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    S-SAM: a semantic self-adapted method for categorizing annotated resources

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    Date
    2015
    Author
    Moriones Oyón, Olivier 
    Advisor
    Córdoba Izaguirre, Alberto 
    Version
    Acceso abierto / Sarbide irekia
    xmlui.dri2xhtml.METS-1.0.item-type
    Proyecto Fin de Carrera / Ikasketen Amaierako Proiektua
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    Abstract
    The present final degree project proposes a new method for automatic classification of resources labelled with tags coming from a folksonomy of social tagging systems. It is the result of a variation of SAM, a self-adapted method, that is, a method of automatic classification of annotated resources, which have been done by some researchers of the Public University of Navarra. The method, called S ... [++]
    The present final degree project proposes a new method for automatic classification of resources labelled with tags coming from a folksonomy of social tagging systems. It is the result of a variation of SAM, a self-adapted method, that is, a method of automatic classification of annotated resources, which have been done by some researchers of the Public University of Navarra. The method, called S-SAM (or Semantic SAM) have as their goal to improve the classification of annotated resources by means of this automatic method, without using human force, in order to make more accurate the knowledge representation and information recovery. To do so, it has been chosen the final degre project of Ciordia, 2011 as a pattern to follow in the implementation of SAM and S-SAM, which is a Java program that needs some data allocated in MySQL format databases. The research is divided into two parts. The first part studies the way a subset of resources is classified using the number of occurrences versus using the fitness of the annotation (that is, a consensus evaluation from experts). The second part also studies this but using the whole set of resources (all the annotations). Once obtained the results, they will be compaired finding out which way classifies the best. [--]
    Subject
    Automatic classification of annotated resources, Semantic self-adapted methods
     
    Departament
    Universidad Pública de Navarra. Departamento de Ingeniería Matemática e Informática / Nafarroako Unibertsitate Publikoa. Matematika eta Informatika Ingeniaritza Saila
     
    Degree
    Ingeniería en Informática / Informatika Ingeniaritza
     
    URI
    https://hdl.handle.net/2454/17543
    Appears in Collections
    • Proyectos Fin de Carrera ETSIIT - TIIGMET Ikasketen Amaierako Proiektuak [2319]
    • PFC. Acceso abierto (desde 2010) – IAP. Sarbide irekia (2010etik aurrera) [1473]
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