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    Por favor, use este identificador para citar o enlazar este ítem:http://uvadoc.uva.es/handle/10324/39719

    Título
    Characterization of dynamical neural activity by means of EEG data: application to schizophrenia
    Autor
    Bachiller Matarranz, AlejandroAutoridad UVA
    Director o Tutor
    Poza Crespo, JesúsAutoridad UVA
    Hornero Sánchez, RobertoAutoridad UVA
    Editor
    Universidad de Valladolid. Escuela Técnica Superior de Ingenieros de TelecomunicaciónAutoridad UVA
    Año del Documento
    2017
    Titulación
    Doctorado en Tecnologías de la Información y las Telecomunicaciones
    Resumen
    Schizophrenia is a disabling, chronic and severe mental illness characterized by disintegration of the process of thinking, contact with reality and emotional responsiveness. Schizophrenia has been related to an aberrant assignment of salience to external objects and internal representations. In addition, schizophrenia has been identified as a dysconnection syndrome, which is associated with a reduced capacity to integrate information among different brain regions. Relevance attribution likely involves diverse cerebral regions and their interconnections. As a consequence, many efforts have been devoted to identifying abnormalities in the cortical connections and their relation to schizophrenia symptoms and cognitive performance. Neural oscillations are one of the largest contributing mechanism for enabling coordinated activity during normal brain functioning. Alterations in neural oscillations and cognitive processing in schizophrenia have long been assessed using electroencephalographic (EEG) recordings (i.e. time-varying voltages on the human scalp generated by the electrical activity on the cerebral cortex). Event-related potentials (ERP) depict EEG data as a response to a cognitive task. ERP analyses are used to gain further insights into the neural mechanisms underlying cognitive dysfunctions. In this Doctoral Thesis, a 3-stimulus auditory-oddball paradigm was used for examining cognitive processing as response to both relevant and irrelevant stimuli. A total of 69 ERP recordings were analyzed in the research papers included in the Thesis, which comprises 20 chronic schizophrenia patients, 11 first episode patients and 38 healthy controls. This Doctoral Thesis is focused on the study, design and application of biomedical signal processing methodologies in order to facilitate the understanding of cognitive processes altered by the schizophrenia. EEG data were examined using a two-level analysis: (I) local activation studies to quantify functional segregation of the brain network, by means of spectral analysis and by assessing neural source generators of P3a and P3b components; and (II) EEG interactions studies to explore functional integration across brain regions, including pair-wise couplings and exploring hierarchical organization of neural rhythms.
    Materias (normalizadas)
    Tratamiento de señal
    Información, Teoría de la
    Esquizofrenia
    Materias Unesco
    6106.01 Actividad Cerebral
    Departamento
    Departamento de Teoría de la Señal y Comunicaciones e Ingeniería Telemática
    DOI
    10.35376/10324/39719
    Idioma
    eng
    URI
    http://uvadoc.uva.es/handle/10324/39719
    Tipo de versión
    info:eu-repo/semantics/publishedVersion
    Derechos
    openAccess
    Aparece en las colecciones
    • Tesis doctorales UVa [2384]
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    Nombre:
    Tesis1650-191202.pdf
    Tamaño:
    17.99Mb
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    Attribution-NonCommercial-NoDerivatives 4.0 InternacionalLa licencia del ítem se describe como Attribution-NonCommercial-NoDerivatives 4.0 Internacional

    Universidad de Valladolid

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