DocumentCode
1340913
Title
Information Visualization for Chronic Disease Risk Assessment
Author
Harle, Christopher A. ; Neill, Daniel B. ; Padman, Rema
Volume
27
Issue
6
fYear
2012
Firstpage
81
Lastpage
85
Abstract
Here, the authors describe and evaluate a new information-visualization method and prototype software tool that support risk assessment for negative health outcomes. Their framework uses principal component analysis and linear discriminant analysis to plot high-dimensional patient data in 2D. It also incorporates interactive visualization techniques to aid the identification of high versus low risk patients, critical risk factors, and the estimated effect of hypothetical interventions on the likelihood of negative outcomes. The authors quantitatively evaluated the visualization method using a secondary dataset describing 588 people with diabetes and their estimated future risk of heart attack. Their results show that the method visually classifies high- and low-risk people with accuracy that´s similar to other common statistical methods. The framework also provides an interactive, visualization-based tool for clinicians to explore the nuances of their patients´ data and disease risk.
Keywords
data structures; data visualisation; diseases; medical computing; pattern classification; principal component analysis; risk management; software tools; chronic disease risk assessment; critical risk factors; diabetes; heart attack; high-dimensional patient data; hypothetical intervention estimated effect; information visualization method; interactive visualization-based tool; likelihood of negative outcomes; linear discriminant analysis; negative health outcomes; principal component analysis; software tool; Information technology; Medical information processing; Medical services; Risk assessment; Software development; Visualization; dimensionality reduction; healthcare; information visualization; risk assessment;
fLanguage
English
Journal_Title
Intelligent Systems, IEEE
Publisher
ieee
ISSN
1541-1672
Type
jour
DOI
10.1109/MIS.2012.112
Filename
6365201
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