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January 24, 2024Current Medical Research and Opinion61 citations

Between human and AI: assessing the reliability of AI text detection tools

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VBValentina BelliniFSFederico SemeraroJMJonathan Montomoli

Key Points

  • This research aims to evaluate the effectiveness of online detection tools in identifying AI-generated text versus human-written content.
  • Two texts generated by ChatGPT-4 and one by a human author were assessed using GPTZero, ZeroGPT, Writer ACD, and Originality detection tools.
  • GPTZero and ZeroGPT showed inconsistent assessments of AI-origin texts.
  • Writer ACD frequently misidentified AI-generated texts as human-written.
  • Originality accurately identified all instances of AI-generated content.

Abstract

OBJECTIVE: Large language models (LLMs) such as ChatGPT-4 have raised critical questions regarding their distinguishability from human-generated content. In this research, we evaluated the effectiveness of online detection tools in identifying ChatGPT-4 vs human-written text. METHODS: A two texts produced by ChatGPT-4 using differing prompts and one text created by a human author were analytically assessed using the following online detection tools: GPTZero, ZeroGPT, Writer ACD, and Originality. RESULTS: The findings revealed a notable variance in the detection capabilities of the employed detection tools. GPTZero and ZeroGPT exhibited inconsistent assessments regarding the AI-origin of the texts. Writer ACD predominantly identified texts as human-written, whereas Originality consistently recognized the AI-generated content in both samples from ChatGPT-4. This highlights Originality's enhanced sensitivity to patterns characteristic of AI-generated text. CONCLUSION: The study demonstrates that while automatic detection tools may discern texts generated by ChatGPT-4 significant variability exists in their accuracy. Undoubtedly, there is an urgent need for advanced detection tools to ensure the authenticity and integrity of content, especially in scientific and academic research. However, our findings underscore an urgent need for more refined detection methodologies to prevent the misdetection of human-written content as AI-generated and vice versa.

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Cite This Study

Bellini et al. (2024) studied this question.

synapsesocial.com/papers/69fd1d8337bfdcfbd75098f1https://doi.org/10.1080/03007995.2024.2310086
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