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Please use this identifier to cite or link to this item: http://hdl.handle.net/10016/6190

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Title: Learning content sequencing in an educational environment according student needs
Author(s): Iglesias, Ana
Martínez, Paloma
Aler, Ricardo
Fernández, Fernando
Publisher: Springer
Issued date: Sep-2004
Citation: Algorithmic learning theory, 15th International Conference on Algorithmic Learning Theory (ALT 04), 2004, p. 454-463
URI: http://hdl.handle.net/10016/6190
ISBN: 978-3-540-23356-5
ISSN: 0302-9743 (Print)
1611-3349 (Online)
DOI: http://dx.doi.org/10.1007/978-3-540-30215-5_34
Description: Proceeding of: Algorithmic learning theory, 15th International Conference on Algorithmic Learning Theory (ALT 04), Padova, Italy, October 2-5, 2004
Abstract: One of the most important issues in educational systems is to define effective teaching policies according to the students learning characteristics. This paper proposes to use the Reinforcement Learning (RL) model in order for the system to learn automatically sequence of contents to be shown to the student, based only in interactions with other students, like human tutors do. An initial clustering of the students according to their learning characteristics is proposed in order the system adapts better to each student. Experiments show convergence to optimal teaching tactics for different clusters of simulated students, concluding that the convergence is faster when the system tactics have been previously initialised.
Serie / Nº.: Lecture notes in computer science, vol. 3244
Publisher version: http://dx.doi.org/10.1007/978-3-540-30215-5_34
Rights: © Springer
Appears in Collections:DI - PLG - Capítulos de Monografías
DI - GCERN - Capítulos de Monografías
DI - PLG - Comunicaciones en Congresos y otros eventos
DI - LABDA - Comunicaciones en Congresos y otros eventos

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