A survey of knowledge tracing: Models, variants, and applications

Shuanghong SHEN, Qi LIU, Zhenya HUANG, Yonghe ZHENG, Minghao YIN, Minjuan WANG, Enhong CHEN

Research output: Contribution to journalArticlespeer-review

33 Citations (Scopus)

Abstract

Modern online education has the capacity to provide intelligent educational services by automatically analyzing substantial amounts of student behavioral data. Knowledge tracing (KT) is one of the fundamental tasks for student behavioral data analysis, aiming to monitor students' evolving knowledge state during their problem-solving process. In recent years, a substantial number of studies have concentrated on this rapidly growing field, significantly contributing to its advancements. In this survey, we will conduct a thorough investigation of these progressions. First, we present three types of fundamental KT models with distinct technical routes. Subsequently, we review extensive variants of the fundamental KT models that consider more stringent learning assumptions. Moreover, the development of KT cannot be separated from its applications, so we present typical KT applications in various scenarios. To facilitate the work of researchers and practitioners in this field, we have developed two open-source algorithm libraries: EduData that enables the downloading and preprocessing of KT-related datasets, and EduKTM that provides an extensible and unified implementation of existing mainstream KT models. Finally, we discuss potential directions for future research in this rapidly growing field. We hope that the current survey will assist both researchers and practitioners in fostering the development of KT, thereby benefiting a broader range of students. Copyright © 2024 IEEE.

Original languageEnglish
Pages (from-to)1898-1919
JournalIEEE Transactions on Learning Technologies
Volume17
Early online dateApr 2024
DOIs
Publication statusPublished - 2024

Citation

Shen, S., Liu, Q., Huang, Z., Zheng, Y., Yin, M., Wang, M., & Chen, E. (2024). A survey of knowledge tracing: Models, variants, and applications. IEEE Transactions on Learning Technologies, 17, 1898-1919. https://doi.org/10.1109/TLT.2024.3383325

Keywords

  • Adaptive learning
  • Educational data mining
  • Knowledge tracing (KT)
  • Online education
  • User modeling

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