Semi-Automatic Labeling of Online Course Discussion Posts

Research output: Chapter in Book/Report/Conference proceedingPublished Conference contributionpeer-review

Abstract

Automatic text labeling is essential in diverse text analysis applications, which require high precision. This paper presents a semi-automatic approach for text labeling by combining deep learning methods with human interventions. We employ bidirectional long short-term memory (Bi-LSTM) and convolutional neural network (CNN) to generate initial labels of online course discussion posts, which we then refine through a structured human-in-the-loop feedback mechanism. This semi-automatic and iterative process of labeling the forum posts reduces time for the labeling task and enhances the reliability of the training data to be used in real application of text classification. We evaluated our framework on a MOOC course dataset, demonstrating significant improvement in model performance. The results underscore the potential of integrating human expertise to complement and augment machine learning in automating the labeling tasks, paving the way for more reliable and robust applications of text analysis, especially in education.

Original languageEnglish
Title of host publicationLearning and Collaboration Technologies - 12th International Conference, LCT 2025, Held as Part of the 27th HCI International Conference, HCII 2025, Proceedings
EditorsBrian K. Smith, Marcela Borge
Pages324-335
Number of pages12
DOIs
Publication statusPublished - 2025
Event12th International Conference on Learning and Collaboration Technologies, LCT 2025, held as part of the 27th HCI International Conference, HCII 2025 - Gothenburg, Sweden
Duration: 22 Jun. 202527 Jun. 2025

Publication series

NameLecture Notes in Computer Science
Volume15807 LNCS
ISSN (Print)0302-9743
ISSN (Electronic)1611-3349

Conference

Conference12th International Conference on Learning and Collaboration Technologies, LCT 2025, held as part of the 27th HCI International Conference, HCII 2025
Country/TerritorySweden
CityGothenburg
Period22/06/2527/06/25

Keywords

  • Bi-LSTM
  • CNN
  • Text labeling
  • cognitive engagement
  • course discussion posts
  • deep learning
  • online learning
  • text classification

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