揭开洞察的面纱:人工智能在教学中的文献计量分析

IF 3.4 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Informatics Pub Date : 2024-02-25 DOI:10.3390/informatics11010010
Malinka Ivanova, G. Grosseck, Carmen Holotescu
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引用次数: 0

摘要

智能应用在教育领域的渗透正在迅速增加,给教育界带来了许多不同性质的问题。本文旨在分析和概述人工智能(AI)对教学实践的影响,考虑到人工智能在全球范围内的应用和普及日益增多,这是一个至关重要的问题。考虑到从科学数据库 Scopus 和 Web of Science 收集到的书目数据,本文采用了文献计量学方法来描绘 "全貌"。通过 R 环境中的 Biblioshiny,对过去 5 年中与 "人工智能与教学 "查询匹配的相关出版物数据进行了研究和处理,以建立科学生产的描述性结构,确定科学出版物的影响,追踪合作模式,并确定关键研究领域和新兴趋势。研究结果表明,近来科研成果不断增加,这表明研究人员对所研究课题的兴趣日益浓厚,他们主要以合作团队的形式开展工作,其中一些人来自不同的国家和机构。已确定的关键研究领域包括教育应用中使用的技术,如人工智能、机器学习和深度学习。此外,还关注 ChatGPT、学习分析和虚拟现实等适用技术。研究还探讨了这些技术在各种教育环境中的应用,包括教学、高等教育、主动学习、电子学习和在线学习。根据我们的研究结果,趋势性研究课题可以用 ChatGPT、聊天机器人、人工智能、生成式人工智能、机器学习、情感识别、大型语言模型、卷积神经网络和决策理论等术语来概括。这些发现为了解该领域当前的研究兴趣提供了宝贵的见解。
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Unveiling Insights: A Bibliometric Analysis of Artificial Intelligence in Teaching
The penetration of intelligent applications in education is rapidly increasing, posing a number of questions of a different nature to the educational community. This paper is coming to analyze and outline the influence of artificial intelligence (AI) on teaching practice which is an essential problem considering its growing utilization and pervasion on a global scale. A bibliometric approach is applied to outdraw the “big picture” considering gathered bibliographic data from scientific databases Scopus and Web of Science. Data on relevant publications matching the query “artificial intelligence and teaching” over the past 5 years have been researched and processed through Biblioshiny in R environment in order to establish a descriptive structure of the scientific production, to determine the impact of scientific publications, to trace collaboration patterns and to identify key research areas and emerging trends. The results point out the growth in scientific production lately that is an indicator of increased interest in the investigated topic by researchers who mainly work in collaborative teams as some of them are from different countries and institutions. The identified key research areas include techniques used in educational applications, such as artificial intelligence, machine learning, and deep learning. Additionally, there is a focus on applicable technologies like ChatGPT, learning analytics, and virtual reality. The research also explores the context of application for these techniques and technologies in various educational settings, including teaching, higher education, active learning, e-learning, and online learning. Based on our findings, the trending research topics can be encapsulated by terms such as ChatGPT, chatbots, AI, generative AI, machine learning, emotion recognition, large language models, convolutional neural networks, and decision theory. These findings offer valuable insights into the current landscape of research interests in the field.
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来源期刊
Informatics
Informatics Social Sciences-Communication
CiteScore
6.60
自引率
6.50%
发文量
88
审稿时长
6 weeks
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