AI-assisted programming question generation: Constructing semantic networks of programming knowledge by local knowledge graph and abstract syntax tree

IF 5.1 2区 教育学 Q1 Social Sciences
Cheng-Yu Chung, I-Han Hsiao, Yi-ling Lin
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引用次数: 0

Abstract

Abstract Creating practice questions for programming learning is not an easy job. It requires the instructor to diligently organize heterogeneous learning resources. Although educational technologies have been adopted across levels of programming learning, programming question generation (PQG) is still predominantly performed by instructors without advanced technological support. This study proposes a knowledge-based PQG model that aims to help the instructor generate new programming questions and expand the assessment items by the Local Knowledge Graph and Abstract Syntax Tree. A group of experienced instructors was recruited to evaluate the PQG model and expressed significantly positive feedback on the generated questions.
人工智能辅助编程问题生成:利用局部知识图和抽象语法树构建编程知识语义网络
摘要为编程学习创建练习题不是一项容易的工作。它要求教师努力组织异构的学习资源。尽管教育技术已经在各个级别的编程学习中被采用,但编程问题生成(PQG)仍然主要由没有先进技术支持的讲师执行。本研究提出了一个基于知识的PQG模型,旨在帮助教师生成新的编程问题,并通过局部知识图和抽象语法树扩展评估项目。招募了一组经验丰富的讲师来评估PQG模型,并对生成的问题表达了显著的积极反馈。
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来源期刊
Journal of Research on Technology in Education
Journal of Research on Technology in Education EDUCATION & EDUCATIONAL RESEARCH-
CiteScore
11.70
自引率
5.90%
发文量
43
期刊介绍: The Journal of Research on Technology in Education (JRTE) is a premier source for high-quality, peer-reviewed research that defines the state of the art, and future horizons, of teaching and learning with technology. The terms "education" and "technology" are broadly defined. Education is inclusive of formal educational environments ranging from PK-12 to higher education, and informal learning environments, such as museums, community centers, and after-school programs. Technology refers to both software and hardware innovations, and more broadly, the application of technological processes to education.
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