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Towards automated content analysis of discussion transcripts: a cognitive presence case
Auteurs
Dragan Gašević
Kirsty Kitto
George Siemens
Vitomir Kovanović
Srećko Joksimović
Zak Waters
Marek Hatala
Institutions
The University of Edinburgh
Queensland University of Technology
University of Texas
Simon Fraser University
Année :
2016
Lieu de publication de l'article :
Proc. LAK
Résumé de l'article
In this paper, we present the results of an exploratory study that examined the problem of automating content analysis of student online discussion transcripts. We looked at the problem of coding discussion transcripts for the levels of cognitive presence, one of the three main constructs in the Community of Inquiry (CoI) model of distance education. Using Coh-Metrix and LIWC features, together with a set of custom features developed to capture discussion context, we developed a random forest classification system that achieved 70.3% classification accuracy and 0.63 Cohen's kappa, which is significantly higher than values reported in the previous studies. Besides improvement in classification accuracy, the developed system is also less sensitive to overfitting as it uses only 205 classification features, which is around 100 times less features than in similar systems based on bag-of-words features. We also provide an overview of the classification features most indicative of the different phases of cognitive presence that gives an additional insights into the nature of cognitive presence learning cycle. Overall, our results show great potential of the proposed approach, with an added benefit of providing further characterization of the cognitive presence coding scheme.
Mots-clés
Caractéristiques
Niveau
Supérieur
Environnement
A distance
Caractéristiques
level
primary
secondary
higher education
open
other level
step
description
diagnostic
prediction
prescription
other step
environment
distance
face-to-face
hybrid
MOOC
other environment
target
learners
teachers
institutions
researchers
other target
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