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Bayesian Model for Optimization Adaptive e-Learning Process
Journal Title International Journal of Emerging Technologies in Learning (iJET)
Journal Abbreviation i-jet
Publisher Group International Association of Online Engineering (IAOE)
Website http://online-journals.org
   
Title Bayesian Model for Optimization Adaptive e-Learning Process
Authors Tapia Moreno, Francisco Javier; Lopez Miranda, Claudio Alfredo; Galan Moreno, Manuel Jesus; Rubio Royo, Enrique
Abstract In this paper, a Bayesian-Network-based model is proposed to optimize the Global Adaptive e-Learning Process (GAeLP). This model determines the type of personalization required for a learner according to his or her real needs, in which we have considered both objects and objectives of personalization. Furthermore, cause-and-effect relations among these objects and objectives with the learning phases, the learner, and the Intelligent Tutorial System (ITS) are accomplished. These cause-and-effect relations were coded into a Bayesian Network (BN), such that it involves the entire GAeLP. Four fundamental phases that have a direct effect in the learner’s learning process are considered: Learner’s previous knowledge Phase, Learner’s Progress Knowledge Phase, Learner’s /Teacher’s Aims and Goals Phase, and Navigation Preferences and Experiences Phase. The efficacy of the Bayesian networks is proven through the first phase, in which learners of different knowledge area were select. The main results in this work are: causal relations among objects and objectives of personalization, knowledge phases, learner and electronic system. Personalization profiles set and their probabilities in the first phase were obtained to diagnose the type of personalization of the learner
Publisher assel university press GmbH
Date 2008-02-03
Source 1863-0383
Rights The submitting author warrants that the submission is original and that she/he is the author of the submission together with the named co-authors; to the extend the submission incorporates text passages, figures, data or other material from the work of others, the submitting author has obtained any necessary permission.
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