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ChatPRCS: A Personalized Support System for English Reading Comprehension Based on ChatGPT | IEEE Journals & Magazine | IEEE Xplore

ChatPRCS: A Personalized Support System for English Reading Comprehension Based on ChatGPT


Abstract:

Reading comprehension is a widely adopted method for learning English, involving reading articles and answering related questions. However, the reading comprehension trai...Show More
Topic: Special issue on ChatGPT and Generative AI

Abstract:

Reading comprehension is a widely adopted method for learning English, involving reading articles and answering related questions. However, the reading comprehension training typically focuses on the skill level required for a standardized learning stage, without considering the impact of individual differences in linguistic competence. This article presents a personalized support system for reading comprehension, named chat generative pretrained transformer (ChatGPT)-based personalized reading comprehension support (ChatPRCS), based on the zone of proximal development (ZPD) theory. It leverages the advanced capabilities of large language models, exemplified by ChatGPT. ChatPRCS employs methods, including skill prediction, question generation and automatic evaluation, to enhance reading comprehension instruction. First, a ZPD-based algorithm is developed to predict students' reading comprehension skills. This algorithm analyzes historical data to generate questions with appropriate difficulty. Second, a series of ChatGPT prompt patterns is proposed to address two key aspects of reading comprehension objectives: question generation, and automated evaluation. These patterns further improve the quality of generated questions. Finally, by integrating personalized skill prediction and reading comprehension prompt patterns, ChatPRCS is validated through a series of experiments. Empirical results demonstrate that it provides learners with high-quality reading comprehension questions that are broadly aligned with expert-crafted questions at a statistical level. Furthermore, this study investigates the effect of the system on learning achievement, learning motivation, and cognitive load, providing further evidence of its effectiveness in instructing English reading comprehension.
Topic: Special issue on ChatGPT and Generative AI
Published in: IEEE Transactions on Learning Technologies ( Volume: 17)
Page(s): 1722 - 1736
Date of Publication: 27 May 2024

ISSN Information:

Funding Agency:

Author image of Xizhe Wang
Zhejiang Key Laboratory of Intelligent Education Technology and Application, Zhejiang Normal University, Jinhua, China
Xizhe Wang received the Ph.D. degree in educational technology from South China Normal University, Guangzhou, China, in 2019.
He is currently an Associate Professor with Zhejiang Normal University, Jinhua, China. His research interests include learning analytics, machine learning, and smart education.
Xizhe Wang received the Ph.D. degree in educational technology from South China Normal University, Guangzhou, China, in 2019.
He is currently an Associate Professor with Zhejiang Normal University, Jinhua, China. His research interests include learning analytics, machine learning, and smart education.View more
Author image of Yihua Zhong
Zhejiang Key Laboratory of Intelligent Education Technology and Application, Zhejiang Normal University, Jinhua, China
Yihua Zhong received the B.S. degree in software engineering from Jiangxi Normal University, Nanchang, China, in 2021. He is currently working toward the master's degree in educational technology with the School of Education, Zhejiang Normal University, Jinhua, China.
His research interests include intelligent education, machine learning, learning analytics, and system development.
Yihua Zhong received the B.S. degree in software engineering from Jiangxi Normal University, Nanchang, China, in 2021. He is currently working toward the master's degree in educational technology with the School of Education, Zhejiang Normal University, Jinhua, China.
His research interests include intelligent education, machine learning, learning analytics, and system development.View more
Author image of Changqin Huang
Zhejiang Key Laboratory of Intelligent Education Technology and Application, Zhejiang Normal University, Jinhua, China
Changqin Huang (Member, IEEE) received the Ph.D. degree in computer science and technology from Zhejiang University, Hangzhou, China, in 2005.
He is currently a Distinguished Professor with Zhejiang Normal University, Jinhua, China. His research interests include Big Data in education, machine learning, and intelligent service computing.
Dr. Huang is a Senior Member of CCF, and a Member of both IEEE and ACM. He was a recipi...Show More
Changqin Huang (Member, IEEE) received the Ph.D. degree in computer science and technology from Zhejiang University, Hangzhou, China, in 2005.
He is currently a Distinguished Professor with Zhejiang Normal University, Jinhua, China. His research interests include Big Data in education, machine learning, and intelligent service computing.
Dr. Huang is a Senior Member of CCF, and a Member of both IEEE and ACM. He was a recipi...View more
Author image of Xiaodi Huang
School of Computing, Mathematics, and Engineering, Charles Sturt University, Albury, NSW, Australia
Xiaodi Huang (Senior Member, IEEE) received the Ph.D. degree in computer science from the Swinburne University of Technology, Melbourne, Australia, in 2004.
He is currently an Associate Professor with the School of Computing, Mathematics, and Engineering, Charles Sturt University, Bathurst, NSW, Australia. His research interests include applied machine learning, visualization, and data analysis.
Xiaodi Huang (Senior Member, IEEE) received the Ph.D. degree in computer science from the Swinburne University of Technology, Melbourne, Australia, in 2004.
He is currently an Associate Professor with the School of Computing, Mathematics, and Engineering, Charles Sturt University, Bathurst, NSW, Australia. His research interests include applied machine learning, visualization, and data analysis.View more

Author image of Xizhe Wang
Zhejiang Key Laboratory of Intelligent Education Technology and Application, Zhejiang Normal University, Jinhua, China
Xizhe Wang received the Ph.D. degree in educational technology from South China Normal University, Guangzhou, China, in 2019.
He is currently an Associate Professor with Zhejiang Normal University, Jinhua, China. His research interests include learning analytics, machine learning, and smart education.
Xizhe Wang received the Ph.D. degree in educational technology from South China Normal University, Guangzhou, China, in 2019.
He is currently an Associate Professor with Zhejiang Normal University, Jinhua, China. His research interests include learning analytics, machine learning, and smart education.View more
Author image of Yihua Zhong
Zhejiang Key Laboratory of Intelligent Education Technology and Application, Zhejiang Normal University, Jinhua, China
Yihua Zhong received the B.S. degree in software engineering from Jiangxi Normal University, Nanchang, China, in 2021. He is currently working toward the master's degree in educational technology with the School of Education, Zhejiang Normal University, Jinhua, China.
His research interests include intelligent education, machine learning, learning analytics, and system development.
Yihua Zhong received the B.S. degree in software engineering from Jiangxi Normal University, Nanchang, China, in 2021. He is currently working toward the master's degree in educational technology with the School of Education, Zhejiang Normal University, Jinhua, China.
His research interests include intelligent education, machine learning, learning analytics, and system development.View more
Author image of Changqin Huang
Zhejiang Key Laboratory of Intelligent Education Technology and Application, Zhejiang Normal University, Jinhua, China
Changqin Huang (Member, IEEE) received the Ph.D. degree in computer science and technology from Zhejiang University, Hangzhou, China, in 2005.
He is currently a Distinguished Professor with Zhejiang Normal University, Jinhua, China. His research interests include Big Data in education, machine learning, and intelligent service computing.
Dr. Huang is a Senior Member of CCF, and a Member of both IEEE and ACM. He was a recipient of the Pearl River Scholarship. He is currently an Associate Editor for IEEE Transactions on Learning Technologies and an Active Reviewer for several conferences and journals.
Changqin Huang (Member, IEEE) received the Ph.D. degree in computer science and technology from Zhejiang University, Hangzhou, China, in 2005.
He is currently a Distinguished Professor with Zhejiang Normal University, Jinhua, China. His research interests include Big Data in education, machine learning, and intelligent service computing.
Dr. Huang is a Senior Member of CCF, and a Member of both IEEE and ACM. He was a recipient of the Pearl River Scholarship. He is currently an Associate Editor for IEEE Transactions on Learning Technologies and an Active Reviewer for several conferences and journals.View more
Author image of Xiaodi Huang
School of Computing, Mathematics, and Engineering, Charles Sturt University, Albury, NSW, Australia
Xiaodi Huang (Senior Member, IEEE) received the Ph.D. degree in computer science from the Swinburne University of Technology, Melbourne, Australia, in 2004.
He is currently an Associate Professor with the School of Computing, Mathematics, and Engineering, Charles Sturt University, Bathurst, NSW, Australia. His research interests include applied machine learning, visualization, and data analysis.
Xiaodi Huang (Senior Member, IEEE) received the Ph.D. degree in computer science from the Swinburne University of Technology, Melbourne, Australia, in 2004.
He is currently an Associate Professor with the School of Computing, Mathematics, and Engineering, Charles Sturt University, Bathurst, NSW, Australia. His research interests include applied machine learning, visualization, and data analysis.View more
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