AL: An Adaptive Learning Support System for Argumentation Skills
Thiemo Wambsganss, Christina Niklaus, Matthias Cetto, Matthias Söllner, Siegfried Handschuh, Jan Marco Leimeister
摘要
Recent advances in Natural Language Processing (NLP) bear the opportunity to analyze the argumentation quality of texts. This can be leveraged to provide students with individual and adaptive feedback in their personal learning journey. To test if individual feedback on students' argumentation will help them to write more convincing texts, we developed AL, an adaptive IT tool that provides students with feedback on the argumentation structure of a given text. We compared AL with 54 students to a proven argumentation support tool. We found students using AL wrote more convincing texts with better formal quality of argumentation compared to the ones using the traditional approach. The measured technology acceptance provided promising results to use this tool as a feedback application in different learning settings. The results suggest that learning applications based on NLP may have a beneficial use for developing better writing and reasoning for students in traditional learning settings.
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- ArgueTutor: An Adaptive Dialog-Based Learning System for Argumentation SkillsThiemo Wambsganss, Tobias Kueng, Matthias Söllner, Jan Marco LeimeisterCHI 2021 · 被引用 126 次
- VISAR: A Human-AI Argumentative Writing Assistant with Visual Programming and Rapid Draft PrototypingZheng Zhang, Jie Gao, Ranjodh Singh Dhaliwal, Toby Jia-Jun LiUIST 2023 · 被引用 101 次
- Cells, Generators, and Lenses: Design Framework for Object-Oriented Interaction with Large Language ModelsTae Soo Kim, Yoonjoo Lee, Minsuk Chang, Juho KimUIST 2023 · 被引用 55 次
- Persua: A Visual Interactive System to Enhance the Persuasiveness of Arguments in Online DiscussionMeng Xia, Qian Zhu, Xingbo Wang, Fei Nie 等CSCW 2022 · 被引用 34 次
- Effective Interfaces for Student-Driven Revision Sessions for Argumentative WritingTazin Afrin, Omid Kashefi, Christopher Olshefski, Diane J. Litman 等CHI 2021 · 被引用 30 次
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