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Estudio de imágenes de resonancia magnética funcional en reposo para la predicción de variables personales

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dc.contributor Igual Muñoz, Laura
dc.creator Moral Pérez, Juan Luis
dc.date 2016-11-17T09:41:53Z
dc.date 2016-11-17T09:41:53Z
dc.date 2016-01-21
dc.date.accessioned 2024-12-16T10:23:29Z
dc.date.available 2024-12-16T10:23:29Z
dc.identifier http://hdl.handle.net/2445/103767
dc.identifier.uri http://fima-docencia.ub.edu:8080/xmlui/handle/123456789/16099
dc.description Treballs Finals de Grau d'Enginyeria Informàtica, Facultat de Matemàtiques, Universitat de Barcelona, Any: 2016, Director: Laura Igual Muñoz
dc.description This project is focused on the creation of a classification system that separates a group of subjects according to their gender based on data from magnetic resonance images (MRI) in a resting state. The images from MRI in a resting state are a tool to measure the brain connectivity or functioning that is currently being used for many neuroscience studies. This project, in particular, uses the representation of facts based on the Network in a resting state to characterize the functional connectivity of the subjects for the visualization of the obtained results. As well as evaluating the accuracy of the classification system developed, another objective of the project is to determine which of the cerebral networks are more discriminative in the task of separating men and women. The mothodology utilized combines two types of automatic learning: unsupervised learning, as in the Independent Componentes Analysis and the Principal Components Analysis, and supervised learning, as is the K-NN and SVM classifiers. The results obtained are promising, because it finds a RSN that discriminates both sex and we also note that the Principal Component Analysis does not affect when classifying .
dc.format 44 p.
dc.format application/pdf
dc.language spa
dc.rights memòria: cc-by-nc-sa (c) Juan Luis Moral Pérez, 2016
dc.rights codi: GPL (c) Juan Luis Moral Pérez, 2016
dc.rights http://creativecommons.org/licenses/by-sa/3.0/es
dc.rights http://www.gnu.org/licenses/gpl-3.0.ca.html
dc.rights info:eu-repo/semantics/openAccess
dc.source Treballs Finals de Grau (TFG) - Enginyeria Informàtica
dc.subject Sistemes classificadors (Intel·ligència artificial)
dc.subject Aprenentatge automàtic
dc.subject Programari
dc.subject Treballs de fi de grau
dc.subject Imatges per ressonància magnètica
dc.subject Learning classifier systems
dc.subject Machine learning
dc.subject Computer software
dc.subject Bachelor's theses
dc.subject Magnetic resonance imaging
dc.title Estudio de imágenes de resonancia magnética funcional en reposo para la predicción de variables personales
dc.type info:eu-repo/semantics/bachelorThesis


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