ChatGPT在学术写作中的类人语言处理框架

Mohammad Mahyoob, J. Algaraady, A. Alblwi
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引用次数: 0

摘要

该研究提出了一个框架,用于分析和衡量作为通用语言模型的ChatGPT能力。本研究旨在检验新兴技术人工智能工具(ChatGPT)在生成有效学术写作方面的能力。所提出的框架由与人工语言处理相关的六个原则(相关性、充分性、局限性、真实性、认知性和冗余性)组成,这些原则将探索这种算法生成的写作的准确性和熟练度。研究人员使用ChatGPT获取了一些不同类型的学术文本和段落,作为对一些基于文本的学术查询的回应。根据拟议的框架原则,对这些学术文本的内容进行了批判性分析。研究结果表明,尽管ChatGPT具有非凡的能力,但其严重缺陷是显而易见的,因为学术写作中出现了许多问题。主要问题包括信息重复、非实际推理、逻辑推理、虚假参考、幻觉和缺乏语用解释。对于有兴趣分析和评估人工智能语言模型中最近出现的机器语言的研究人员和从业者来说,所提出的框架将是一个有价值的指南。
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Proposed Framework for Human-like Language Processing of ChatGPT in Academic Writing
The study proposed a framework for analyzing and measuring the ChatGPT capabilities as a generic language model. This study aims to examine the capabilities of the emerging technological Artificial Intelligence tool (ChatGPT) in generating effective academic writing. The proposed framework consists of six principles (Relatedness, Adequacy, Limitation, Authenticity, Cognition, and Redundancy) related to Artificial Language Processing which would explore the accuracy and proficiency of this algorithm-generated writing. The researchers used ChatGPT to obtain some academic texts and paragraphs in different genres as responses to some textbased academic queries. A critical analysis of the content of these academic texts was conducted based on the proposed framework principles. The results show that despite ChatGPT’s exceptional capabilities, its serious defects are evident, as many issues in academic writing are raised. The major issues include information repetition, nonfactual inferences, illogical reasoning, fake references, hallucination, and lack of pragmatic interpretation. The proposed framework would be a valuable guideline for researchers and practitioners interested in analyzing and evaluating recently emerging machine languages of AI language models.
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来源期刊
自引率
0.00%
发文量
352
审稿时长
12 weeks
期刊介绍: This interdisciplinary journal focuses on the exchange of relevant trends and research results and presents practical experiences gained while developing and testing elements of technology enhanced learning. It bridges the gap between pure academic research journals and more practical publications. So it covers the full range from research, application development to experience reports and product descriptions. Fields of interest include, but are not limited to: -Software / Distributed Systems -Knowledge Management -Semantic Web -MashUp Technologies -Platforms and Content Authoring -New Learning Models and Applications -Pedagogical and Psychological Issues -Trust / Security -Internet Applications -Networked Tools -Mobile / wireless -Electronics -Visualisation -Bio- / Neuroinformatics -Language /Speech -Collaboration Tools / Collaborative Networks
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