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Features Selection Through FS-Testors in Case-Based Systems of Teaching-Learning

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MICAI 2007: Advances in Artificial Intelligence (MICAI 2007)

Part of the book series: Lecture Notes in Computer Science ((LNAI,volume 4827))

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Abstract

The development of intelligents teaching-learning systems depends, on one hand, of the pedagogical paradigms and, on the other hand, of the available technologies to implement these paradigms in computers. The field of the Intelligent Teaching-Learning Systems is characterized by the application of Artificial Intelligence techniques, to the development of the teaching-learning process assisted by computers, where the term "intelligent" is associated to the student’s aptitude to dynamically acclimatize to the teaching process by carrying out an individual learning. The case-based reasoning is an Artificial Intelligence technique that performs their reasoning process based on previously solved cases, stored in case-bases. In this article we propose a new case-based approach with foundations on fuzzy pattern recognition to help elaborate intelligents teaching-learning systems, using the FS-testor theory, based on a combination of typical testor theory with the fuzzy sets, assures the efficient access and retrieval of cases.

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Alexander Gelbukh Ángel Fernando Kuri Morales

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© 2007 Springer-Verlag Berlin Heidelberg

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Martínez, N., León, M., García, Z. (2007). Features Selection Through FS-Testors in Case-Based Systems of Teaching-Learning. In: Gelbukh, A., Kuri Morales, Á.F. (eds) MICAI 2007: Advances in Artificial Intelligence. MICAI 2007. Lecture Notes in Computer Science(), vol 4827. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-540-76631-5_115

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  • DOI: https://doi.org/10.1007/978-3-540-76631-5_115

  • Publisher Name: Springer, Berlin, Heidelberg

  • Print ISBN: 978-3-540-76630-8

  • Online ISBN: 978-3-540-76631-5

  • eBook Packages: Computer ScienceComputer Science (R0)

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