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On the Selection of Non-Invasive Methods Based on Speech Analysis Oriented to Automatic Alzheimer Disease Diagnosis

The work presented here is part of a larger study to identify novel technologies and biomarkers for early Alzheimer disease (AD) detection and it focuses on evaluating the suitability of a new approach for early AD diagnosis by non-invasive methods. The purpose is to examine in a pilot study the pot...

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Autores principales: López-de-Ipiña, Karmele, Alonso, Jesus-Bernardino, Travieso, Carlos Manuel, Solé-Casals, Jordi, Egiraun, Harkaitz, Faundez-Zanuy, Marcos, Ezeiza, Aitzol, Barroso, Nora, Ecay-Torres, Miriam, Martinez-Lage, Pablo, de Lizardui, Unai Martinez
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Molecular Diversity Preservation International (MDPI) 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3690078/
https://www.ncbi.nlm.nih.gov/pubmed/23698268
http://dx.doi.org/10.3390/s130506730
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author López-de-Ipiña, Karmele
Alonso, Jesus-Bernardino
Travieso, Carlos Manuel
Solé-Casals, Jordi
Egiraun, Harkaitz
Faundez-Zanuy, Marcos
Ezeiza, Aitzol
Barroso, Nora
Ecay-Torres, Miriam
Martinez-Lage, Pablo
de Lizardui, Unai Martinez
author_facet López-de-Ipiña, Karmele
Alonso, Jesus-Bernardino
Travieso, Carlos Manuel
Solé-Casals, Jordi
Egiraun, Harkaitz
Faundez-Zanuy, Marcos
Ezeiza, Aitzol
Barroso, Nora
Ecay-Torres, Miriam
Martinez-Lage, Pablo
de Lizardui, Unai Martinez
author_sort López-de-Ipiña, Karmele
collection PubMed
description The work presented here is part of a larger study to identify novel technologies and biomarkers for early Alzheimer disease (AD) detection and it focuses on evaluating the suitability of a new approach for early AD diagnosis by non-invasive methods. The purpose is to examine in a pilot study the potential of applying intelligent algorithms to speech features obtained from suspected patients in order to contribute to the improvement of diagnosis of AD and its degree of severity. In this sense, Artificial Neural Networks (ANN) have been used for the automatic classification of the two classes (AD and control subjects). Two human issues have been analyzed for feature selection: Spontaneous Speech and Emotional Response. Not only linear features but also non-linear ones, such as Fractal Dimension, have been explored. The approach is non invasive, low cost and without any side effects. Obtained experimental results were very satisfactory and promising for early diagnosis and classification of AD patients.
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spelling pubmed-36900782013-07-09 On the Selection of Non-Invasive Methods Based on Speech Analysis Oriented to Automatic Alzheimer Disease Diagnosis López-de-Ipiña, Karmele Alonso, Jesus-Bernardino Travieso, Carlos Manuel Solé-Casals, Jordi Egiraun, Harkaitz Faundez-Zanuy, Marcos Ezeiza, Aitzol Barroso, Nora Ecay-Torres, Miriam Martinez-Lage, Pablo de Lizardui, Unai Martinez Sensors (Basel) Article The work presented here is part of a larger study to identify novel technologies and biomarkers for early Alzheimer disease (AD) detection and it focuses on evaluating the suitability of a new approach for early AD diagnosis by non-invasive methods. The purpose is to examine in a pilot study the potential of applying intelligent algorithms to speech features obtained from suspected patients in order to contribute to the improvement of diagnosis of AD and its degree of severity. In this sense, Artificial Neural Networks (ANN) have been used for the automatic classification of the two classes (AD and control subjects). Two human issues have been analyzed for feature selection: Spontaneous Speech and Emotional Response. Not only linear features but also non-linear ones, such as Fractal Dimension, have been explored. The approach is non invasive, low cost and without any side effects. Obtained experimental results were very satisfactory and promising for early diagnosis and classification of AD patients. Molecular Diversity Preservation International (MDPI) 2013-05-21 /pmc/articles/PMC3690078/ /pubmed/23698268 http://dx.doi.org/10.3390/s130506730 Text en © 2013 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/
spellingShingle Article
López-de-Ipiña, Karmele
Alonso, Jesus-Bernardino
Travieso, Carlos Manuel
Solé-Casals, Jordi
Egiraun, Harkaitz
Faundez-Zanuy, Marcos
Ezeiza, Aitzol
Barroso, Nora
Ecay-Torres, Miriam
Martinez-Lage, Pablo
de Lizardui, Unai Martinez
On the Selection of Non-Invasive Methods Based on Speech Analysis Oriented to Automatic Alzheimer Disease Diagnosis
title On the Selection of Non-Invasive Methods Based on Speech Analysis Oriented to Automatic Alzheimer Disease Diagnosis
title_full On the Selection of Non-Invasive Methods Based on Speech Analysis Oriented to Automatic Alzheimer Disease Diagnosis
title_fullStr On the Selection of Non-Invasive Methods Based on Speech Analysis Oriented to Automatic Alzheimer Disease Diagnosis
title_full_unstemmed On the Selection of Non-Invasive Methods Based on Speech Analysis Oriented to Automatic Alzheimer Disease Diagnosis
title_short On the Selection of Non-Invasive Methods Based on Speech Analysis Oriented to Automatic Alzheimer Disease Diagnosis
title_sort on the selection of non-invasive methods based on speech analysis oriented to automatic alzheimer disease diagnosis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3690078/
https://www.ncbi.nlm.nih.gov/pubmed/23698268
http://dx.doi.org/10.3390/s130506730
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