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Are Neural Language Models Good Plagiarists? A Benchmark for Neural Paraphrase Detection

23 March 2021
Jan Philip Wahle
Terry Ruas
Norman Meuschke
Bela Gipp
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Abstract

The rise of language models such as BERT allows for high-quality text paraphrasing. This is a problem to academic integrity, as it is difficult to differentiate between original and machine-generated content. We propose a benchmark consisting of paraphrased articles using recent language models relying on the Transformer architecture. Our contribution fosters future research of paraphrase detection systems as it offers a large collection of aligned original and paraphrased documents, a study regarding its structure, classification experiments with state-of-the-art systems, and we make our findings publicly available.

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