Please use this identifier to cite or link to this item: http://repositorio.grial.eu/handle/grial/1095
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dc.contributor.authorRos, S.-
dc.contributor.authorLázaro, J. C.-
dc.contributor.authorRobles-Gómez, A.-
dc.contributor.authorCaminero, A. C.-
dc.contributor.authorTobarra, L.-
dc.contributor.authorPastor, R.-
dc.date.accessioned2017-12-26T08:11:21Z-
dc.date.available2017-12-26T08:11:21Z-
dc.date.issued2017-10-18-
dc.identifier.citationRos, S., Lázaro, J. C., Robles-Gómez, A., Caminero, A. C., Tobarra, L., & Pastor, R. (2017). Analyzing Content Structure and Moodle Milestone to Classify Student Learning Behavior in a Basic Desktop Tools Course. In J. M. Dodero, M. S. Ibarra Sáiz, & I. Ruiz Rube (Eds.), Fifth International Conference on Technological Ecosystems for Enhancing Multiculturality (TEEM’17) (Cádiz, Spain, October 18-20, 2017) (pp. Article 42). New York, NY, USA: ACM. doi:10.1145/3144826.3145392en
dc.identifier.isbn978-1-4503-5386-1-
dc.identifier.urihttp://repositorio.grial.eu/handle/grial/1095-
dc.description.abstractThis paper analyzes the content structure and Moodle milestone to classify the students’ learning behavior for a basic desktop-tools on-line virtual course. The data collection phase is completed for a Learning Analytics (LA) process as a first step; by using the gen-erated interactions among students, and with learning resources, assessments, and so on. A first exploratory data analysis study is also done with the extracted indicators (or features) of all interac-tions to classify them in five traits. A multidimensional parameter reduction has been implemented based on Principal Component Analysis (PCA), an example of it is also given.en
dc.language.isoenen
dc.publisherACMen
dc.subjectLearning Analytics (LA)en
dc.subjectIndicatorsen
dc.subjectPrincipal Component Analysis (PCA)en
dc.subjectMoodleen
dc.subjectEx-ploratory Data Analysis (EDA)en
dc.titleAnalyzing Content Structure and Moodle Milestone to Classify Student Learning Behavior in a Basic Desktop Tools Courseen
dc.typeArticleen
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