obtain better results and generalize better when tested on DarkReddit, our new dataset for authorship verification.

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get_authors_data_from_folder bit-ml/dupin/preprocess/split_train_val.py official repository ran · our draft was wrong no licence file found · pointer only · 01f03b73eac7b9e4 · report
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Authorship VerificationDomain Generalization

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