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1
Growth curve analysis and visualization using R
Mirman, Daniel. - Boca Raton, Fla. : CRC Press, 2014
MPI für Psycholinguistik
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2
The relationship between ventricular size at 1 month and outcome at 2 years in infants less than 30 weeks' gestation
Fox, L.M.; Choo, P.; Rogerson, S.R.. - : BMJ Journals, 2014
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3
Computational Intelligence Techniques for Electro-Physiological Data Analysis
Riera Sardà, Alexandre. - : Universitat de Barcelona, 2012
In: TDX (Tesis Doctorals en Xarxa) (2012)
Abstract: This work contains the efforts I have made in the last years in the field of Electrophysiological data analysis. Most of the work has been done at Starlab Barcelona S.L. and part of it at the Neurodynamics Laboratory of the Department of Psychiatry and Clinical Psychobiology of the University of Barcelona. The main work deals with the analysis of electroencephalography (EEG) signals, although other signals, such as electrocardiography (ECG), electroculography (EOG) and electromiography (EMG) have also been used. Several data sets have been collected and analysed applying advanced Signal Processing techniques. On a later stage Computational Intelligence techniques, such as Machine Learning and Genetic Algorithms, have been applied, mainly to classify the different conditions from the EEG data sets. 3 applications involving EEG and classification are proposed corresponding to each one of the 3 case studies presented in this thesis. Analysis of Electrophysiological signals for biometric purposes: We demonstrate the potential of using EEG signals for biometric purposes. Using the ENOBIO EEG amplifier, and using only two frontal EEG channels, we are able to authenticate subjects with a performance up to 96.6%. We also looked for features extracted from the ECG signals and in that case the performance was equal to 97.9%. We also fused the results of both modalities achieving a perfect performance. Our system is ready to use and since it only uses 4 channels (2 for EEG, 1 for ECG in the left wrist and 1 as active reference in the right ear lobe), the wireless ENOBIO sensor is perfectly suited for our application. EEG differences in First Psychotic Episode (FPE) Patients: From an EEG data set of 15 FPE patients and the same number of controls, we studied the differences in their EEG signals in order to train a classifier able to recognise to which group an EEG sample comes from. The feature we use are extracted from the EEG by computing the Synchronization Likelihood feature between all possible pairs of channels. The next step is to build a graph and from that graph we extracted the Mean Path Length and the Clustering Coefficient. Those features as a function of the connectivity threshold are then used in our classifiers. We then create several classification problems and we reach up to 100% of classification in some cases. Markers of stress in the EEG signal: In this research, we designed a protocol in which the participants where asked to perform different tasks, each one with a different stress level. Among these tasks we can find the Stroop Test, Mathematical arithmetics and also a fake blood sample test. By extracting the alpha asymmetry and the beta/alpha ration, we where able to discriminate between the different tasks with performances up to 88%. This application can be used with only 3 EEG electrodes, and it can also work in real time. Finally this application can also be used as a neurofeedback training to learn how to cope with stress. ; Este trabajo contiene los esfuerzos que he realizado en los últimos años en el campo del análisis de datos electro-fisiológicos. La mayor parte del trabajo se ha hecho en Starlab Barcelona SL y otra parte en el Laboratorio de Neurodinámica del Departamento de Psiquiatría y Psicobiología Clínica de la Universidad de Barcelona. La parte central de esta tesis está relacionado con el análisis de la señales de electroencefalografía (EEG), aunque otras señales, tales como electrocardiografía (ECG), electroculografía (EOG) y electromiografía (EMG) también se han utilizado. Varios conjuntos de datos se han recogido y analizado aplicando técnicas avanzadas de procesamiento de señales. En una fase posterior, técnicas de inteligencia computacional, tales como 'Machine Learning' y algoritmos genéticos, se han aplicado, principalmente para clasificar las diferentes condiciones de los conjuntos de datos de EEG. Las 3 aplicaciones, que involucran EEG y técnicas de clasificación, que se presentan en esta tesis son: -Análisis de señales electro-fisiológicas para aplicaciones de biometría -Diferencias en las características del EEG en pacientes de primer brote psicótico -Marcadores de estrés en la señal de EEG
Keyword: 616.8; Aprendizaje automático; Aprenentatge automàtic; Biometría; Biometria; Biometry; Ciències de la Salut; Electroencefalografía (EEG); Electroencefalograma (EEG); Electroencephalography (EEG); Electrofisiología; Electrofisiologia; Electrophisiology; Esquizofrènia; Esquizofrenia; Estrès (Fisiologia); Estrés (Fisiología); Machine learning; Schizophrenia; Stress (Physiology)
URL: http://hdl.handle.net/10803/107818
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4
Computational Intelligence Techniques for Electro-Physiological Data Analysis
Riera Sardà, Alexandre. - : Universitat de Barcelona, 2012
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5
Plasticity, robustness, development and evolution
Bateson, Patrick; Gluckman, Peter D.. - Cambridge : Cambridge University Press, 2011
MPI für Psycholinguistik
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6
Trends in Human-Computer Interaction to Support Future Intelligence Analysis Capabilities
In: DTIC (2011)
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7
Quest Hierarchy for Hyperspectral Face Recognition
In: DTIC (2011)
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8
Creus que la teva veu és única?
Cerdà Massó, Ramon, 1941-. - : Centre Universitari de Sociolingüística i Comunicació (CUSC). Universitat de Barcelona, 2011
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9
Real-time speaker detection for user-device binding
Bergem, Mark J.. - : Monterey, California. Naval Postgraduate School, 2010
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10
Real-Time Speaker Detection for User-Device Binding
In: DTIC (2010)
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11
Overhauling Intelligence
In: DTIC (2007)
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12
Discriminative preprocessing of speech : towards improving biometric authentication ; Diskriminative Vorverarbeitung sprachlicher Signale : zur Steigerung biometrischer Sprecherauthentisierung
Wu, Dalei. - 2006
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13
Proof of concept Iraqi enrollment via voice authentication project
Lee, Samuel K.. - : Monterey California. Naval Postgraduate School, 2005
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14
Proof of Concept: Iraqi Enrollment via Voice Authentication Project
In: DTIC AND NTIS (2005)
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15
Person Identification from Video with Multiple Biometric Cues: Benchmarks for Human and Machine Performance
In: DTIC AND NTIS (2003)
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16
Face Detection and Modeling for Recognition
In: DTIC (2002)
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17
Biometrics: Facing Up to Terrorism
In: DTIC AND NTIS (2001)
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18
Comparative Analysys of Speech Parameters for the Design of Speaker Verification Systems
In: DTIC AND NTIS (2001)
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19
Integrating Natural Language and Gesture in a Robotics Domain
In: DTIC AND NTIS (1998)
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20
Tokens en Biometrie voor Identificatie en Aytheticatie (Tokens and Biometrics for Identification and Authentication)
In: DTIC AND NTIS (1997)
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