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Biomedical Informatics Techniques for Processing and Analyzing Web Blogs of Military Service Members

INTRODUCTION: Web logs (“blogs”) have become a popular mechanism for people to express their daily thoughts, feelings, and emotions. Many of these expressions contain health care-related themes, both physical and mental, similar to information discussed during a clinical interview or medical consult...

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Detalles Bibliográficos
Autores principales: Konovalov, Sergiy, Scotch, Matthew, Post, Lori, Brandt, Cynthia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Gunther Eysenbach 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3234168/
https://www.ncbi.nlm.nih.gov/pubmed/20923755
http://dx.doi.org/10.2196/jmir.1538
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author Konovalov, Sergiy
Scotch, Matthew
Post, Lori
Brandt, Cynthia
author_facet Konovalov, Sergiy
Scotch, Matthew
Post, Lori
Brandt, Cynthia
author_sort Konovalov, Sergiy
collection PubMed
description INTRODUCTION: Web logs (“blogs”) have become a popular mechanism for people to express their daily thoughts, feelings, and emotions. Many of these expressions contain health care-related themes, both physical and mental, similar to information discussed during a clinical interview or medical consultation. Thus, some of the information contained in blogs might be important for health care research, especially in mental health where stress-related conditions may be difficult and expensive to diagnose and where early recognition is often key to successful treatment. In the field of biomedical informatics, techniques such as information retrieval (IR) and natural language processing (NLP) are often used to unlock information contained in free-text notes. These methods might assist the clinical research community to better understand feelings and emotions post deployment and the burden of symptoms of stress among US military service members. METHODS: In total, 90 military blog posts describing deployment situations and 60 control posts of Operation Enduring Freedom/Operation Iraqi Freedom (OEF/OIF) were collected. After “stop” word exclusion and stemming, a “bag-of-words” representation and term weighting was performed, and the most relevant words were manually selected out of the high-weight words. A pilot ontology was created using Collaborative Protégé, a knowledge management application. The word lists and the ontology were then used within General Architecture for Text Engineering (GATE), an NLP framework, to create an automated pipeline for recognition and analysis of blogs related to combat exposure. An independent expert opinion was used to create a reference standard and evaluate the results of the GATE pipeline. RESULTS: The 2 dimensions of combat exposure descriptors identified were: words dealing with physical exposure and the soldiers’ emotional reactions to it. GATE pipeline was able to retrieve blog texts describing combat exposure with precision 0.9, recall 0.75, and F-score 0.82. DISCUSSION: Natural language processing and automated information retrieval might potentially provide valuable tools for retrieving and analyzing military blog posts and uncovering military service members’ emotions and experiences of combat exposure.
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spelling pubmed-32341682011-12-09 Biomedical Informatics Techniques for Processing and Analyzing Web Blogs of Military Service Members Konovalov, Sergiy Scotch, Matthew Post, Lori Brandt, Cynthia J Med Internet Res Original Paper INTRODUCTION: Web logs (“blogs”) have become a popular mechanism for people to express their daily thoughts, feelings, and emotions. Many of these expressions contain health care-related themes, both physical and mental, similar to information discussed during a clinical interview or medical consultation. Thus, some of the information contained in blogs might be important for health care research, especially in mental health where stress-related conditions may be difficult and expensive to diagnose and where early recognition is often key to successful treatment. In the field of biomedical informatics, techniques such as information retrieval (IR) and natural language processing (NLP) are often used to unlock information contained in free-text notes. These methods might assist the clinical research community to better understand feelings and emotions post deployment and the burden of symptoms of stress among US military service members. METHODS: In total, 90 military blog posts describing deployment situations and 60 control posts of Operation Enduring Freedom/Operation Iraqi Freedom (OEF/OIF) were collected. After “stop” word exclusion and stemming, a “bag-of-words” representation and term weighting was performed, and the most relevant words were manually selected out of the high-weight words. A pilot ontology was created using Collaborative Protégé, a knowledge management application. The word lists and the ontology were then used within General Architecture for Text Engineering (GATE), an NLP framework, to create an automated pipeline for recognition and analysis of blogs related to combat exposure. An independent expert opinion was used to create a reference standard and evaluate the results of the GATE pipeline. RESULTS: The 2 dimensions of combat exposure descriptors identified were: words dealing with physical exposure and the soldiers’ emotional reactions to it. GATE pipeline was able to retrieve blog texts describing combat exposure with precision 0.9, recall 0.75, and F-score 0.82. DISCUSSION: Natural language processing and automated information retrieval might potentially provide valuable tools for retrieving and analyzing military blog posts and uncovering military service members’ emotions and experiences of combat exposure. Gunther Eysenbach 2010-10-05 /pmc/articles/PMC3234168/ /pubmed/20923755 http://dx.doi.org/10.2196/jmir.1538 Text en ©Sergiy Konovalov, Matthew Scotch, Lori Post, Cynthia Brandt. Originally published in the Journal of Medical Internet Research (http://www.jmir.org), 05.10.2010   http://creativecommons.org/licenses/by/2.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work, first published in the Journal of Medical Internet Research, is properly cited. The complete bibliographic information, a link to the original publication on http://www.jmir.org/, as well as this copyright and license information must be included.
spellingShingle Original Paper
Konovalov, Sergiy
Scotch, Matthew
Post, Lori
Brandt, Cynthia
Biomedical Informatics Techniques for Processing and Analyzing Web Blogs of Military Service Members
title Biomedical Informatics Techniques for Processing and Analyzing Web Blogs of Military Service Members
title_full Biomedical Informatics Techniques for Processing and Analyzing Web Blogs of Military Service Members
title_fullStr Biomedical Informatics Techniques for Processing and Analyzing Web Blogs of Military Service Members
title_full_unstemmed Biomedical Informatics Techniques for Processing and Analyzing Web Blogs of Military Service Members
title_short Biomedical Informatics Techniques for Processing and Analyzing Web Blogs of Military Service Members
title_sort biomedical informatics techniques for processing and analyzing web blogs of military service members
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3234168/
https://www.ncbi.nlm.nih.gov/pubmed/20923755
http://dx.doi.org/10.2196/jmir.1538
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