Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10609/123146
Título : A granularity-based intelligent tutoring system for zooarchaeology
Autoría: Subirats, Laia  
Pérez, Leopoldo
Hernández, Cristo
Fort, Santi  
Gómez Moñivas, Sacha
Otros: Universitat Rovira i Virgili (URV)
Universidad de La Laguna
Universidad Autónoma de Madrid
Eurecat, Centre Tecnològic de Catalunya
Universitat Oberta de Catalunya (UOC)
Citación : Subirats, L., Pérez, L., Hernández, C., Fort, S. & Gomez-Moñivas, S. (2019). A granularity-based intelligent tutoring system for zooarchaeology. Applied Sciences, 9(22), 1-17. doi: 10.3390/app9224960
Resumen : This paper presents a tutoring system which uses three different granularities for helping students to classify animals from bone fragments in zooarchaeology. The 3406 bone remains, which have 64 attributes, were obtained from the excavation of the Middle Palaeolithic site of El Salt (Alicante, Spain). The coarse granularity performs a five-class prediction, the medium a twelve-class prediction, and the fine a fifteen-class prediction. In the coarse granularity, the results show that the first 10 most relevant attributes for classification are width, bone, thickness, length, bone fragment, anatomical group, long bone circumference, X, Y, and Z. Based on those results, a user-friendly interface of the tutor has been built in order to train archaeology students to classify new remains using the coarse granularity. A pilot has been performed in the 2019 excavation season in Abric del Pastor (Alicante, Spain), where the automatic tutoring system was used by students to classify 51 new remains. The pilot experience demonstrated the usefulness of the tutoring system both for students when facing their first classification activities and also for seniors since the tutoring system gives them valuable clues for helping in difficult classification problems.
Palabras clave : aprendizaje supervisado
zooarqueología
sistema de tutoría inteligente
DOI: 10.3390/app9224960
Tipo de documento: info:eu-repo/semantics/article
Versión del documento: info:eu-repo/semantics/publishedVersion
Fecha de publicación : 18-nov-2019
Licencia de publicación: http://creativecommons.org/licenses/by/3.0/es/  
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