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February 14, 20260 citationsOpen Access

From AI to authorship: Exploring the use of LLM detection tools for calling on “originality” of students in academic environments

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QGQinghao GuanYHYangxi Han

Key Points

  • The research aims to evaluate the effectiveness of LLM detection tools in distinguishing between student-written essays and those generated by AI.
  • Conducted a survey on ethical awareness of generative AI among 156 STEM students.
  • Separated students into two groups for essay writing, one using LLMs and another writing independently.
  • Collected and anonymized essays for analysis using quantitative methods.
  • Assessed the performance of LLM detection tools in correctly classifying the essays.
  • Found limitations in the ability of LLM detection tools to accurately identify AI-generated essays.
  • Recommendations were made for educators to improve ethical practices regarding LLM technology.

Abstract

As generative AI (GenAI) continues to permeate academia, distinguishing between student-authored essays and those by Large Language Models (LLMs) becomes crucial for maintaining academic integrity. This study conducted a survey on the ethical awareness of using generative AI tools among a group of STEM students (n=156). Also, we empirically evaluate the effectiveness of state-of-the-art LLM detector in identifying essays written by LLMs versus those written independently by students. We separated students into two groups and assigned them to either use LLMs or write essay independently. The essays were collected, anonymised, and analysed using quantitative methods. The detection tools were assessed on their ability to classify the essays correctly. The findings highlight limitations of the deployment of LLM detection tools in writing courses. Based on the outcomes, recommendations are provided for educators to enhance the ethical use of detection technologies. Our code is available on GitHub

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Cite This Study

Guan et al. (2025) studied this question.

synapsesocial.com/papers/699011a12ccff479cfe58704https://doi.org/10.5167/uzh-291402
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