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EdNet: A Large-Scale Hierarchical Dataset in Education

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Is a
‌
Academic paper
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Academic Paper attributes

arXiv ID
1912.030720
arXiv Classification
Computer science
Computer science
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Publication URL
arxiv.org/pdf/1912.0...72.pdf0
Publisher
ArXiv
ArXiv
0
DOI
doi.org/10.48550/ar...12.030720
Paid/Free
Free0
Academic Discipline
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Human–computer interaction
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Artificial Intelligence (AI)
Artificial Intelligence (AI)
0
Computer science
Computer science
0
Submission Date
July 1, 2020
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May 4, 2020
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December 6, 2019
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Author Names
Seewoo Lee0
Youngnam Lee0
Youngduck Choi0
Junghyun Cho0
Seoyon Park0
Byungsoo Kim0
Chan Bae0
Dongmin Shin0
...
Paper abstract

With advances in Artificial Intelligence in Education (AIEd) and the ever-growing scale of Interactive Educational Systems (IESs), data-driven approach has become a common recipe for various tasks such as knowledge tracing and learning path recommendation. Unfortunately, collecting real students' interaction data is often challenging, which results in the lack of public large-scale benchmark dataset reflecting a wide variety of student behaviors in modern IESs. Although several datasets, such as ASSISTments, Junyi Academy, Synthetic and STATICS, are publicly available and widely used, they are not large enough to leverage the full potential of state-of-the-art data-driven models and limits the recorded behaviors to question-solving activities. To this end, we introduce EdNet, a large-scale hierarchical dataset of diverse student activities collected by Santa, a multi-platform self-study solution equipped with artificial intelligence tutoring system. EdNet contains 131,441,538 interactions from 784,309 students collected over more than 2 years, which is the largest among the ITS datasets released to the public so far. Unlike existing datasets, EdNet provides a wide variety of student actions ranging from question-solving to lecture consumption and item purchasing. Also, EdNet has a hierarchical structure where the student actions are divided into 4 different levels of abstractions. The features of EdNet are domain-agnostic, allowing EdNet to be extended to different domains easily. The dataset is publicly released under Creative Commons Attribution-NonCommercial 4.0 International license for research purposes. We plan to host challenges in multiple AIEd tasks with EdNet to provide a common ground for the fair comparison between different state of the art models and encourage the development of practical and effective methods.

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