Contextualized and Personalized Math Word Problem Generation Using GPT and Authentic Contextual Recognition

Wu Yuin Hwang, Ika Qutsiati Utami

研究成果: 書貢獻/報告類型會議論文篇章同行評審

摘要

This paper introduced an interactive system for generating contextualized and personalized mathematic word problems (MWP) from authentic contexts using the Generative Pre-trained Transformers (GPT). Our proposed Automatic Question Generation (AQG) system comprises (1) the authentic contextual information acquisition through image recognition by TensorFlow and augmented reality (AR) measurement through AR Core, (2) a personalized mechanism based on instructional prompts to generate three difficulty levels for learner's different needs, and (3) MWP generation through GPT with authentic contextual information and personalized needs. A quasi-experiment was conducted by recruiting 51 fifth-grade students to evaluate the effectiveness of the proposed AQG on their geometry learning performance. The results revealed that students who learned with the proposed AQG outperformed students who learned with a decontextualized way on geometry learning performances. Therefore, our proposed AQG is useful for promoting mathematic problem-solving activity in an authentic context.

原文???core.languages.en_GB???
主出版物標題2024 12th International Conference on Information and Education Technology, ICIET 2024
發行者Institute of Electrical and Electronics Engineers Inc.
頁面177-181
頁數5
ISBN(電子)9798350371772
DOIs
出版狀態已出版 - 2024
事件12th International Conference on Information and Education Technology, ICIET 2024 - Yamaguchi, Japan
持續時間: 18 3月 202420 3月 2024

出版系列

名字2024 12th International Conference on Information and Education Technology, ICIET 2024

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???event.eventtypes.event.conference???12th International Conference on Information and Education Technology, ICIET 2024
國家/地區Japan
城市Yamaguchi
期間18/03/2420/03/24

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