Deep dive into language traits of AI-generated Abstracts

December 17, 2023 ยท Declared Dead ยท ๐Ÿ› COMAD/CODS

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Authors Vikas Kumar, Amisha Bharti, Devanshu Verma, Vasudha Bhatnagar arXiv ID 2312.10617 Category cs.CL: Computation & Language Cross-listed cs.LG Citations 2 Venue COMAD/CODS Last Checked 5 months ago
Abstract
Generative language models, such as ChatGPT, have garnered attention for their ability to generate human-like writing in various fields, including academic research. The rapid proliferation of generated texts has bolstered the need for automatic identification to uphold transparency and trust in the information. However, these generated texts closely resemble human writing and often have subtle differences in the grammatical structure, tones, and patterns, which makes systematic scrutinization challenging. In this work, we attempt to detect the Abstracts generated by ChatGPT, which are much shorter in length and bounded. We extract the texts semantic and lexical properties and observe that traditional machine learning models can confidently detect these Abstracts.
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