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Monitoring student progress using virtual appliances: A case study

delete2012-05-01
delete96
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OA
AI
A
Abelardo Pardo
D
Daniel Burgos
C
Carlos Delgado Kloos
DOI:10.1016/j.compedu.2011.12.003delete
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Abstract

Abstract

En 中文
The interactions that students have with each other, with the instructors, and with educational resources are valuable indicators of the effectiveness of a learning experience. The increasing use of information and communication technology allows these interactions to be recorded so that analytic or mining techniques are used to gain a deeper understanding of the learning process and propose improvements. But with the increasing variety of tools being used, monitoring student progress is becoming a challenge. The paper answers two questions. The first one is how feasible is to monitor the learning activities occurring in a student personal workspace. The second is how to use the recorded data for the prediction of student achievement in a course. To address these research questions, the paper presents the use of virtual appliances, a fully functional computer simulated over a regular one and configured with all the required tools needed in a learning experience. Students carry out activities in this environment in which a monitoring scheme has been previously configured. A case study is presented in which a comprehensive set of observations were collected. The data is shown to have significant correlation with student academic achievement thus validating the approach to be used as a prediction mechanism. Finally a prediction model is presented based on those observations with the highest correlation. (C) 2011 Elsevier Ltd. All rights reserved.
Keywords:
Educational data mining
Learning analytics
Virtual appliances
Educational systems
Predictive systems

Journal

C
Computers and Education
IF:
10.5
Papers:
5.0K
Citations:
2.9W

Organization

U
universidad internacional de la rioja (unir)
Scholars:
1.3K
Papers: 1.1K
Citations: 3
U
Universidad Carlos III de Madrid
Scholars:
5.5K
Papers: 5.7K
Citations: 4.5K
Cited Papers

Cited Papers

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